Developments in the study of Chinese herbal medicine’s assessment index and action mechanism for diabetes mellitus

Xin-Yue Liu , Han-Wen Zheng , Feng-Zhong Wang , Tul-Wahab Atia , Bei Fan , Qiong Wang

Animal Models and Experimental Medicine ›› 2024, Vol. 7 ›› Issue (4) : 433 -443.

PDF (1834KB)
Animal Models and Experimental Medicine ›› 2024, Vol. 7 ›› Issue (4) : 433 -443. DOI: 10.1002/ame2.12455
REVIEW

Developments in the study of Chinese herbal medicine’s assessment index and action mechanism for diabetes mellitus

Author information +
History +
PDF (1834KB)

Abstract

In traditional Chinese medicine (TCM), based on various pathogenic symptoms and the ‘golden chamber’ medical text, Huangdi Neijing, diabetes mellitus falls under the category ‘collateral disease’. TCM, with its wealth of experience, has been treating diabetes for over two millennia. Different antidiabetic Chinese herbal medicines reduce blood sugar, with their effective ingredients exerting unique advantages. As well as a glucose lowering effect, TCM also regulates bodily functions to prevent diabetes associated complications, with reduced side effects compared to western synthetic drugs. Chinese herbal medicine is usually composed of polysaccharides, saponins, alkaloids, flavonoids, and terpenoids. These active ingredients reduce blood sugar via various mechanism of actions that include boosting endogenous insulin secretion, enhancing insulin sensitivity and adjusting key enzyme activity and scavenging free radicals. These actions regulate glycolipid metabolism in the body, eventually achieving the goal of normalizing blood glucose. Using different animal models, a number of molecular markers are available for the detection of diabetes induction and the molecular pathology of the disease is becoming clearer. Nonetheless, there is a dearth of scientific data about the pharmacology, dose-effect relationship, and structure–activity relationship of TCM and its constituents. Further research into the efficacy, toxicity and mode of action of TCM, using different metabolic and molecular markers, is key to developing novel TCM antidiabetic formulations.

Keywords

animal model / Chinese herbal medicine / diabetes mellitus / evaluation index / mechanism of action

Cite this article

Download citation ▾
Xin-Yue Liu, Han-Wen Zheng, Feng-Zhong Wang, Tul-Wahab Atia, Bei Fan, Qiong Wang. Developments in the study of Chinese herbal medicine’s assessment index and action mechanism for diabetes mellitus. Animal Models and Experimental Medicine, 2024, 7(4): 433-443 DOI:10.1002/ame2.12455

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

ZhangL, ZhouX, ChenH, et al. Mulberry extract ameliorates T2DM-related symptoms via AMPK pathway in STZ-HFD-induced C57BL/6J mice. J Ethnopharmacol. 2023;313:116475.

[2]

TönniesT, Rathmann W, HoyerA, BrinksR, KussO. Quantifying the underestimation of projected global diabetes prevalence by the international diabetes federation (IDF) diabetes atlas. BMJ Open Diabetes Res Care. 2021;9(1):e002122.

[3]

ChienTungW, YuehTing T, HsuanKuangJ, et al. Metformin and the risk of anemia of advanced chronic kidney disease in patients with type 2 diabetes mellitus. J Clin Pharmacol. 2021;62(2):276-284.

[4]

XiangningH, XinyiY, YanT, RongY. Application of animal models of type 2 diabetes mellitus: based on data mining. Chin J Exp Tradit Med Formulae. 2023;29(2):159-165.

[5]

KongliH, ShijieS, YutingW, et al. Research progress on model organism zebrafish in neurodegenerative diseases. Chin J Comp Med. 2023;33(10):121-131.

[6]

CapiottiKM, Antonioli Junior R, KistLW, BogoMR, BonanCD, Da SilvaRS. Persistent impaired glucose metabolism in a zebrafish hyperglycemia model. Comp Biochem Physiol B Biochem Mol Biol. 2014;171:58-65.

[7]

KleinertM, Clemmensen C, HofmannSM, et al. Animal models of obesity and diabetes mellitus. Nat Rev Endocrinol. 2018;14(3):140-162.

