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REVIEW article

Front. Pharmacol., 30 April 2024
Sec. Ethnopharmacology

Codonopsis radix: a review of resource utilisation, postharvest processing, quality assessment, and its polysaccharide composition

Wei Liang
Wei Liang1*Jiachen SunJiachen Sun2Gang BaiGang Bai1Daiyu QiuDaiyu Qiu1Qian LiQian Li1Pengbin DongPengbin Dong1Yuan Chen
Yuan Chen1*Fengxia Guo
Fengxia Guo1*
  • 1State Key Laboratory of Arid Land Crop Science, College of Agronomy, College of Life Science and Technology, Gansu Agricultural University, Lanzhou, China
  • 2School of Biotechnology and Food Science, Tianjin University of Commerce, Tianjin, China

Codonopsis radix is the dried root of C. pilosula (Franch.) Nannf., C. pilosula Nannf. var. modesta (Nannf.) L. T. Shen, or C. tangshen Oliv., constitutes a botanical medicine with a profound historical lineage. It encompasses an array of bioactive constituents, including polyacetylenes, phenylpropanoids, alkaloids, triterpenoids, and polysaccharides, conferring upon it substantial medicinal and edible values. Consequently, it has garnered widespread attention from numerous scholars. In recent years, driven by advancements in modern traditional Chinese medicine, considerable strides have been taken in exploring resources utilization, traditional processing, quality evaluation and polysaccharide research of Codonopsis radix. However, there is a lack of systematic and comprehensive reporting on these research results. This paper provides a summary of recent advances in Codonopsis research, identifies existing issues in Codonopsis studies, and offers insights into future research directions. The aim is to provide insights and literature support for forthcoming investigations into Codonopsis.

GRAPHICAL ABSTRACT

1 Introduction

“Dangshen,” also known as Codonopsis radix, is the common name for the dried root of C. pilosula (Franch.) Nannf., C. pilosula Nannf. var. modesta (Nannf.) L. T. Shen, or C. tangshen Oliv (Jiang et al., 2016). It has been a extensively employed traditional botanical remedy for over 2000 years in China and other Asian nations. It is associated with strengthening the immune system, improving gastrointestinal function, alleviating gastric ulcers, enhancing appetite, and reducing blood pressure (He et al., 2015). In November 2023, China’s National Health Commission and the State Administration for Market Inspection and Administration officially included Codonopsis radix in the list of substances that are both food and traditional Chinese medicine. Reportedly, the State Food and Drug Administration has approved nearly 200 health foods containing Codonopsis radix for production and sale (Gao et al., 2018a). Reportedly, the State Food and Drug Administration has approved nearly 200 health foods containing Codonopsis radix for production and sale (Gao et al., 2018b). Therefore, Codonopsis radix is a plant medicine with significant development potential and has become a focal point in modern traditional Chinese medicine research.

Codonopsis radix holds significant medicinal and nutritional value. In everyday use, it serves not only as a medicinal agent but also functions as a dietary supplement in Asian countries, including China, Japan, Korea, and Singapore. It is incorporated into the preparation of tea, alcoholic beverages, soups, and porridges (He et al., 2015; Zou et al., 2020a). The extensive applications of Codonopsis radix and the growing market demand have posed challenges for its production to meet market requirements. Moreover, given that Codonopsis radix falls under the category of rhizomatous medicinal herbs, a considerable amount of its above-ground parts is annually discarded during the harvesting process, resulting in resource wastage and environmental pollution (Yang et al., 2019b). As a result, improving the efficiency of Codonopsis radix resource utilization and undertaking research and development of associated products have emerged as central concerns in Codonopsis radix studies. Harvesting and processing procedures significantly influence the quality of Codonopsis radix. In regions where Codonopsis radix is cultivated, processing methods like sulfur fumigation and “rubbing and sweating” have been progressively established. Furthermore, some scholars have explored modern drying techniques for Codonopsis radix (Yue et al., 2023a; Yue et al., 2023b). Nonetheless, it is important to highlight that research on processing methods in Codonopsis radix-producing areas is still relatively limited and in its nascent phase. Codonopsis plants encompasses a diverse array of chemical components, such as sugars, flavonoids, triterpenes, steroids, alkaloids, resinous substances, and more. Despite this, there is currently an absence of a well-defined quality evaluation standard for Codonopsis radix (Gao et al., 2018b; Luan et al., 2021). Notably, the 2020 edition of the “Chinese Pharmacopoeia” mandates the evaluation of Codonopsis radix solely based on morphology, microscopy, and thin-layer chromatography. This evidently falls short of providing a comprehensive assessment of Codonopsis radix quality. Codonopsis plants contain a significant amount of polysaccharide components. Recent research has uncovered that Codonopsis polysaccharides manifest various activities, encompassing immunomodulatory effects, antioxidant and anti-aging properties, as well as anti-tumor activity (Zou et al., 2019; Wu et al., 2020a). These diverse activities imply considerable development potential, underscoring polysaccharide research as a pivotal focus in Codonopsis radix studies.

This paper offers a comprehensive and systematic review of research advancements in the utilization of Codonopsis resources, geographical processing, quality assessment, and other related aspects. Additionally, it provides insights into future research directions concerning Codonopsis radix. The primary objective is to provide literature support and theoretical foundations for the modernization and high-quality development of Codonopsis radix research.

2 Current uses of Codonopsis radix

2.1 Utilization as local and tradional medicine

Codonopsis radix has been widely used in traditional medicine practices worldwide for centuries. Documented as a Traditional Chinese Medicine (TCM) since the Qing Dynasty in Ben Cao Cong Xin (Gao et al., 2018b), it has been part of the Chinese Pharmacopoeia since the 1963 edition and is esteemed for its medicinal properties. Frequently, it is blended with other TCM ingredients to formulate diverse prescriptions for treating various diseases. For instance, Si-jun-zi Decoction is employed to alleviate symptoms of qi insufficiency in the middle-jiao, spleen, and stomach weakness, reduced appetite, and bowel irregularities. The Bu-zhong-yi-qi Decoction shows promise in relieving symptoms associated with spleen and qi deficiency, including chronic diarrhea and rectocele. It might also be advantageous for conditions involving stomach and uterus displacement. The Bu-fei Decoction is renowned for its capacity to strengthen the lungs and enhance qi levels, while the Sheng-mai Powder is frequently prescribed for conditions like thirst due to insufficient body fluid and qi (Gao et al., 2018b). Codonopsis radix has been employed as a traditional medicinal remedy not only within China but also across various nations for an extensive duration. In South Korea, the root of C. pilosula is acknowledged as the accepted species of Codonopsis radix in the Korean Herbal Pharmacopoeia and is used to treat dyspepsia, relieve fatigue, and improve the respiratory system. In the Japanese Pharmacopoeia, both the root of C. pilosula and C. pilosula subsp. tangshen are recognized as species of Codonopsis radix and are widely used as traditional medicines and as raw materials in many OTC drugs. Codonopsis radix is frequently employed as a traditional botanical drug in Vietnam, exhibiting similar applications to its usage in China (Wakana et al., 2013; Gao et al., 2018b). In conclusion, Codonopsis radix shows promising medicinal potential, and conducting further comprehensive research on this plant species will significantly contribute to the advancement of novel drug development in related fields (Figure 1).

Figure 1
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Figure 1. Utilization of Codonopsis materials.

2.2 Utilization as food and others

The Codonopsis plant, known for its rich nutritional value, is widely utilized not only for medicinal purposes but also as a common food additive. However, the current development and utilization of Codonopsis plant resources are relatively limited, with research primarily concentrated on exploring tea, fodder, food, and chemical formulations. The specific research report is as follows (Figure 1).

1 Tea: Codonopsis radix tea is a traditional Chinese herbal tea commonly prepared with Flos Chrysanthemi, red dates, and Lycium chinensis. Tea beverages crafted from Codonopsis radix roots enjoy widespread popularity in both South Korea and China (Xiuzhi et al., 2016). Recent investigations have unveiled the presence of polyacetylenes, polyenes, flavonoids, alkaloids, steroids, terpenoids, and organic acids in the stems and leaves of Codonopsis radix, thereby indicating substantial nutritional value (Zeng et al., 2022). Consequently, certain scholars have processed the stems and leaves of Codonopsis radix to create Codonopsis leaf tea, revealing notable health-promoting effects (Yang et al., 2019c).

2 Fodder: Efforts have been made in China to explore the potential of the aboveground parts of C. pilosula for use as animal feed due to their nutritional value and lower cost (Yang et al., 2021). Studies have demonstrated that incorporating C. pilosula stems and leaves into chicken feed can significantly improve the growth performance and immunity of broilers (Ma, 2015), while adding C. pilosula stem and leaf to the daily feed of laying hens can effectively enhance egg quality and production rate (He et al., 1989). Similarly, the addition stems and leaves of C. pilosula to pig feed has been shown to markedly improve the growth performance of pigs (Dong-Zhanlian, 2014). In addition, researchers have reported that adding the extracted dregs of C. pilosula to the daily feed of sheep can substantially enhance the protein content of mutton (Wang, 2015). Moreover, the growth performance and resistance against foot-and-mouth disease in growing-finishing pigs have been observed to be enhanced through the addition of a combination of A. membranaceus and C. pilosula extracts referred to as HEM dietary supplementation (Cheng et al., 2020a; Cheng et al., 2020b). The vast cultivation of C. pilosula in China results in the harvesting of only its rhizomes for use, while its aboveground parts, such as stems and leaves, are typically discarded, causing waste and pollution. The above-ground parts of Codonopsis radix, rich in nutritional content, present substantial research potential for utilization in animal feed.

3 Food: In 2023, Codonopsis radix was approved by the National Health Commission of China and the State Administration for Market Regulation to be included in the list of plants for both medicinal and edible purposes. Owing to the presence of protein, polysaccharides, essential vitamins (such as vitamin A, B1, B2, and B3), as well as various minerals (including calcium, magnesium, iron, and zinc) in Codonopsis plants, they are widely employed in traditional Chinese medicinal diets (Luan et al., 2021). For instance, Codonopsis radix is a common ingredient in traditional Chinese cuisine, featuring in dishes like Codonopsis chicken soup, known for its efficacy in tonifying the middle and replenishing vital energy, and Codonopsis porridge, which aids in treating fatigue and deficiency of spleen and stomach qi (Gao et al., 2018b). Presently, the China Food and Drug Administration has sanctioned almost 200 health products containing Codonopsis radix. Some of these, including Yedao Lu Gui Jiu and Chungui Shenqiling Capsules, are believed to possess anti-fatigue properties. Additionally, in other countries such as Singapore, South Korea, and Norway, Codonopsis plants are also consumed as a functional food (Luan et al., 2021).

4 Bio-lubricant: Green synthesis and the utilization of agricultural waste for material and energy production have garnered attention due to their potential for cleaner production and sustainable development (Vazifehkhoran and Triolo, 2019). Min et al. investigated a plant wax extracted from the non-medicinal portion of C. pilosula, analyzing its composition, thermal stability, and lubricating properties. They proposed that this environmentally friendly biolubricant could be well-suited for applications in open systems and the food processing industry (Xie et al., 2020).