[8]

ZangL, Maddison LA, ChenW. Zebrafish as a model for obesity and diabetes. Front Cell Dev Biol. 2018;6:91.

[9]

LiY, ChenQ, LiuY, et al. High glucose-induced ROS-accumulation in embryo-larval stages of zebrafish leads to mitochondria-mediated apoptosis. Apoptosis. 2022;27(7–8):509-520.

[10]

WuD, ZouC, YueF, LiX, LiS, ZhangYA. The effect of long-term streptozotocin-induced diabetes mellitus (STZ-DM) on cynomolgus (Macaca Fascicularis) monkeys. J Med Primatol. 2009;38(1):15-22.

[11]

ShibataS, Kirchhof N, MatsumotoS, et al. High-dose streptozotocin for diabetes induction in adult rhesus monkeys. Transplant Proc. 2002;34(4):1341-1344.

[12]

WagnerJD, ClineJM, ShadoanMK, Bullock BC, RankinSE, CefaluWT. Naturally occurring and experimental diabetes in cynomolgus monkeys: a comparison of carbohydrate and lipid metabolism and islet pathology. Toxicol Pathol. 2001;29(1):142-148.

[13]

BinL, XiaoYuW. Progress on nonhuman primate models of diabetes mellitus. Zool Res. 2011;32(1):91-96.

[14]

SzkudelskiT. The mechanism of alloxan and streptozotocin action in B cells of the rat pancreas. Physiol Res. 2001;50(6):537-546.

[15]

QiaoCF, TianBL, MaiG, et al. Induction of diabetes in rhesus monkeys and establishment of insulin administration strategy. Transplant Proc. 2009;41(1):413-417.

[16]

WagnerJD, Kavanagh K, WardGM, AuerbachBJ, Harwood HJ Jr, KaplanJR. Old world nonhuman primate models of type 2 diabetes mellitus. ILAR J. 2006;47(3):259-271.

[17]

NiuY, YuY, BernatA, et al. Transgenic rhesus monkeys produced by gene transfer into early-cleavage-stage embryos using a simian immunodeficiency virus-based vector. Proc Natl Acad Sci USA. 2010;107(41):17663-17667.

[18]

BrennanM, CroweA, TiernanC, et al. Risk of Hypoglycaemia in older patients in residential care on Oral Hypoglycaemic medication. Age Ageing. 2019;48:iii17-iii65.

[19]

HuanY, HongC, MiZ, Dongfang W, QiaoliJ. Establishment of the quality index of clinical pharmacists in chronic disease Management for Patients with type 2 diabetes. China Pharmacist. 2019;22(11):2049-2051.

[20]

ZhengzhuanJ, LipingZ. Evaluation of blood lipid indicators, Hemorheology for the clinical effectiveness of diabetes tests. Diabetes New World. 2023;26(17):57-60.

[21]

SinghRG, NguyenNN, DeSouzaSV, Pendharkar SA, PetrovMS. Comprehensive analysis of body composition and insulin traits associated with intra-pancreatic fat deposition in healthy individuals and people with new-onset prediabetes/diabetes after acute pancreatitis. Diabetes Obes Metab. 2019;21(2):417-423.

[22]

CaijingH, Xiaoting K, XiaohongX, et al. Effects of ginseng peptides on the hypoglycemic activity and gut microbiota of a type 2 diabetes mellitus mice model. J Funct Foods. 2023;111:105897.

[23]

MingjunY, JinhuiL, JumeiY, et al. Effects of Codonopsis pilosula crude polysaccharides by hypoglycemic and modulating gut microbiome in a high-fat diet and streptozotocin-induced mouse model of T2DM. J Funct Foods. 2023;111:105893.

[24]

XiangY, CaoY-N, YangS-H, et al. Isolation and purification of Tartary buckwheat polysaccharides and their effect on gut microbiota. Food Sci Nutr. 2023;11(1):408-417.

[25]

YangH-R, ChenL-H, ZengY-J. Structure, antioxidant activity and in vitro hypoglycemic activity of a polysaccharide purified from Tricholoma matsutake. Foods. 2021;10(9):2184.

[26]

DuanW-X, YangX-H, ZhangH-F, Feng J, ZhangM-Y. Chemical structure, hypoglycemic activity, and mechanism of action of selenium polysaccharides. Biol Trace Elem Res. 2022;200(10):4404-4418.

[27]

ZhuY, YangL, ZhangC, Tian Y, ZhangF, LiX. Structural and functional analyses of three purified polysaccharides isolated from Chinese Huaishan-yams. Int J Biol Macromol. 2018;120:693-701.

[28]

GrewalAS, KharbR, PrasadDN, Dua JS, LatherV. Design, synthesis and evaluation of novel 3, 5-disubstituted benzamide derivatives as allosteric glucokinase activators. BMC Chem. 2019;13(1):2.

[29]

DengN, ZhengB, LiT, LiuRH. Assessment of the phenolic profiles, hypoglycemic activity, and molecular mechanism of different highland barley (Hordeum vulgare L.) varieties. Int J Mol Sci. 2020;21(4):1175.

[30]

TiongSH, LooiCY, AryaA, et al. Vindogentianine, a hypoglycemic alkaloid from Catharanthus roseus (L.) G. Don (Apocynaceae). Fitoterapia. 2015;102:182-188.

[31]

GongP, LongH, GuoY, WangS, ChenF, Chen X. Isolation, structural characterization, and hypoglycemic activities in vitro of polysaccharides from Pleurotus eryngii. Molecules. 2022;27(20):7140.

[32]

FengW, LiuY, FeiF, et al. Improvement of high-glucose and insulin resistance of chromium malate in 3T3-L1 adipocytes by glucose uptake and insulin sensitivity signaling pathways and its mechanism. RSC Adv. 2019;9(1):114-127.

[33]

WangH, ShiS, BaoB, LiX, WangS. Structure characterization of an arabinogalactan from green tea and its anti-diabetic effect. Carbohydr Polym. 2015;124:98-108.

[34]

XuD-q, LiC-j, JiangZ-z, et al. The hypoglycemic mechanism of catalpol involves increased AMPK-mediated mitochondrial biogenesis. Acta Pharmacol Sin. 2020;41(6):791-799.

[35]

XiaoxiaC, ChunC, XiongF. Hypoglycemic activity in vitro and vivo of a water-soluble polysaccharide from Astragalus membranaceus. Food Funct. 2022;13(21):11210-11222.

[36]

JiaQ, LiuX, WuX, et al. Hypoglycemic activity of a polyphenolic oligomer-rich extract of Cinnamomum parthenoxylon bark in normal and streptozotocin-induced diabetic rats. Phytomedicine. 2008;16(8):744-750.

[37]

ZhouP, XieW, HeS, et al. Ginsenoside Rb1 as an anti-diabetic agent and its underlying mechanism analysis. Cells. 2019;8(3):204.

[38]

ZouS, ZhangX, YaoW, NiuY, GaoX. Structure characterization and hypoglycemic activity of a polysaccharide isolated from the fruit of Lycium barbarum L. Carbohydr Polym. 2010;80(4):1161-1167.

[39]

PerfumiM, Tacconi NAR. Hypoglycemic activity of Salvia fruticosa Mill. from Cyprus. J Ethnopharmacol. 1991;34(2–3):135-140.

[40]

RuxueZ, Jinhuang Z, ZhengpingJ, YongxiangZ, Guoming G. Hypoglycemic effect of Rehmannia glutinosa oligosaccharide in hyperglycemic and alloxan-induced diabetic rats and its mechanism. J Ethnopharmacol. 2004;90(1):39-43.

[41]

GuoQ, ChenZ, SanthanamRK, et al. Hypoglycemic effects of polysaccharides from corn silk (Maydis stigma) and their beneficial roles via regulating the PI3K/Akt signaling pathway in L6 skeletal muscle myotubes. Int J Biol Macromol. 2018;121:981-988.