3 Postharvest processing

Freshly harvested C. pilosula plants root cannot be used directly, and requires certain post-harvest treatments to facilitate preservation and improve quality. Sulfur fumigation and drying treatment are the most critical links in the harvesting and processing of Codonopsis radix (Figure 2).

Figure 2
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Figure 2. Codonopsis Radix postharvest processing.

3.1 Sulfur fumigation

The sulfur fumigation of traditional Chinese medicinal materials refers to the process in which fresh medicinal materials are placed in an enclosed space, and then sulfur is ignited within that space, facilitating thorough contact between the medicinal materials and sulfur fumes. Combustion of sulfur produces sulfur dioxide, which reacts with water molecules present in fresh botanical drugs to form sulfites. Sulfite has strong reducing power, can kill larvae, adults and eggs, and inhibit microbial reproduction; at the same time, sulfite can inhibit the activity of oxidase, slow down the browning of Chinese medicinal materials, and help improve the appearance of Chinese medicinal materials (Zhan et al., 2018). Sulfur fumigation, a long-standing traditional Chinese medicine processing technique, finds extensive application in the treatment of diverse medicinal substances due to its uncomplicated procedure and economical nature (Deng et al., 2022). There are related studies and records of sulfur fumigation in medicinal materials such as Angelicae dahuricae radix [Umbelliferae; Angelica dahurica (Fisch.ex Hoffm.)Benth.et Hook.f.] (Wang et al., 2009), Chrysanthemi flos [Compositae; Chrysanthemum morifolium Ramat.] (Wang et al., 2014), Dioscoreae rhizoma [Dioscoreaceae; Dioscorea opposita Thunb.] (Chen et al., 2017). Despite the aforementioned effects, recent research has revealed that the consumption of sulfur fumigated medicinal materials can induce adverse symptoms such as coughing and chest tightness in patients, posing a potential risk to their health and compromising the bioactivity of the metabolites, thereby diminishing the quality of these medicinal materials (Zhu et al., 2015; Jiang et al., 2020). Therefore, China, the United States and Europe have successively issued standards to limit the content of SO2 in TCM (Xu et al., 2020).

The Codonopsis radix possesses a rich nutrient profile and high sugar content, rendering it susceptible to insect infestation and mildew formation during storage. Consequently, sulfur fumigation is commonly employed in the production area to extend its shelf life and mitigate mildew growth. Nevertheless, to extend the storage period of Codonopsis radix and enhance its appearance, local drug farmers and dealers frequently engage in excessive sulfur fumigation. This practice alters the quality, efficacy, and safety of the medicinal material. Scholars have conducted research to investigate the impact of sulfur fumigation on Codonopsis radix. Ma et al., 2014 used ultra-high resolution quadrupole time-of-flight mass spectrometry (UHPLC UHD Q-TOF MS/MS) to compare the differences in the chemical composition of sulfur-fumigated Codonopsis pilosula and shade-dried C. pilosula samples; found that sulfur fumigation can significantly reduce atractylenolide III, codonopsine, geniposide, lobeyolin, lobeyolinin and vanillic acid content, and tryptophan sulfate, atractylenolide III sulfate, lobetylinin sulfate and other sulfated derivatives were detected at the same time, indicating that sulfur fumigation will affect the quality of C. pilosula. In addition, studies have found that sulfur fumigated C. pilosula can significantly reduce its pharmacological activities such as immune regulation and anti-fatigue (Liu et al., 2014). The above research shows that sulfur smoked Codonopsis radix will change its metabolite composition, affect its pharmacological activity, and produce certain toxic and side effects.

Due to the growing attention devoted to the issue of sulfur-fumigated medicinal materials, several researchers have undertaken investigations into the desulfurization process of Codonopsis radix subjected to sulfur fumigation Xu et al., 2019 conducted a comparative study on non-sulfur-fumigated Codonopsis radix, sulfur-fumigated Codonopsis radix and thermally desulfurized Codonopsis radix using metabolomics and glycomics, and found that the contents of Lobetyolin, baicalin, atractyenolides II and atractylenolides III in Codonopsis radix were significantly reduced after sulfur fumigation; while the content of 5-HMF was significantly increased (Xu et al., 2020). Furthermore, this study also revealed that sulfur fumigation leads to an increase in the content of Fru, Glc, Man, and GalA in Codonopsis radix, while desulfurization treatment results in a decrease in their content. Therefore, although heat desulfurization treatment may reduce the SO2 content in sulfur-fumigated Codonopsis radix, it alters the composition ratio of metabolites in Codonopsis radix, thereby affecting its quality (Xu et al., 2020). Zhao et al. investigated the ultrasonic desulfurization process of Codonopsis radix and identified the optimal conditions: a temperature of 50°C, an ethanol-to-Codonopsis radix ratio of 10:1, a power of 700W, and a treatment time of 50 min (Zhao and Wang, 2016). However, the mechanism underlying the impact of desulfurization treatment on the quality and pharmacological activity of Codonopsis radix remains elusive, necessitating further in-depth and comprehensive investigation.

3.2 Drying process

Fresh Codonopsis radix cannot be used as a medicinal material immediately after harvest; it needs to undergo a series of processes to make it suitable for use as a decoction or as raw material in Chinese medicines. In Wenxian County, Gansu Province, and Pingshun County, Shanxi Province, people have gradually developed a unique traditional processing technology of Codonopsis radix during the long-term production process. The traditional drying process of Codonopsis radix, known as “rubbing and sweating,” encompasses various steps, including drying, rubbing, and sweating. Firstly, the freshly harvested rhizomes of Codonopsis radix should be air-dried for 2–3 days until the roots attain a soft and pliable texture, enabling them to flex. Subsequently, the softened roots of Codonopsis radix should be vigorously rubbed with both hands to enhance its compactness, followed by piling and covering them with a straw mat for the sweating process. After the sweating period, which typically lasts for 2–3 days, the covering is removed and left to air dry for an additional 2–3 days. Subsequently, the dried Codonopsis radix undergoes repeated rubbing and sweating cycles until it achieves complete desiccation. Codonopsis radix which is obtained by the “rubbing and sweating” method, is highly esteemed for its exceptional texture and superior quality. Guo and Dai et al. have demonstrated that the “rubbing and sweating” drying technique effectively enhances the levels of Atractylodes III and polysaccharides in Codonopsis radix (Dai et al., 2018; Guo et al., 2018).

The selection of different drying process methods directly impacts the quality of Chinese medicinal materials. “Rubbing and sweating” as a unique production process, is applied to a variety of traditional Chinese medicine, to cause the attention of some scholars. Some scholars have found that applying the “sweating” process to Magnoliae officinalis cortex [Magnoliaceae; Magnolia officinalis Rehd.et Wils.] can effectively increase the content of active constituents such as magnolol and honokiol in the final medicinal product. They propose that the “sweating” process influences the composition of microbial communities, including genera such as Aspergillus, Klebsiella, Enterococcus, and Bacillus, in Magnoliae officinalis cortex, thereby impacting the content of metabolites (Wu et al., 2019). Additionally, some scholars conducted a metabolomics study on Salviae miltiorrhizae radix et rhizome [Lamiaceae; Salvia miltiorrhiza Bge] subjected to “sweating” and “non-sweating” processes. The results indicated that the “sweating” treatment significantly promoted the generation of intermediate metabolites associated with the synthesis of tanshinone and salvianolic acid in Salviae miltiorrhizae radix et rhizome. This is conducive to the accumulation of tanshinone and salvianolic acid, thereby enhancing the quality of the medicinal material (Cao et al., 2020). However, there is no report on the internal mechanism of Codonopsis radix “rubbing and sweating” to improve the quality of medicinal materials. Utilizing modern biological research methods to elucidate the internal mechanisms of the traditional processing technique involving “rubbing and sweating” for Codonopsis radix represents a crucial avenue for future research.

Due to the labor-intensive and time-consuming nature of the traditional processing method involving “rubbing and sweating” for Codonopsis radix, researchers have explored and investigated contemporary drying techniques for this botanical drug. Yue et al. conducted a comparative analysis of the drying characteristics and quality of C. pilosula using various methods, including hot air drying, far-infrared drying, radio frequency vacuum drying, vacuum drying, and rotary microwave vacuum drying. The research findings have demonstrated that the application of rotating microwave vacuum drying (at an ultrasonic frequency of 20 kHz, power level of 60 W, and duration of 30 min) is advantageous for preserving the content of total flavonoids, leaf casein, polysaccharides, total phenols, flavon, and syringin in Codonopsis radix (Yue et al., 2023a; Yue et al., 2023b). Zhu et al. investigated the moisture variation dynamics of Codonopsis radix under the methods of hot air drying and infrared drying. They employed the Weibull distribution function to simulate the drying process of Codonopsis radix. The outcomes revealed that the water activation energy for Codonopsis radix in hot air drying and infrared drying were 40.40 and 70.21 kJ/mol, respectively. This study furnishes data support for the establishment and optimization of the modern drying process for Codonopsis radix (Zhu et al., 2017). However, there is still a paucity of research on modern drying methods for Codonopsis radix overall, and many contemporary drying techniques remain in the experimental phase with limited application in production. The focus of future research on Codonopsis radix drying is to develop a modern drying technology that not only improves the drying efficiency but also enhances the quality of the medicinal materials.

4 Research for quality evaluation of Codonopsis radix

Due to non-standard market systems and market supervision and control, counterfeit and inferior Codonopsis radix products often appear. Therefore, the key to the quality control in Codonopsis radix lies in the establishment of quality analysis methods (Zhu et al., 2022). At present, the Chinese Pharmacopoeia (2020 edition) identifies Codonopsis radix from three aspects: morphology, microscopy, thin-layer chromatography, but lacks quantitative evaluation indicators. It is required that the moisture content shall not exceed 16.0%, the total ash content shall not exceed 5.0%, sulfur dioxide content shall not exceed 400 mg/kg, and the leaching content shall not be less than 55.0%. These tests are obviously not enough to evaluate the quality of Codonopsis radix accurately. This section presents a concise overview of the latest studies conducted on assessing the quality of Codonopsis radix, offering guidance for future investigations into modern analytical approaches for this botanical species.

Table 1 shows the species, chemical component, part, extraction methods and analysis technique, and other details in quantitative studies related to Codonopsis radix. With the advancement of contemporary detection and analysis technology, a multitude of techniques have been employed for the determination of Codonopsis radix’s chemical composition and assessment of its quality. These encompass high-performance liquid chromatography (HPLC) and ultra-performance liquid chromatography (UPLC) coupled with diverse detectors such as ultraviolet detector (UV), photo diode Array (PDA), diode array detector (DAD), charged aerosol detector (CAD), and evaporative light scattering detector (ELSD). DAD and PDA, have higher sensitivity and wider linear range, belong to the same type of detector, and are suitable for most metabolites with UV absorption, which have become powerful tools for qualitative and quantitative studies of Codonopsis radix and other botanical drugs. The CAD and ELSD, as complementary to the UV detector, offer advantages in sensitivity and specificity and can be employed for the detection of metabolites lacking UV chromophores (Magnusson et al., 2015). Some scholars have utilized the CAD and evaporative light scattering detector ELSD to determine the content of D-fructose, glucose, sucrose, and atractylenolide III in Codonopsis radix to assess its quality (Li et al., 2005; Xie et al., 2022). Additionally, Fourier transform infrared spectroscopy (FT-IR), ultra-performance liquid chromatography-tandem mass spectrometry (UPLC-MS/MS), and nuclear magnetic resonance (NMR) have also been utilized (Li et al., 2009; Luo et al., 2017; An et al., 2018). C18 column, Amide column and HP-20 column are often used for the separation and detection of metabolite in Codonopsis ginseng. However, C18 column is more widely used in the quality evaluation of Codonopsis radix because of its advantages of high selectivity, high sensitivity, and user-friendly operation.