[42]

JunchengC, LitingW, QingsongZ, et al. Structural characterization and in vitro hypoglycaemic activity of glucomannan from Anemarrhena asphodeloides Bunge. Food Funct. 2022;13(4):1797-1807.

[43]

ZhangY, HeZ, LiuX, et al. Oral administration of Angelica sinensis polysaccharide protects against pancreatic islets failure in type 2 diabetic mice: pancreatic β-cell apoptosis inhibition. J Funct Foods. 2019;54:361-370.

[44]

Feng-LinH, Min LI, Daih-HuangK, Wang-Chuan C, Hui-ChenS, Juei-TangC. Antihyperglycemic effect of puerarin in streptozotocin-induced diabetic rats. J Nat Prod. 2003;66(6):788-792.

[45]

ChenY, QiL, ZhongF, Li Y, KeW, MaY. Integrated metabolomics and ligand fishing approaches to screen the hypoglycemic ingredients from four Coptis medicines. J Pharm Biomed Anal. 2020;192:113655.

[46]

QianL, WenzhiL, QunyuG, Yuxiao Z. Hypoglycemic effect of Chinese yam (Dioscorea opposita rhizoma) polysaccharide in different structure and molecular weight. J Food Sci. 2017;82(10):2487-2494.

[47]

DengY, HeK, YeX, et al. Saponin rich fractions from Polygonatum odoratum (Mill.) Druce with more potential hypoglycemic effects. J Ethnopharmacol. 2012;141(1):228-233.

[48]

Tzu-HsuanL, Chia-Chung H, Lee-TianCC, Wen-ChinY. Anti-hyperglycemic properties of crude extract and triterpenes from Poria cocos. Evid Based Complement Alternat Med. 2011;2011:128402.

[49]

Al-SultanyFH, Al-Hussaini IM, SaadiAHA. Studying hypoglycemic activity of Cuscuta chinesis Lam. on type 1 diabetes mellitus in white male rats. J Phys Conf Ser. 2019;1294(6):062020.

[50]

KonnoC, SuzukiY, OishiK, Munakata E, HikinoH. Isolation and hypoglycemic activity of Atractans A, B and C, glycans of Atractylodes japonica rhizomes. Planta Med. 1985;51(2):102-103.

[51]

YitongW, Meixing Y, RuiqingQ, YanlingG. Enzymolysis–microwave-assisted hydrodistillation for extraction of volatile oil from atractylodes Chinensis and its hypoglycemic activity in vitro. J AOAC Int. 2021;104(4):1196-1205.

[52]

GrayAM, FlattPR. Actions of the traditional anti-diabetic plant, agrimony eupatoria (agrimony): effects on hyperglycaemia, cellular glucose metabolism and insulin secretion. Br J Nutr. 1998;80(1):109-114.

[53]

EzazulHM, Shahnaz R, MohammedR, RownakJ. Evaluation of antihyperglycemic and antinociceptive activity of Xanthium indicum stem extract in Swiss albino mice. BMC Complement Altern Med. 2013;13(1):296.

[54]

LiQ, QuH. Study on the hypoglycemic activities and metabolism of alcohol extract of Alismatis Rhizoma. Fitoterapia. 2012;83(6):1046-1053.

[55]

JieZ, JiguoH, BaopingJ, Ye L, XiaofengZ. Antihyperglycemic effects of Platycodon grandiflorum (Jacq.) A. DC. extract on streptozotocin-induced diabetic mice. Plant Foods Hum Nutr. 2007;62(1):7-11.

[56]

KunZ, MeiH, XiaZ, et al. Hypoglycemic and antioxidant properties of extracts and fractions from Polygoni avicularis herba. Molecules. 2022;27(11):3381.

[57]

MichaelT, IsaacE, RichardM, Ronald KK, WilsonB. Hypoglycemic and toxic effect of Morus mesozygia leaf extract on the liver and kidneys of alloxan-induced hyperglycemic Wistar rats. Evid Based Complement Alternat Med. 2019;2019:6712178.