Table 1
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Table 1. Application of modern analytical techniques in quantitative analysis of quality control of Codonopsis Radix.

According to the findings presented in, ultrasonic extraction emerges as the predominant technique for extracting active metabolites from Codonopsis radix owing to its inherent advantages, including superior extraction efficiency, reduced time requirements, and simplified operational procedures. Methanol aqueous solutions with varying proportions (primarily 60%–80%) serve as the principal solvent for extracting the active metabolites of Codonopsis radix. Simultaneously, most literature employs water and acetonitrile as mobile phases for quantifying Codonopsis radix, while setting the detection wavelength within the range of 220–270 nm.

After a thorough review of the latest literature on quality control research of Codonopsis radix, it has been observed that despite containing hundreds of chemical substances, only around 30 have been subjected to quantitative analysis for quality control purposes. These include polyacetylenes, lignans, alkaloids, organic acids and amino acids among others (Figure 3). The bioactive metabolites Lobetyol, Lobetyolin, and Lobetyolinin are crucial polyacetylenes identified in Codonopsis radix that have demonstrated diverse pharmacological effects, encompassing antiviral, anti-inflammatory, proliferation inhibitory, and antitumor activities. (He et al., 2020; Chen et al., 2021; Xie et al., 2023). He Jing-yu et al. developed an HPLC-UV method to simultaneously determine polyacetylenes (lobetol, lobetolin, lobetollinin, cordifolioidone B), phenylpropanoid (tangshenoside I), and pyrrolidine alkaloids (codonopyrrolidins A, B) in medicinal materials of Codonopsis radix. This method was applied to differentiate various varieties of Codonopsis. The findings revealed that C. Pilosula and C. Pilosula var. modesta exhibited similar chemical compositions, while C. tangshen displayed significant variations in its chemical profile compared to the former two (He et al., 2014a; He et al., 2014b).

Figure 3
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Figure 3. Chemical structures of some active metabolites in Codonopsis radix that can be quantitatively detected.

Syringin is a phenylpropanoid glycoside that exhibits a variety of pharmacological properties, including its capacity to reduce inflammation, protect against radiation damage, and inhibit the growth of cancer cells (Dong et al., 2021; Hossin et al., 2021). Atractylenolide III is a significant active metabolite found in Codonopsis, as well as in Atractylodes macrocephala Koidz. and Chloranthus henryi Hemsl., with a diverse range of biological activities such as anti-inflammatory, antitumor, and antiallergic responses (Coyoy-Salgado et al., 2019). Zeng et al., 2022 employed metabolomics techniques to investigate the chemical constituents of both the aerial and underground parts of C. pilosula, wherein syringin and Atractylolide III were identified in the stems and leaves of C. pilosula. The quantification of these two metabolites was accomplished using HPLC coupled with a C18 chromatography column at a detection wavelength of 220 nm, thereby providing robust data support for the comprehensive utilization of the aboveground portions of C. pilosula.

Among the active metabolites suitable for quantitative analysis, Lobetyol, Lobetyolin, Lobetyolinin, Syringin, atractylolide III exhibit various pharmacological activities. Therefore, these metabolites have the potential to serve as markers for evaluating the quality of Codonopsis radix. Overall, the current research methods for establishing quality standards for Codonopsis radix are relatively outdated. Consequently, it is an urgent scientific imperative to elucidate the key metabolites of Codonopsis radix and develop a comprehensive determination method capable of evaluating its quality comprehensively.

5 Overview of polysaccharides in Codonopsis radix

Codonopsis polysaccharides, which are recognized as another major biologically active substance in Codonopsis (Zou et al., 2020a), can be extracted from both the root and leaves (Li et al., 2012; Yang et al., 2019c). According to reports, the polysaccharide content in the entire Codonopsis plant can reach up to 6% (Luan et al., 2021). Recent studies have demonstrated that Codonopsis polysaccharides possess various activities such as immunomodulatory effects, antioxidant and anti-aging properties, anti-tumor activities, among others (Yang et al., 2013; Cai et al., 2014; Zou et al., 2019; Wu et al., 2020a). The significant role played by Codonopsis polysaccharides underscores its substantial potential for development in the utilization of Codonopsis resources, product development, and quality evaluation. In this section, we provide a concise overview of the current research progress on Codonopsis polysaccharide. The objective is to stimulate scholars’ interest in Codonopsis polysaccharide research and offer valuable literature data and information.

5.1 Extraction and purification of Codonopsis polysaccharide

Table 2 provides a compilation of polysaccharide names, sources, extracted parts, analysis techniques, extraction and purification methods, molecular weight, and other pertinent information.

Table 2
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Table 2. Summary of extraction and purification of polysaccharides from Codonopsis radix.

The method of hot water extraction has been extensively employed for obtaining crude polysaccharides from Codonopsis radix. In recent years, this approach has successfully isolated a variety of polysaccharides with physiological activities from Codonopsis radix (Wu et al., 2020b; Gao et al., 2020; Meng et al., 2020). However, the hot water extraction method exhibits several limitations, including suboptimal extraction efficiency, prolonged extraction duration, challenging control over extraction conditions, and potential structural damage to polysaccharides. To overcome these constraints in the extraction of Codonopsis polysaccharides, various alternative methods have been employed: ultrasonic-assisted extraction (Li et al., 2018), enzyme-assisted extraction (Yuan et al., 2020), microwave-assisted extraction (Yu et al., 2011), accelerated solvent extraction (Zou et al., 2014), and subcritical water extraction (Zhang et al., 2013). Ji Hai-Yu et al. conducted a study to examine how the yield of Codonopsis polysaccharides is affected by varying levels of ultrasonic power during the process of ultrasonic-assisted extraction. Their findings demonstrated that an optimal range of ultrasonic power between 200 and 360 W resulted in increased polysaccharide yield, while exceeding 360 W significantly decreased the yield of Codonopsis polysaccharides (Ji et al., 2022). This suggests that higher ultrasonic power could damage the polysaccharide structure and promote degradation (Yang et al., 2019a).

Enzyme-facilitated extraction has attracted considerable interest owing to its mild extraction conditions, brief duration, minimal energy usage, and cost-efficiency. Gao et al., 2018a conducted a comprehensive investigation into the extraction parameters for obtaining polysaccharides from C. pilosula through the utilization of enzyme-assisted extraction techniques. The researchers determined that an enzyme dosage of 0.2%, a pH value of 4.2, an enzymatic hydrolysis temperature of 50°C, and a hydrolysis time of 1.5 h resulted in an extraction efficiency of 25.23% for Codonopsis polysaccharides.

The microwave exhibits remarkable penetrating power, exceptional selectivity, and high heating efficiency. Yu et al., 2011 have reported that the utilization of microwaves in the extraction process significantly reduces extraction time and enhances the efficiency of polysaccharide extraction from C. pilosula. Optimal conditions for this procedure include a microwave extraction temperature of 70°C, a duration of 25 min, a radiation power of 600 W, and a solid-liquid ratio of 1:40 (g/mL).

Accelerated solvent extraction is a high-pressure, high-temperature extraction method that utilizes an organic solvent (Giergielewicz-Mozajska et al., 2001). Zou et al., 2014 utilized this method to extract polysaccharides from C. pilosula Nannf. var. modesta L.T.Shen and obtained several purified polysaccharides, namely 50WCP-II-I, 50WCP-II-Ia, 100WCP-II-I, 100WCP-II-Ia, and 100WCP-II-Ib.

The subcritical water extraction method is a technique that involves heating water under high pressure to a critical state of 100°C–374°C to facilitate extraction. Zhang et al., 2012 optimized the subcritical water extraction process of C. pilosula and found that a solid-to-liquid ratio of 12 mL/g, extraction temperature of 150°C, and extraction time of 45 min significantly improved the extraction rate of C. pilosula and C. tangshen polysaccharides (Zhang et al., 2013). Nonetheless, there is a scarcity of studies focusing on modern technologies for extracting Codonopsis polysaccharides. Exploring an economical and efficient extraction method represents a crucial direction for future research in this domain.

The crude polysaccharide of Codonopsis radix is usually separated and purified by anion exchange chromatography (DEAE-Cellulose, DEAE-Cellulose 52, DEAE-Sepharose CL-6B and DEAE-Sepharose FF, etc.) and gel permeation chromatography (Sephadex G, Sephacryl S and Sepharose CL, etc.). During the separation and purification process of crude polysaccharides from Codonopsis radix, varying concentrations of eluates were employed to separate polysaccharides with distinct properties. Neutral polysaccharides are obtained by eluting with distilled water, while acidic polysaccharides are obtained by eluting with various concentrations of salt solutions. Ultimately, various gradient eluates were collected, subjected to dialysis, concentrated, and lyophilized, resulting in the isolation of distinct types of Codonopsis polysaccharides.

5.2 The physicochemical properties and biological activities of Codonopsis polysaccharides

The physicochemical characterization, and bioactivity evaluation of Codonopsis polysaccharides have been a prominent research focus in recent years. We summarize some studies on the biological activities and structural characteristics of Codonopsis polysaccharides in Supplementary Table S1. To date, a total of 64 polysaccharides have been successfully isolated and identified from various parts of C. pilosula, C. pilosula var. modesta, and C. tangshen, comprising 12 crude, 15 neutral, and 34 acidic polysaccharides (The acid-base properties of the remaining three polysaccharides remain undetermined.).

Currently, 34 acidic polysaccharides have been isolated from Codonopsis radix. Among these, 4 are derived from the aerial parts of C. pilosula, 17 from the roots of C. pilosula, and 5 from the roots of C. tangshen. Additionally, 8 kinds have been extracted from the roots of C. pilosula var. modesta. The majority of acid polysaccharides are isolated and purified from the roots of Codonopsis. The first purified pectic polysaccharide, CPP1b, has a backbone consisting of (1 → 4)-linked α-D-GalpA and (1 → 4)-linked α-D-GalAp6Me. It also contains rare interspersed (1 → 2)-linked β-L-Rhap, (1, 2, 6)-linked α-D-Galp, and terminal α-L-Arap (Yang et al., 2013). The MTT assay was employed to assess the inhibitory rate of CPP1b on the growth of human lung adenocarcinoma A549 cells at concentrations of 0, 50, 100, 200, and 400 μg/mL. The results revealed significant cytotoxicity of CPP1b on human lung adenocarcinoma A549 cells, with an inhibition rate ranging from 46.8% to 65.4% at 48 h. These findings suggest the potential of CPP1b as a promising antitumor agent or adjuvant drug (Yang et al., 2013). Sun et al., 2019 isolated and purified two acidic polysaccharides, namely RCAP-1 and RCAP-2, from the roots of C. pilosula, and characterized their structural features and activities. The findings revealed that RCAP-1 and RCAP-2 were pectic polysaccharides with molecular weights of 5.09 × 104 and 2.58 × 105 Da, respectively. RCAP-1 and RCAP-2 were pectin-type polysaccharides with high methyl-esterification, featuring long homogalacturonan regions interspersed with a short rhamnogalacturonan I (RG-I) region. The RG-I region contained side chains comprising (1→2)-linked Rha residues attached to the O-4 position of rhamnose. The MTS assay was employed to assess the immunomodulatory activity of RCAP-1 and RCAP-2 on macrophages. The results demonstrated that the incubation of RAW264.7 macrophages with RCAP-1 and RCAP-2 (40 μg/mL) for 24 h significantly promoted the production of NO (Sun et al., 2019).

Wu et al. isolated an acidic polysaccharide, COP-W1, with a molecular weight of 2.34 × 104 Da from Codonopsis tangshen Oliv using a hot water extraction method. Structural analysis revealed that the backbone of COP-W1 is comprised of (1→3)-linked-galactose, (1→3, 6)-linked-mannose, (1→4)-linked-mannose, and (1→6)-linked-mannose residues with branching occurring at O-3. The branches contain (1→2, 6)-linked-galactose, (1→6)-linked-galactose, and (1→4)-linked-galactose residues, terminating with α-galactose (Wu et al., 2020b). The chemical DPPH scavenging ability of COP-W1 was evaluated at concentrations of 0, 0.15, 0.3, 0.6, 1.2, 2.4, and 4.8 mg/mL. The results revealed a significant increase in the chemical DPPH scavenging ability of COP-W1 with the rise in concentration, reaching 82.9% at 2.4 mg/mL, and an IC50 of 0.610 mg/mL (Wu et al., 2020b).

Bai et al. isolated a water-soluble acidic polysaccharide, CPP1a, from C. pilosula Nannf var. modesta (Nannf.) L.T. Shen, with a molecular weight of 1.01 × 105 Da. The results of physical and chemical property measurements indicate that CPP1a was consisted of linkages→1) -L-Rha-(4→,→1)-Ara-(5→,→1)-d-Gal-(4→,→1)-d-Gal-(6→, terminal-d-Glc at the molar ratio of 1:12:1:10:3 (Bai et al., 2018). Following a 48-h incubation of HepG2 cells with 50, 200, and 400 μg/mL CPP1a, CPP1a was observed to alter the morphology of HepG2 cells, impede cell migration, and induce cell cycle arrest in the G2/M phase. Concurrently, HepG2 cells exhibited anticancer effects by upregulating Bcl-2 and Bax, adjusting the Bax/Bcl-2 ratio, and activating caspase-3 to promote apoptosis (Bai et al., 2018).

Only 4 acidic polysaccharides have currently been isolated and purified from the stems of C. pilosula. Li et al., 2012 extracted crude polysaccharides from the stems of C. pilosula using a water extraction and alcohol precipitation method. The extracted polysaccharides were then separated into S-CPPA, S-CPPB, and S-CPPC fractions using a DEAE cellulose column. Subsequently, S-CPPA1, a purified polysaccharide, was obtained from S-CPPA and its physical and chemical properties, as well as biological activities, were evaluated. The findings revealed that S-CPPA1 is a branched polysaccharide consisting of five glucose linkage forms, namely (1→4)-linked Glcp (residue A), (1→6)-linked Galp (residue B), (1→2,6)-linked Glcp (residue C), (1→5)-linked Arc (residue D), and non-reducing terminal (1→)-linked Glcp (residue E). Furthermore, the protective impact of S-CPPA1 against renal ischemia/reperfusion (I/R) injury was assessed through the oral administration of 10 mg/kg S-CPPA1 for ten consecutive days in adult male Wistar rats, followed by renal I/R injury. The findings indicated a significant reduction in BUN, Cr, TNF-α levels, and the activities of LDH and AST in the serum of Wistar rats following oral administration of S-CPPA1. This suggests that S-CPPA1 exhibits a distinct renal protective effect (Li et al., 2012). Zou et al. employed water extraction, alcohol precipitation, and ultrafiltration methods to extract pectin-type polysaccharides from C. pilosula and C. tangshen. They successfully purified CPSP-1 and CTSP-1 with molecular weights of 1.23 and 0.1 kDa, respectively, from the stems of these plants. The structure elucidation results revealed that CPSP-1 and CTSP-1 are pectic polysaccharides consisting of long homogalacturonan regions (HG) with methyl-esterified galacturonic acid units and rhamnogalacturonan I (RG-I) regions. In addition, CTSP-1 possesses both arabinogalactan type I (AG-I) and type II (AG-II) side chains, whereas CPSP-1 only contains AG-II side chains (Zou et al., 2020b). In the context of H2O2-stimulated oxidative stress in porcine intestinal epithelial cells, incubation with stems of CPSP-1 and CTSP-1 at concentrations of 5, 10, and 20 μg/mL for 24 h resulted in a significant reduction in cellular levels of MDA, ROS, and LDH. Conversely, the enzyme activities and mRNA expressions of GSH-Px, SOD1, CAT, and T-AOC, as well as the gene expression of ZO-1, exhibited a marked increase in a dose-dependent manner (Tang et al., 2021).

Currently, 15 neutral polysaccharides have been isolated from C. pilosula, including 12 from its roots, 2 from C. tangshen roots, and 1 from the roots of C. pilosula var. modesta. RCNP is a neutral polysaccharide isolated from the roots of C. pilosula, with a molecular weight of 1.14 × 104 Da (Sun et al., 2019). It mainly consists of a significant amount of Arabinose (Ara) and a smaller amount of Galactose (Gal). The molar ratio of these two residues is approximately 3:1. Structural analysis revealed that RCNP is a neutral polysaccharide consisting of arabinan and arabinogalactan (AG) regions. The arabinan region is composed of a main chain consisting of (1 → 5)-linked Araf residues, with single Araf residues branching at the O-3 position. The AG region is composed of (1 → 4)-, (1 → 6)-, or (1 → 3)-linked Galp residues, with branches primarily at the O-3 position of the (1 → 6)-linked Galp or O-6 position of the (1 → 3)-linked Galp residues, terminated by Araf residues (Sun et al., 2019). Liu et al., 2018 isolated a neutral polysaccharide named CERP1 from C. pilosula waste, with a molecular weight of 4.840 × 103 Da. The structural determination results revealed that CERP1 consisted of arabinose, glucose, and galactose. The main linkage patterns identified were 1-linked β-D-glucose, 1,3-linked β-D-glucose, 1,6-linked β-D-glucose, 1,3,6-linked β-D-galactose, and 1,3,5-linked α-L-arabinose, which were the predominant linkages in CERP1. Additionally, the hypoglycemic effects of CERP1 were assessed in both in vitro and in vivo settings using insulin-treated INS-1 cells and T2DM mouse models. Treating INS-1 cells with CERP1 at concentrations of 0.2, 0.4, 0.6, and 0.8 mg/mL for 48 h effectively alleviated streptozotocin (3 mmol/L)-induced cell damage. It resulted in reduced MDA content, increased SOD activity, and improved insulin secretion. In T2DM mice, the administration of doses of 150, 300, and 600 mg/kg for 28 days led to significant decreases in fasting blood glucose, QUICKI index, TG, TC, LDL/HDL, and MDA levels. Concurrently, the activities of SOD, T-AOC, CAT, GSH-Px, and the homeostasis model assessment of insulin resistance (HOMA-IR) index were significantly increased. These findings suggest that CERP1 demonstrates robust anti-hyperglycemic activity both in vitro and in vivo, and holds the potential for development as a hypoglycemic drug or functional food (Liu et al., 2018).

Fu et al., 2018 optimized the extraction process of polysaccharides from C. pilosula var. modesta and successfully separated and purified an inulin-type fructan named CPPF from the crude polysaccharides. The structural analysis revealed that CPPF has a repeating unit composed of α-d-Glcp-(1→2)-[β-d-Fru f-(2→1)-β-d-Fru f]n-(2→1)-β-d-Fru f. CPPF, along with two commercially available prebiotics (P95s and OraftiHP), was added to the culture medium at a concentration of 1 g/L as carbon sources. This mixture was then incubated with six Lactobacillus species (BSS1, BS15, BS10, BSGP201683, LGG, and Hjg8) for 24 h. Following incubation, CPPF exhibited varying degrees of growth promotion among the six Lactobacillus species and decreased the pH of the medium, suggesting its potential prebiotic activity (Fu et al., 2018).

Zou et al., 2021 extracted a neutral polysaccharide called CTPN from C. tangshen. Structural identification revealed that CTPN is an inulin-type fructan linked by β-(2,1). Incubating porcine jejunal epithelial cells (IPEC-J2) with CTPN at concentrations of 5, 10, and 20 μg/mL for 24 h revealed a significant increase in the activities of T-AOC, GSH-Px, SOD, and CAT. Concurrently, it led to a decrease in the levels of MDA and LDH, ultimately enhancing the antioxidant capacity of IPEC-J2 cells.

In summary, polysaccharides constitute important active metabolic products in Codonopsis radix. However, current research on Codonopsis polysaccharides faces the following shortcomings: 1) The predominant method for extracting Codonopsis polysaccharides relies on hot water extraction, which exhibits low extraction efficiency, thereby constraining the industrial application of Codonopsis polysaccharides. Therefore, the application of modern extraction methods to enhance the extraction efficiency of Codonopsis polysaccharides holds significant importance. 2) Present research on Codonopsis polysaccharides is largely confined to the experimental stage, with limited studies focusing on their practical applications. Future research should emphasize the development of relevant products. 3) Investigations into Codonopsis polysaccharides predominantly focus on the roots, with limited exploration of polysaccharides in other Codonopsis plant parts. Therefore, non-medicinal parts of the Codonopsis plant show significant potential for polysaccharide development.

6 Conclusion and prospects

C. pilosula (Franch.) Nannf., C. pilosula Nannf. var. modesta (Nannf.) Shen, and C. tangshen Oliv. are recorded in the Chinese Pharmacopoeia and serve as the primary source plants for Codonopsis radix in traditional Chinese medicine. While these three varieties are distributed in Asia, North America, Europe, and other regions, China stands out as the main production area and the principal distributing country for Codonopsis radix. In recent years, driven by an increase in living standards and growing health consciousness, the market demand for Codonopsis radix has been steadily rising. Despite numerous scholars conducting research on Codonopsis resource utilization, origin processing, and quality evaluation, there are still some shortcomings.

Firstly, Codonopsis possesses abundant nutritional substances, not only holding medicinal value but also being developed for applications in tea, food, and fodder. However, the current research on the medicinal and edible value of Codonopsis radix is not sufficiently profound, and the development of related products falls short of meeting the demands of the modern traditional Chinese medicine market. In future research, it is imperative to increase investment in the research and development of Codonopsis-related products, enhance the added value of Codonopsis products, and create greater economic benefits.