[58]

BilinX, Zhiliang L, TingZ, et al. Bioactives of Momordica charantia as potential anti-diabetic/hypoglycemic agents. Molecules. 2022;27(7):2175.

[59]

FeiF, Xi-rong W, Peng-chengZ. Research progress on hypoglycemic mechanism of traditional Chinese medicine compound preparations. J Chin Med Mater. 2011;34(6):996-999.

[60]

QianW, TaoH, JialiZ, et al. Integrated meta analysis and network pharmacology to investigate clinical evaluation and potential mechanism of Bushen Huoxue Decoction in treatment of diabetic nephropathy. Chin Tradit Herb Drugs. 2021;52(6):1692-1705.

[61]

ChengxinS, YanC, XinzhiL, Guihua T, YuyingF, YifaZ. Anti-hyperglycemic and anti-oxidative activities of ginseng polysaccharides in STZ-induced diabetic mice. Food Funct. 2014;5(5):845-848.

[62]

SuzukiY, HikinoH. Mechanisms of hypoglycemic activity of panaxans A and B, glycans of Panax ginseng roots: effects on the key enzymes of glucose metabolism in the liver of mice. Phytother Res. 1989;3(1):15-19.

[63]

QingyuM, RuohanZ, XiaoqingX, et al. Hypoglycemic effects of Lycium barbarum polysaccharide in type 2 diabetes mellitus mice via modulating gut microbiota. Front Nutr. 2022;9:916271.

[64]

WuG, BaiZ, WanY, ShiH, HuangX, Nie S. Antidiabetic effects of polysaccharide from azuki bean (Vigna angularis) in type 2 diabetic rats via insulin/PI3K/AKT signaling pathway. Food Hydrocoll. 2020;101:105456.

[65]

GongY, ZhangJ, GaoF, et al. Structure features and in vitro hypoglycemic activities of polysaccharides from different species of Maidong. Carbohydr Polym. 2017;173:215-222.

[66]

ChenX, JinJ, TangJ, et al. Extraction, purification, characterization and hypoglycemic activity of a polysaccharide isolated from the root of Ophiopogon japonicus. Carbohydr Polym. 2010;83(2):749-754.

[67]

ZhangY, RenC, LuG, et al. Anti-diabetic effect of mulberry leaf polysaccharide by inhibiting pancreatic islet cell apoptosis and ameliorating insulin secretory capacity in diabetic rats. Int Immunopharmacol. 2014;22(1):248-257.

[68]

LiuH, QiX, YuK, et al. AMPK activation is involved in hypoglycemic and hypolipidemic activities of mogroside-rich extract from Siraitia grosvenorii (Swingle) fruits on high-fat diet/streptozotocin-induced diabetic mice. Food Funct. 2019;10(1):151-162.

[69]

DaiS, HongY, XuJ, LinY, SiQ, GuX. Ginsenoside Rb2 promotes glucose metabolism and attenuates fat accumulation via AKT-dependent mechanisms. Biomed Pharmacother. 2018;100:93-100.

[70]

GuoX, SunW, LuoG, et al. Panax notoginseng saponins alleviate skeletal muscle insulin resistance by regulating the IRS1-PI3K-AKT signaling pathway and GLUT4 expression. FEBS Open Bio. 2019;9(5):1008-1019.

[71]

ZhangC, QiaoS, WuJ, et al. A new insulin-sensitive enhancer from Silene viscidula, WPTS, treats type 2 diabetes by ameliorating insulin resistance, reducing dyslipidemia, and promoting proliferation of islet β cells. Pharmacol Res. 2021;165:105416.

[72]

ShujingA, DouN, TingW, et al. Total saponins isolated from Corni fructus via ultrasonic microwave-assisted extraction attenuate diabetes in mice. Foods. 2021;10(3):670.

[73]

ZhuM, LuoJ, LvH, KongL. Determination of anti-hyperglycaemic activity in steroidal glycoside rich fraction of lily bulbs and characterization of the chemical profiles by LC-Q-TOF-MS/MS. J Funct Foods. 2014;6:585-597.