Secondly, the “rubbing and sweating” method is a unique processing technique developed by the Codonopsis producing regions over a long-term production process. Codonopsis processed through “rubbing and sweating” has gained widespread recognition in the market due to its superior quality. However, there is no reported research on the intrinsic mechanism by which the “rubbing and sweating” method enhances the quality of medicinal materials. Therefore, elucidating the mechanism by which “rubbing and sweating” improves the quality of Codonopsis medicinal materials and developing a modern drying technology that can enhance both drying efficiency and medicinal material quality becomes a key focus in the processing of Codonopsis in its producing regions.

Thirdly, in recent years, with the advancement of detection technologies, various techniques such as HPLC, NMR, UPLC-MS/MS, FT-IR have been employed for chemical analysis in Codonopsis. However, the current research methods for Codonopsis quality standards are relatively outdated, and the Chinese Pharmacopoeia still lacks quantitative evaluation indicators for Codonopsis. Therefore, elucidating the key metabolites of Codonopsis, establishing a comprehensive determination method capable of assessing its quality comprehensively, becomes a pivotal direction for future research in Codonopsis quality evaluation.

Fourthly, Codonopsis polysaccharides exhibit various activities such as immunomodulating, anti-tumor, antioxidant, and prebiotic activities, making them significant metabolites of Codonopsis. However, the current extraction of Codonopsis polysaccharides is primarily based on hot water extraction, which has low efficiency. Consequently, improving the extraction efficiency of Codonopsis polysaccharides through modern extraction methods is a pressing issue in the field. Furthermore, the existing research on Codonopsis polysaccharides predominantly focuses on polysaccharides extracted from the roots, with limited exploration on the extraction and purification of polysaccharides from the aboveground parts. Therefore, future research should emphasize the development of polysaccharides extracted from the aboveground parts of Codonopsis.

This paper provides a comprehensive review of the research progress in the utilization of Codonopsis resources, traditional processing methods, quality evaluation, and polysaccharide studies. The aim is to offer literature support for future endeavors in the utilization of Codonopsis resources, development of processing techniques, and the exploration of related derivative products.

Author contributions

WL: Conceptualization, Methodology, Resources, Supervision, Writing–original draft, Writing–review and editing. JS: Data curation, Investigation, Resources, Writing–original draft. GB: Investigation, Resources, Writing–original draft. DQ: Investigation, Methodology, Resources, Writing–original draft. LQ: Investigation, Resources, Writing–original draft. PD: Methodology, Resources, Writing–original draft. YC: Methodology, Resources, Supervision, Writing–review and editing. FG: Resources, Supervision, Writing–review and editing.

Funding

The author(s) declare that financial support was received for the research, authorship, and/or publication of this article. This work was supported by Research Program Sponsored by State Key Laboratory of Aridland Crop Science, Gansu Agricultural University (No. GSCS-2023-13), Gansu Agricultural University Public Recruitment Doctoral Research Initiation Fund Project (No. GAU-KYQD-2022-07), Gansu Provincial Youth Science and Technology Fund (No. 23JRRA1444), Gansu Provincial Department of Education: Young Doctoral Support Project (No. 2023-QB-125), Research on Agricultural Techniques for Mechanized Production of Typical Chinese Medicinal Materials in Northwest China (XBZYCJD2022-05), Lanzhou youth science and technology talent innovation project (No. 2023-QN-162), Science and Technology Department of Gansu Province, Key R&D Program (No. 21YF5NA070), Education Department of Gansu Province, Innovation Fund Project for Higher Education Institutions (No. 2021A-001), National Natural Science Foundation Project (No. 31960395), Longyuan youth innovation and entrepreneurship talent project (GSRC-2023-1-4).

Conflict of interest

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

Publisher’s note

All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.

Supplementary material

The Supplementary Material for this article can be found online at: https://www.frontiersin.org/articles/10.3389/fphar.2024.1366556/full#supplementary-material

References

An, T. Y., Chen, X. H., Zhang, M., and Zhang, Y. (2018). Rapid analysis on chemical constituents in roots of Codonopsis tangshen by UPLC coupled with Q-Exactive quadrupole-orbitrap mass spectrometry. Chin. Traditional Herb. Drugs 49 (07), 1533–1542. doi:10.7501/j.issn.0253-2670.2018.07.008

CrossRef Full Text | Google Scholar

Bai, R. B., Li, W. Y., Li, Y. D., Ma, M., Wang, Y. P., Zhang, J., et al. (2018). Cytotoxicity of two water-soluble polysaccharides from Codonopsis pilosula Nannf. var. modesta (Nannf.) LTShen against human hepatocellular carcinoma HepG2 cells and its mechanism. Int. J. Biol. Macromol. 120, 1544–1550. doi:10.1016/j.ijbiomac.2018.09.123

PubMed Abstract | CrossRef Full Text | Google Scholar

Bai, R. B., Zhang, Y. J., Jia, X. S., Fan, J. M., Hou, X. H., Wang, Y. P., et al. (2020). Isolation, characterization and immunomodulatory activity of oligosaccharides from Codonopsis pilosula. J. Funct. FOODS 72, 104070. doi:10.1016/j.jff.2020.104070

CrossRef Full Text | Google Scholar

Cai, L. M., Luo, L., and Zeng, Y. H. (2014).Effects of polysaccharides from the root of Codonopsis pilosula (Dangshen) on physical fatigue induced by forced swimming, 2nd International Conference on Renewable Energy and Environmental Technology (REET), March 28, 2024, USA. REET, 1591–1594.

CrossRef Full Text | Google Scholar

Cao, M. Y., Liu, Y. Y., Jiang, W. M., Meng, X. X., Zhang, W., Chen, W. D., et al. (2020). UPLC/MS-based untargeted metabolomics reveals the changes of metabolites profile of Salvia miltiorrhiza bunge during Sweating processing. Sci. Rep. 10 (1), 19524. doi:10.1038/s41598-020-76650-w

PubMed Abstract | CrossRef Full Text | Google Scholar

Chen, K. (2007). Determination and analysis of the polysaeeharides from codonopsis pilosula and its proteetion activity against DNA damage. USA: Shaanxi Normal University. Master.

Google Scholar

Chen, M., Li, Y. Y., Liu, Z., Qu, Y. J., Zhang, H. J., Li, D. W., et al. (2018). Exopolysaccharides from a Codonopsis pilosula endophyte activate macrophages and inhibit cancer cell proliferation and migration. Thorac. Cancer 9 (5), 630–639. doi:10.1111/1759-7714.12630

PubMed Abstract | CrossRef Full Text | Google Scholar

Chen, Q.-f., Deng, X.-y., and Zhu, H.-f. (2016). Determination of lobetyolin and syringin in Codonopsis Radix from different places by HPLC. Sci. Technol. Food Industry 37 (06), 64–67. doi:10.13386/j.issn1002-0306.2016.06.004

CrossRef Full Text | Google Scholar

Chen, X. T., Li, X., Mao, X. H., Huang, H. H., Wang, T. T., Qu, Z., et al. (2017). Effects of drying processes on starch-related physicochemical properties, bioactive components and antioxidant properties of yam flours. Food Chem. 224, 224–232. doi:10.1016/j.foodchem.2016.12.028

PubMed Abstract | CrossRef Full Text | Google Scholar

Chen, Y. S., Tian, Y., Jin, G. S., Cui, Z., Guo, W., Zhang, X. J., et al. (2021). Lobetyolin inhibits the proliferation of breast cancer cells via ASCT2 down-regulation-induced apoptosis. Hum. Exp. Toxicol. 40 (12), 2074–2086. doi:10.1177/09603271211021476

PubMed Abstract | CrossRef Full Text | Google Scholar

Cheng, L., Lei, Y., and Kim, I. H. (2020a). Dietary Astragalus membranaceus and Codonopsis pilosula extracts mixture supplementation increases the growth performance and foot-and mouth disease antibody titers in growing-finishing pigs. Livest. Sci. 240, 104134. doi:10.1016/j.livsci.2020.104134

CrossRef Full Text | Google Scholar

Cheng, M., Pi, W.-x., Lu, t.-l., Bai, D.-t., Chen, J., Xiao, S., et al. (2020b). Determination of Codonopsis paryngoside and polysaccharide content in the aerial part of Codonopsis and analysis of influencing factors. J. Chin. Med. Mater. 43 (05), 1092–1098. doi:10.13863/j.issn1001-4454.2020.05.009

CrossRef Full Text | Google Scholar

Coyoy-Salgado, A., Segura-Uribe, J. J., Guerra-Araiza, C., Orozco-Suarez, S., Salgado-Ceballos, H., Feria-Romero, I. A., et al. (2019). The importance of natural antioxidants in the treatment of spinal cord injury in animal models: an overview. Oxidative Med. Cell. Longev. 2019, 3642491. doi:10.1155/2019/3642491

PubMed Abstract | CrossRef Full Text | Google Scholar

Dai, H.-r., Ma, D.-n., Yang, X.-j., Miao, X.-l., Zhang, L.-j., and Li, Y. (2018). To evaluate the effects of rubbing and drying processing on the quality of Codonopsis ginseng based on multiple indicators. Lishizhen Med. Materia Medica 29 (11), 2651–2653. doi:10.3969/j.issn.1008-0805.2018.11.031

CrossRef Full Text | Google Scholar

Deng, A. P., Kang, C. Z., Kang, L. P., Lyu, C. G., Zhang, W. J., Wang, S., et al. (2022). Practical protocol for comprehensively evaluating sulfur-fumigation of baizhi based on metabolomics, pharmacology, and cytotoxicity. Front. Pharmacol. 12, 799504. doi:10.3389/fphar.2021.799504

PubMed Abstract | CrossRef Full Text | Google Scholar

Deng, X. L., Fu, Y. J., Luo, S., Luo, X., Wang, Q., Hu, M. H., et al. (2019). Polysaccharide from Radix Codonopsis has beneficial effects on the maintenance of T-cell balance in mice. Biomed. Pharmacother. 112, 108682. doi:10.1016/j.biopha.2019.108682

PubMed Abstract | CrossRef Full Text | Google Scholar

Dong, H. B., Wu, M., Wang, Y. Y., Du, W. H., He, Y. J., and Shi, Z. (2021). Total syntheses and anti-inflammatory activities of syringin and its natural analogues. J. Nat. Prod. 84 (11), 2866–2874. doi:10.1021/acs.jnatprod.1c00585

PubMed Abstract | CrossRef Full Text | Google Scholar

Dong-Zhanlian (2014). Effects of stems and leaves of Codonopsis on pig performance. Animal Husb. Veterinary Med. 46 (12), 139.

Google Scholar

Duan, Q.-m., Liang, Z.-s., Yang, D.-f., Liu, Y., and Liu, F. (2012). Establishment of quality evaluation system and difference analysis on roots of Codonopsis pilosula from different habitats. Chin. Traditional Herb. Drugs 43 (05), 995–999. doi:10.7501/j.issn.0253-2670

CrossRef Full Text | Google Scholar

Feng, G., and Zhang, X. F. (2020). Production of a codonopsis polysaccharide iron complex and evaluation of its properties. Int. J. Biol. Macromol. 162, 1227–1240. doi:10.1016/j.ijbiomac.2020.06.210

PubMed Abstract | CrossRef Full Text | Google Scholar

Fu, Y. P., Li, L. X., Zhang, B. Z., Paulsen, B. S., Yin, Z. Q., Huang, C., et al. (2018). Characterization and prebiotic activity in vitro of inulin-type fructan from Codonopsis pilosula roots. Carbohydr. Polym. 193, 212–220. doi:10.1016/j.carbpol.2018.03.065

PubMed Abstract | CrossRef Full Text | Google Scholar

Gao, J.-d., Zhu, X.-y., Song, K.-r., Liu, X., Chen, H., and Shi, T. (2018a). Optimization of complex enzyme assisted extraction of polysaccharides from Codonopsis ginseng. Chin. Tradit. Pat. Med. 40 (05), 1189–1193. doi:10.3969/j.ssn.1001-1528.2018.05.040

CrossRef Full Text | Google Scholar

Gao, S. M., Liu, J. S., Wang, M., Cao, T. T., Qi, Y. D., Zhang, B. G., et al. (2018b). Traditional uses, phytochemistry, pharmacology and toxicology of Codonopsis: a review. J. Ethnopharmacol. 219, 50–70. doi:10.1016/j.jep.2018.02.039

PubMed Abstract | CrossRef Full Text | Google Scholar

Gao, Z. Z., Zhang, C., Jing, L. R., Feng, M., Li, R., and Yang, Y. (2020). The structural characterization and immune modulation activitives comparison of Codonopsis pilosula polysaccharide (CPPS) and selenizing CPPS (sCPPS) on mouse in vitro and vivo. Int. J. Biol. Macromol. 160, 814–822. doi:10.1016/j.ijbiomac.2020.05.149

PubMed Abstract | CrossRef Full Text | Google Scholar

Giergielewicz-Mozajska, H., DaBrowski, L., and NamiesNik, J. (2001). Accelerated solvent extraction (ASE) in the analysis of environmental solid samples — some aspects of theory and practice. Crit. Rev. Anal. Chem. 31 (3), 149–165. doi:10.1080/20014091076712

CrossRef Full Text | Google Scholar

Gu, C., Cao, L., Su, Q., Guan, L., Yang, J., and Gao, J. (2016). AFLP and HPLC fingerprints analysis of codonopsis species from original areas and the same planting base. J. Chin. Med. Mater. 39 (8), 1716–1722. doi:10.13863/j.issn1001-4454.2016.08.009

CrossRef Full Text | Google Scholar

Guo, Z.-y., Zhang, Y., Zhang, Z.-f., and Yang, J. (2018). Influence of processing methods on chemical composition of Codonopsis radix. J. Chin. Med. Mater. 41 (12), 2807–2810. doi:10.13863/j.issn1001-4454.2018.12.016

CrossRef Full Text | Google Scholar

Han, F.-m., Cheng, L.-l., and Chen, Y. (2005). Study on isolation and composition of Codonopsis tangshen polysaccharides. Chin. Pharm. J. 18, 1381–1383.

Google Scholar

Hao, G., Li, H., Zhao, C., and Zou, Y. (2002). Determination of the content of atractylenoide III in the codonopsis pilosula (franch.) Nannf. By RPHPLC. J. Shenyang Pharm. Univ. 19 (5), 337–339. doi:10.14066/j.cnki.cn21-1349/r.2002.05.008

CrossRef Full Text | Google Scholar

He, G. y., Wang, J.-g., Guo, F.-c., Liu, D.-z., Xie, J.-s., and Liu, D.-y. (1989). Effects of stems and leaves of Codonopsis on performance of laying hens. J. Traditional Chin. Veterinary 3, 9–11. doi:10.13823/j.cnki.jtcvm.1989.03.004

CrossRef Full Text | Google Scholar

He, J. Y., Ma, N., Zhu, S., Komatsu, K., Li, Z. Y., and Fu, W. M. (2015). The genus Codonopsis (Campanulaceae): a review of phytochemistry, bioactivity and quality control. J. Nat. Med. 69 (1), 1–21. doi:10.1007/s11418-014-0861-9

PubMed Abstract | CrossRef Full Text | Google Scholar

He, J. Y., Zhu, S., Goda, Y., Cai, S. Q., and Komatsu, K. (2014b). Quality evaluation of medicinally-used Codonopsis species and Codonopsis Radix based on the contents of pyrrolidine alkaloids, phenylpropanoid and polyacetylenes. J. Nat. Med. 68 (2), 326–339. doi:10.1007/s11418-013-0801-0

PubMed Abstract | CrossRef Full Text | Google Scholar

He, J.-Y., Zhu, S., and Komatsu, K. (2014a). HPLC/UV analysis of polyacetylenes, phenylpropanoid and pyrrolidine alkaloids in medicinally used codonopsis species. Phytochem. Anal. 25 (3), 213–219. doi:10.1002/pca.2494

PubMed Abstract | CrossRef Full Text | Google Scholar

He, W., Tao, W. W., Zhang, F., Jie, Q., He, Y., Zhu, W., et al. (2020). Lobetyolin induces apoptosis of colon cancer cells by inhibiting glutamine metabolism. J. Cell. Mol. Med. 24 (6), 3359–3369. doi:10.1111/jcmm.15009

PubMed Abstract | CrossRef Full Text | Google Scholar

Hossin, A., Inafuku, M., Takara, K., Nugara, R. N., and Oku, H. (2021). Syringin: a phenylpropanoid glycoside compound in Cirsium brevicaule A. GRAY root modulates adipogenesis. Molecules 26 (6), 1531. doi:10.3390/molecules26061531

PubMed Abstract | CrossRef Full Text | Google Scholar

Huang, N.-n., Li, J., Pu, J.-x., Rao, G.-x., Pu, d., He, Q.-t., et al. (2022). Study on HPLC fingerprint of codonopsis radix combined with multiple chemical pattern recognition. Chin. J. Mod. Appl. Pharm. 39 (16), 2103–2111. doi:10.13748/j.cnki.issn1007-7693.2022.16.009

CrossRef Full Text | Google Scholar

Ji, H. Y., Yu, J., Jiao, J. S., Dong, X. D., Yu, S. S., and Liu, A. J. (2022). Ultrasonic-assisted extraction of codonopsis pilosula glucofructan: optimization, structure, and immunoregulatory activity. Nutrients 14 (5), 927. doi:10.3390/nu14050927

PubMed Abstract | CrossRef Full Text | Google Scholar

Jiang, J., Xiao, S. C., Yan, S., Xiao, J. P., and Xu, X. M. (2020). Glycyrrhizae Radix et Rhizoma Processed by Sulfur Fumigation Damaged the Chemical Profile Accompanied by Immunosuppression and Liver Injury. Biomed Res. Int. 2020, 5439853. doi:10.1155/2020/5439853

PubMed Abstract | CrossRef Full Text | Google Scholar

Jiang, Y. P., Liu, Y. F., Guo, Q. L., Xu, C. B., Zhu, C. G., and Shi, J. G. (2016). Sesquiterpene glycosides from the roots of Codonopsis pilosula. Acta Pharm. Sin. B 6 (1), 46–54. doi:10.1016/j.apsb.2015.09.007

PubMed Abstract | CrossRef Full Text | Google Scholar

Kim, E. Y., Kim, J. A., Jeon, H. J., Kim, S., Kim, Y. H., Kim, H. Y., et al. (2014). Chemical fingerprinting of Codonopsis pilosula and simultaneous analysis of its major components by HPLC-UV. ARCHIVES PHARMACAL Res. 37 (9), 1148–1158. doi:10.1007/s12272-014-0335-3

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, C. Y., Xu, H. X., Han, Q. B., and Wu, T. S. (2009). Quality assessment of Radix Codonopsis by quantitative nuclear magnetic resonance. J. Chromatogr. A 1216 (11), 2124–2129. doi:10.1016/j.chroma.2008.10.080

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, G.-x., Ren, Z.-y., Li, Z.-y., Yang, G.-h., and Qin, X.-m. (2011). Assay of lobetyolin, tangshenoside IV and Atractyloide ll in radix codonopsis by OAMS. J. Shanxi Univ. Sci. Ed. 34 (S2), 90–95. doi:10.13451/j.cnki.shanxi.univ(nat.sci.).2011.s2.020

CrossRef Full Text | Google Scholar

Li, J. K., Wang, T., Zhu, Z. C., Yang, F. R., Cao, L. Y., and Gao, J. P. (2017). Structure features and anti-gastric ulcer effects of inulin-type fructan CP-A from the roots of codonopsis pilosula (franch.) Nannf. Molecules 22 (12), 2258. doi:10.3390/molecules22122258

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, J. K., Wang, Y., Zhang, X., Cao, L. Y., Ji, J. J., Zheng, Q. H., et al. (2020). Isolation and structural identification of a novel fructan from Radix Codonopsis. J. Carbohydr. Chem. 39 (4), 163–174. doi:10.1080/07328303.2020.1772278

CrossRef Full Text | Google Scholar

Li, J. K., Zhang, X., Cao, L. Y., Ji, J. J., and Gao, J. P. (2018). Three inulin-type fructans from codonopsis pilosula (franch.) Nannf. Roots and their prebiotic activity on Bifidobacterium longum. MOLECULES 23 (12), 3123. doi:10.3390/molecules23123123

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, Q.-y., Hu, D.-f., Zhang, X.-m., and Zhu, R.-r. (2016). Optimization of extraction process of Codonopsis pilosula polysaccharides and study on its composition. Chin. Traditional Herb. Drugs 47 (15), 2663–2667. doi:10.7501/j.issn.0253-2670.2016.15.013

CrossRef Full Text | Google Scholar

Li, R.-y. (2007). Studies on extraction technology of radix codonopsis water-soluble polysaccharides. USA: Shanxi Medical University.

Google Scholar

Li, Z.-h., Hu, Y., and Liu, Q. (2005). Comparison of the contents of atractylenoide Ill in Dangshen that two detectors detemmined. J. Gansu Univ. Chin. Med. (05), 45–47.

Google Scholar

Li, Z. T., Zhu, L. B., Zhang, H., Yang, J., Zhao, J., Du, D. W., et al. (2012). Protective effect of a polysaccharide from stem of Codonopsis pilosula against renal ischemia/reperfusion injury in rats. Carbohydr. Polym. 90 (4), 1739–1743. doi:10.1016/j.carbpol.2012.07.062

PubMed Abstract | CrossRef Full Text | Google Scholar

Lin, L.-C., Tsai, T.-H., and Kuo, C.-L. (2013). Chemical constituents comparison of Codonopsis tangshen, Codonopsis pilosula var. modesta and Codonopsis pilosula. Nat. Prod. Res. 27 (19), 1812–1815. doi:10.1080/14786419.2013.778849

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, C.-s., Wang, Y.-p., Shi, Y.-b., Ma, X.-m., Li, H.-l., Zhang, X.-y., et al. (2014). Effect of codonopsis radix maintained with sulfur fumigation on immune function in mice. J. Chin. Med. Mater. 37 (11), 1969–1972. doi:10.13863/j.issn1001-4454.2014.11.014

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, W., Lv, X., Huang, W. H., Yao, W. B., and Gao, X. D. (2018). Characterization and hypoglycemic effect of a neutral polysaccharide extracted from the residue of Codonopsis Pilosula. Carbohydr. Polym. 197, 215–226. doi:10.1016/j.carbpol.2018.05.067

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, Z.-q., Yao, X.-d., Xiao, S.-j., Chen, X.-l., Wu, Q.-n., and Yu, L. (2016). Purification and structural analysis of polysaccharide from a kind of water-soluble codonopsis pilosula. Genomics Appl. Biol. 35 (06), 1294–1299. doi:10.13417/j.gab.035.001294

CrossRef Full Text | Google Scholar

Luan, F., Ji, Y., Peng, L., Liu, Q., Cao, H., Yang, Y., et al. (2021). Extraction, purification, structural characteristics and biological properties of the polysaccharides from Codonopsis pilosula: a review. Carbohydr. Polym. 261, 117863. doi:10.1016/j.carbpol.2021.117863

PubMed Abstract | CrossRef Full Text | Google Scholar

Luo, Y., Li, W. L., Huang, W. H., Liu, X. H., Song, Y. G., and Qu, H. B. (2017). Rapid quantification of multi-components in alcohol precipitation liquid of Codonopsis Radix using near infrared spectroscopy (NIRS). J. ZHEJIANG UNIVERSITY-SCIENCE B 18 (5), 383–392. doi:10.1631/jzus.B1600141

PubMed Abstract | CrossRef Full Text | Google Scholar

Ma, X. Q., Leung, A. K. M., Chan, C. L., Su, T., Li, W. D., Li, S. M., et al. (2014). UHPLC UHD Q-TOF MS/MS analysis of the impact of sulfur fumigation on the chemical profile of Codonopsis Radix (Dangshen). Analyst 139 (2), 505–516. doi:10.1039/c3an01561k

PubMed Abstract | CrossRef Full Text | Google Scholar

Ma, Z.-m. (2015). The effect of Codonopsis pilosula stem and leaf on the growth performance of broilers. Animal Husb. Veterinary Med. 47 (01), 147.

Google Scholar

Magnusson, L. E., Risley, D. S., and Koropchak, J. A. (2015). Aerosol-based detectors for liquid chromatography. J. Chromatogr. A 1421, 68–81. doi:10.1016/j.chroma.2015.07.045

PubMed Abstract | CrossRef Full Text | Google Scholar

Meng, Y., Xu, Y.-j., Zhang, B.-h., Chang, C., Zheng, G.-h., and Wu, Y. (2020). Study on the anti-inflammatory activity and mechanism of different components from codonopsis radix polysaccharides. China Pharm. 31 (11), 1348–1352. doi:10.19540/j.cnki.cjcmm.20200204.402

CrossRef Full Text | Google Scholar

Pang, W.-r., Shuang, s.-m., and Liu, Y.-q. (2008). RP- HPLC determination of the contents and correlation of atractylenolide and lobetyolin. World J. Integr. Traditional West. Med. 2, 89–91. doi:10.13935/j.cnki.sjzx.2008.02.022

CrossRef Full Text | Google Scholar

Qiao, C. F., He, Z. D., Han, Q. B., Xu, H. X., Jiang, R. W., Li, S. L., et al. (2007). The use of lobetyolin and HPLC-UV fingerprints for quality assessment of Radix Codonopsis. J. FOOD DRUG ANALYSIS 15 (3), 258–264. doi:10.38212/2224-6614.2408

CrossRef Full Text | Google Scholar

Qing-Wen, S. U. N., Min, H., and Shun-zhi, H. E. (2009). Determination of lobetyolin in 7 species plants of Codonopsis by HPLC. West China J. Pharm. Sci. 24 (3), 290–292. doi:10.13375/j.cnki.wcjps.2009.03.017

CrossRef Full Text | Google Scholar

Ren, L.-j. (2008). Preliminary study on the structure and antioxidant activity of Codonopsis ginseng polysaccharide and its sulfated Codonopsis ginseng polysaccharide. Shaanxi Norm. Univ.

Google Scholar

Song, D., Cheng, X.-m., Li, L.-y., Zhong, G.-y., and Wang, Z.-t. (2008). Determination of Codonopsis pilosula alkyne glycosides in different origins of Codonopsis pilosula by HPLC. China J. Chin. Materia Medica 33 (17), 2133–2135.

Google Scholar

Sun, Q. L., Li, Y. X., Cui, Y. S., Jiang, S. L., Dong, C. X., and Du, J. (2019). Structural characterization of three polysaccharides from the roots of Codonopsis pilosula and their immunomodulatory effects on RAW264.7 macrophages. Int. J. Biol. Macromol. 130, 556–563. doi:10.1016/j.ijbiomac.2019.02.165

PubMed Abstract | CrossRef Full Text | Google Scholar

Sun, Y. X., and Liu, J. C. (2008). Structural characterization of a water-soluble polysaccharide from the roots of Codonopsis pilosula and its immunity activity. Int. J. Biol. Macromol. 43 (3), 279–282. doi:10.1016/j.ijbiomac.2008.06.009

PubMed Abstract | CrossRef Full Text | Google Scholar

Tang, S., Liu, W., Zhao, Q. Q., Li, K. D., Zhu, J. Y., Yao, W. B., et al. (2021). Combination of polysaccharides from Astragalus membranaceus and Codonopsis pilosula ameliorated mice colitis and underlying mechanisms. J. Ethnopharmacol. 264, 113280. doi:10.1016/j.jep.2020.113280

PubMed Abstract | CrossRef Full Text | Google Scholar

Vazifehkhoran, A. H., and Triolo, J. M. (2019). A novel mathematical modelling of waste biomass decomposition to facilitate rapid methane potential prediction. J. Clean. Prod. 220, 1222–1230. doi:10.1016/j.jclepro.2019.01.161

CrossRef Full Text | Google Scholar

Wakana, D., Kawahara, N., and Goda, Y. (2013). Two new pyrrolidine alkaloids, codonopsinol C and codonopiloside A, isolated from codonopsis pilosula. Chem. Pharm. Bull. 61 (12), 1315–1317. doi:10.1248/cpb.c13-00516

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, S., Hao, L. J., Zhu, J. J., Zhang, Q. W., Wang, Z. M., Zhang, X., et al. (2014). Study on the effects of sulfur fumigation on chemical constituents and antioxidant activity of Chrysanthemum morifolium cv. Hang-ju. Phytomedicine 21 (5), 773–779. doi:10.1016/j.phymed.2013.10.019

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, X.-d. (2015). Effect of adding codonopsis pilosula and Astragalus residue to diet on the quality of lamb meat. China Herbivore Sci. 35 (02), 32–36. doi:10.3969/j.issn.2095-3887.2015.02.010

CrossRef Full Text | Google Scholar

Wang, X. H., Xie, P. S., Lam, C. W. K., Yan, Y. Z., and Yu, Q. X. (2009). Study of the destructive effect to inherent quality of Angelicae dahuricae radix (Baizhi) by sulfur-fumigated process using chromatographic fingerprinting analysis. J. Pharm. Biomed. Analysis 49 (5), 1221–1225. doi:10.1016/j.jpba.2009.03.009

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, Y. (2013). Preliminary study on the preparation and biological activity of codonopsis pilosula polysaccharide sulfate. Zunyi Med. Coll.

Google Scholar

Wu, Q., Luo, M., Yao, X., and Yu, L. (2020a). Purification, structural characterization, and antioxidant activity of the COP-W1 polysaccharide from Codonopsis tangshen Oliv. Carbohydr. Polym. 236, 116020. doi:10.1016/j.carbpol.2020.116020

PubMed Abstract | CrossRef Full Text | Google Scholar

Wu, Q. H., Wei, D., Dong, L. L., Liu, Y. P., Ren, C. X., Liu, Q. Q., et al. (2019). Variation in the microbial community contributes to the improvement of the main active compounds of Magnolia officinalis Rehd. et Wils in the process of sweating. Chin. Med. 14 (1), 45. doi:10.1186/s13020-019-0267-4

PubMed Abstract | CrossRef Full Text | Google Scholar

Wu, Q. N., Luo, M., Yao, X. D., and Yu, L. (2020b). Purification, structural characterization, and antioxidant activity of the COP-W1 polysaccharide from Codonopsis tangshen Oliv. Carbohydr. Polym. 236, 116020. doi:10.1016/j.carbpol.2020.116020

PubMed Abstract | CrossRef Full Text | Google Scholar

Xie, M., Cheng, J., Zhao, G., Liu, H., Zhang, L., and Yang, C. (2020). Natural wax from non-medicinal aerial part of Codonopsis pilosula as a biolubricant. J. Clean. Prod. 242, 118403. doi:10.1016/j.jclepro.2019.118403

CrossRef Full Text | Google Scholar

Xie, Q., Tian, H. M., Huan, X. H., Cao, L. L., Wang, Y., Cheng, X. M., et al. (2022). Quality evaluation of Codonopsis Radix and processed products based on the analysis of monosaccharides and oligosaccharides by liquid chromatography coupled with charged aerosol detector. Phytochem. Anal. 33 (2), 262–271. doi:10.1002/pca.3085

PubMed Abstract | CrossRef Full Text | Google Scholar

Xie, Q., Wang, H. X., Guan, H. D., Xu, N., Zhao, X., Cheng, X. M., et al. (2023). The in vitro/in vivo metabolic pathways analysis of lobetyol, lobetyolin, and lobetyolinin, three polyacetylenes from Codonopsis Radix, by UHPLC-Q/TOF-MS and UHPLC-MS/MS. J. Pharm. Biomed. Analysis 223, 115140. doi:10.1016/j.jpba.2022.115140

CrossRef Full Text | Google Scholar

Xin, T., Zhang, F. B., Jiang, Q. Y., Chen, C. H., Huang, D. Y., Li, Y. J., et al. (2012). The inhibitory effect of a polysaccharide from Codonopsis pilosula on tumor growth and metastasis in vitro. Int. J. Biol. Macromol. 51 (5), 788–793. doi:10.1016/j.ijbiomac.2012.07.019

PubMed Abstract | CrossRef Full Text | Google Scholar

Xiuzhi, An, Jin, Z., Zhao, X., Park, S., and House, G. (2016). Physicochemical and sensory characteristics of hot water extracts of codonopsis lanceolata root skin and flesh with different heat treatments. Korean J. Food Sci. Technol. 48 (2), 104–110. doi:10.9721/kjfst.2016.48.2.104

CrossRef Full Text | Google Scholar

Xu, F., Kong, M., Xu, J., Li, S., and Jiang, Y. (2019). Effect of heat treatment on contents of sulfur dioxide residue and sulfur-containing derivatives in sulfur-fumigated codonopsis radix. Chin. J. Exp. Traditional Med. Formulae 25 (03), 162–166. doi:10.13422/j.cnki.syfjx.20182414

CrossRef Full Text | Google Scholar

Xu, F., Kong, M., Xu, J. D., Xu, J., Jiang, Y., and Li, S. L. (2020). Effects of sulfur fumigation and heating desulfurization on quality of medicinal herbs evaluated by metabolomics and glycomics: codonopsis Radix, a pilot study. J. Pharm. Biomed. Analysis 191, 113581. doi:10.1016/j.jpba.2020.113581

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, B., Wu, Q. J., Luo, Y. X., Yang, Q., Wei, X. Y., and Kan, J. Q. (2019a). High-pressure ultrasonic-assisted extraction of polysaccharides from Hovenia dulcis: extraction, structure, antioxidant activity and hypoglycemic. Int. J. Biol. Macromol. 137, 676–687. doi:10.1016/j.ijbiomac.2019.07.034

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, C. X., Gou, Y. Q., Chen, J. Y., An, J., Chen, W. X., and Hu, F. D. (2013). Structural characterization and antitumor activity of a pectic polysaccharide from Codonopsis pilosula. Carbohydr. Polym. 98 (1), 886–895. doi:10.1016/j.carbpol.2013.06.079

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, D., Chen, Y., Guo, F., Huang, B., Okyere, S. A., and Wang, H. (2019b). Comparative analysis of chemical composition, antioxidant and antimicrobial activities of leaves, leaf tea and root from Codonopsis pilosula. INDUSTRIAL CROPS Prod. 142, 111844. doi:10.1016/j.indcrop.2019.111844

CrossRef Full Text | Google Scholar

Yang, D.-d., Chen, Y., Guo, F.-x., Ge, X., Zhang, B.-q., Jiao, X.-s., et al. (2021). Study and application of above-ground parts of Codonopsis pilosula. Chin. Traditional Herb. Drugs 52 (13), 4055–4063. doi:10.7501/j.issn.0253-2670.2021.13.029

CrossRef Full Text | Google Scholar

Yang, D. D., Chen, Y., Guo, F. X., Huang, B. T., Okyere, S. A., and Wang, H. (2019c). Comparative analysis of chemical composition, antioxidant and antimicrobial activities of leaves, leaf tea and root from Codonopsis pilosula. Industrial Crops Prod. 142, 111844. doi:10.1016/j.indcrop.2019.111844

CrossRef Full Text | Google Scholar

Yang, X., Zhao, Y., Ruan, Y., and Yang, Y. (2008). Development and application of a capillary electrophoretic method for the composition analysis of a typical heteropolysaccharide from Codonopsis pilosula NANNF. Biol. Pharm. Bull. 31 (10), 1860–1865. doi:10.1248/bpb.31.1860

PubMed Abstract | CrossRef Full Text | Google Scholar

Ye, G., Li, C., Huang, C.-g., Li, Z.-x., Wang, X.-l., and Chen, Y.-z. (2005). Chemical structure of fructosan from Condonopsis pilosula. China J. Chin. Materia Medica 30 (17), 1338–1340.

PubMed Abstract | Google Scholar

Yu, L., Chen, H., and Lou, F.-m. (2011). Optimizing technics of extracting polysaccharides from codonopsis tangshen Oliv with microwave-assisted extraction. Food Res. Dev. 32 (09), 26–29.

Google Scholar

Yuan, S., Xu, C.-Y., Xia, J., Feng, Y.-N., Zhang, X.-F., and Yan, Y.-Y. (2020). Extraction of polysaccharides from Codonopsis pilosula by fermentation with response surface methodology. FOOD Sci. Nutr. 8 (12), 6660–6669. doi:10.1002/fsn3.1958

PubMed Abstract | CrossRef Full Text | Google Scholar

Yue, Y. M., Zang, Z. P., Wan, F. X., Zhang, Q., Shang, J. W., Xu, Y. R., et al. (2023a). Effect of ultrasonic pretreatment on radio frequency vacuum drying characteristics and quality of codonopsis pilosula slices. Agriculture-Basel 13 (1), 72. doi:10.3390/agriculture13010072

CrossRef Full Text | Google Scholar

Yue, Y. M., Zhang, Q., Wan, F. X., Ma, G. J., Zang, Z. P., Xu, Y. R., et al. (2023b). Effects of different drying methods on the drying characteristics and quality of codonopsis pilosulae slices. Foods 12 (6), 1323. doi:10.3390/foods12061323

PubMed Abstract | CrossRef Full Text | Google Scholar

Zeng, X., Li, J., Lyu, X., Chen, J., Chen, X., and Guo, S. (2022). Untargeted metabolomics reveals multiple phytometabolites in the agricultural waste materials and medicinal materials of codonopsis pilosula. Front. PLANT Sci. 12, 814011. doi:10.3389/fpls.2021.814011

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhan, Z. L., Deng, A. P., Kang, L. P., Tang, J. F., Nan, T. G., Chen, T., et al. (2018). Chemical profiling in Moutan Cortex after sulfuring and desulfuring processes reveals further insights into the quality control of TCMs by nontargeted metabolomic analysis. J. Pharm. Biomed. Analysis 156, 340–348. doi:10.1016/j.jpba.2018.04.045

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, P., Hu, L. H., Bai, R. B., Zheng, X. P., Ma, Y. L., Gao, X., et al. (2017). Structural characterization of a pectic polysaccharide from Codonopsis pilosula and its immunomodulatory activities in vivo and in vitro. Int. J. Biol. Macromol. 104, 1359–1369. doi:10.1016/j.ijbiomac.2017.06.023

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, r., Zhang, X., Liu, J.-q., Shu, J.-c., Liu-Hong, H., and Qi, C. (2013). Optimization of subcritical water extraction Technolog.of codonopsis tangshen. Chin. J. Exp. Traditional Med. Formulae 19 (10), 34–37. doi:10.11653/syfj2013100034

CrossRef Full Text | Google Scholar

Zhang, X., Zhang, R., Niu, Y., Wen, J., Ji, H., Gao, J., et al. (2022). Effect of washing times on the quality characteristics and protein oxidation of silver carp surimi. J. Chin. Med. Mater. 11 (10), 2397–2403. doi:10.3390/foods11162397

CrossRef Full Text | Google Scholar

Zhang, Y.-j., Liang, Z.-y., and Zhang, L.-x. (2012). Study on composition and immunological activities of crudepolysaccharide isolated from the Codonopsis pilosula. J. Northwest A F Univ. Sci. Ed. 40 (07), 199–202+208. doi:10.13207/j.cnki.jnwafu.2012.07.014

CrossRef Full Text | Google Scholar

Zhang, Y.-j., Liang, Z.-y., Zhao, W., Huo, X., Zhang, L.-x., and Zhang, X. (2005). Separation, purification and compositional analysis of water soluble polysaccharide CPPS3, from Codonpsis pilosula. Chin. Pharm. J. 14, 1107–1109.

Google Scholar

Zhao, Y. Y., and Wang, E. B. (2016). Study on fundamental process of codonopsis pilosula desulfurization and in vitro antibacterial activity of its polysaccharide extract on Escherichia coli. Pharm. Chem. J. 49 (11), 782–787. doi:10.1007/s11094-016-1371-8

CrossRef Full Text | Google Scholar

Zhu, H., Shen, H., Xu, J., Xu, J., Zhu, L., Wu, J., et al. (2015). Comparative study on intestinal metabolism and absorption in vivo of ginsenosides in sulphur-fumigated and non-fumigated ginseng by ultra performance liquid chromatography quadruple time-of-flight mass spectrometry based chemical profiling approach. Drug Test. Analysis 7 (4), 320–330. doi:10.1002/dta.1675

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhu, S., Guo, S., Sha, X., Daun, X., Lu, X., Qian, D., et al. (2017). Modelling and analysis of the moisture dynamic process of Codonopsis Radix with different drying methods. Sci. Technol. Food Industry 38 (07), 245–249+255. doi:10.13386/j.issn1002-0306.2017.07.040

CrossRef Full Text | Google Scholar

Zhu, S., Liu, Q. Z., Qiu, S. M., Dai, J. P., and Gao, X. X. (2022). DNA barcoding: an efficient technology to authenticate plant species of traditional Chinese medicine and recent advances. Chin. Med. 17 (1), 112. doi:10.1186/s13020-022-00655-y

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhu-Rui (2013). Analyses and anti-tumor activitives of the polysaccharides from codonopsis pillosula. Northeast Norm. Univ.

Google Scholar

Zou, Y. F., Chen, X. F., Malterud, K. E., Rise, F., Barsett, H., Inngjerdingen, K. T., et al. (2014). Structural features and complement fixing activity of polysaccharides from Codonopsis pilosula Nannf. var. modesta L.T.Shen roots. Carbohydr. Polym. 113, 420–429. doi:10.1016/j.carbpol.2014.07.036

PubMed Abstract | CrossRef Full Text | Google Scholar

Zou, Y. F., Zhang, Y. Y., Fu, Y. P., Inngjerdingen, K. T., Paulsen, B. S., Feng, B., et al. (2019). A polysaccharide isolated from codonopsis pilosula with immunomodulation effects both in vitro and in vivo. Molecules 24 (20), 3632. doi:10.3390/molecules24203632

PubMed Abstract | CrossRef Full Text | Google Scholar

Zou, Y. F., Zhang, Y. Y., Paulsen, B. S., Fu, Y. P., Huang, C., Feng, B., et al. (2020a). Prospects of Codonopsis pilosula polysaccharides: structural features and bioactivities diversity. Trends Food Sci. Technol. 103, 1–11. doi:10.1016/j.tifs.2020.06.012

CrossRef Full Text | Google Scholar

Zou, Y. F., Zhang, Y. Y., Paulsen, B. S., Rise, F., Chen, Z. L., Jia, R. Y., et al. (2020b). Structural features of pectic polysaccharides from stems of two species of Radix Codonopsis and their antioxidant activities. Int. J. Biol. Macromol. 159, 704–713. doi:10.1016/j.ijbiomac.2020.05.083

PubMed Abstract | CrossRef Full Text | Google Scholar

Zou, Y. F., Zhang, Y. Y., Zhu, Z. K., Fu, Y. P., Paulsen, B. S., Huang, C., et al. (2021). Characterization of inulin-type fructans from two species of Radix Codonopsis and their oxidative defense activation and prebiotic activities. J. Sci. Food Agric. 101 (6), 2491–2499. doi:10.1002/jsfa.10875

PubMed Abstract | CrossRef Full Text | Google Scholar

Keywords: Codonopsis radix, resource utilization, sulfur fumigation, rubbing and sweating, quality evaluation, polysaccharides

Citation: Liang W, Sun J, Bai G, Qiu D, Li Q, Dong P, Chen Y and Guo F (2024) Codonopsis radix: a review of resource utilisation, postharvest processing, quality assessment, and its polysaccharide composition. Front. Pharmacol. 15:1366556. doi: 10.3389/fphar.2024.1366556

Received: 06 January 2024; Accepted: 28 March 2024;
Published: 30 April 2024.

Edited by:

Michael Heinrich, University College London, United Kingdom

Reviewed by:

Chongning Lv, Shenyang Pharmaceutical University, China
Xiaowei Du, Heilongjiang University of Chinese Medicine, China

Copyright © 2024 Liang, Sun, Bai, Qiu, Li, Dong, Chen and Guo. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

*Correspondence: Wei Liang, liangw@gsau.edu.cn; Yuan Chen, cygcx1963@163.com; Fengxia Guo, guofx@gsau.edu.cn

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