[74]

ZhangL, SuS, ZhuY, et al. Mulberry leaf active components alleviate type 2 diabetes and its liver and kidney injury in db/db mice through insulin receptor and TGF-β /Smads signaling pathway. Biomed Pharmacother. 2019;112:108675.

[75]

LuS-S, YuY-L, ZhuH-J, et al. Berberine promotes glucagon-like peptide-1 (7-36) amide secretion in streptozotocin-induced diabetic rats. J Endocrinol. 2009;200(2):159-165.

[76]

PatelMB, MishraS. Hypoglycemic activity of alkaloidal fraction of Tinospora cordifolia. Phytomedicine. 2011;18(12):1045-1052.

[77]

ShuX-S, LvJ-H, TaoJ, LiG-M, LiH-D, Ma N. Antihyperglycemic effects of total flavonoids from Polygonatum odoratum in STZ and alloxan-induced diabetic rats. J Ethnopharmacol. 2009;124(3):539-543.

[78]

de Santana AquinoDF, Monteiro TA, Lima CardosoCA, et al. Investigation of the antioxidant and hypoglycemiant properties of Alibertia edulis (LC Rich.) AC Rich. leaves. J Ethnopharmacol. 2020;253:112648.

[79]

TuL, WangR, FangZ, et al. Assessment of the hypoglycemic and hypolipidemic activity of flavonoid-rich extract from Angelica keiskei. Molecules. 2022;27(19):6625.

[80]

WuF, JinZ, JinJ. Hypoglycemic effects of glabridin, a polyphenolic flavonoid from licorice, in an animal model of diabetes mellitus. Mol Med Rep. 2013;7(4):1278-1282.

[81]

TanakaS, HanLK, ZhengYN, Okuda H. Effects of the flavonoid fraction from Ginkgo biloba extract on the postprandial blood glucose elevation in rats. Yakugaku Zasshi. 2004;124(9):605-611.

[82]

JungUJ, LeeM-K, ParkYB, Kang MA, ChoiM-S. Effect of citrus flavonoids on lipid metabolism and glucose-regulating enzyme mRNA levels in type-2 diabetic mice. Int J Biochem Cell Biol. 2006;38(7):1134-1145.

[83]

LinZ, TongY, LiN, ZhuZ, LiJ. Network pharmacology-based study of the mechanisms of action of anti-diabetic triterpenoids from Cyclocarya paliurus. RSC Adv. 2020;10(61):37168-37181.

[84]

LiuJ, YangJ. Hypoglycemic effect of Forsythia suspensa leaves on diabetic mice. Agric Sci Technol. 2013;14(1):98-99, 175.

[85]

KakoM, MiuraT, NishiyamaY, Ichimaru M, MoriyasuM, KatoA. Hypoglycemic activity of some triterpenoid glycosides. J Nat Prod. 1997;60(6):604-605.

[86]

BisioA, De Mieri M, MilellaL, et al. Antibacterial and hypoglycemic diterpenoids from Salvia chamaedryoides. J Nat Prod. 2017;80(2):503-514.

[87]

JiangZ-Y, LiuC-J, NiuQ, et al. In vitro hypoglycemic diterpenoids from the roots of Croton yunnanensis. J Nat Prod. 2023;86:199-208.

[88]

WangJ, HaTKQ, ShiY-P, Oh WK, YangJ-L. Hypoglycemic triterpenes from Gynostemma pentaphyllum. Phytochemistry. 2018;155:171-181.

[89]

LiuXJ, HuXK, YangH, et al. A review of traditional Chinese medicine on treatment of diabetic nephropathy and the involved mechanisms. Am J Chin Med. 2022;50(7):1739-1779.

[90]

WangJ, MaQ, LiY, et al. Research progress on traditional Chinese medicine syndromes of diabetes mellitus. Biomed Pharmacother. 2020;121:109565.

[91]

LuG, YongZ, DanL. Research progress on pathogenesis and drugs of type 2 diabetes mellitus. Chin J Clin Ration Drug Use. 2024;17(11):176-180.

[92]

HuifenZ, YugingZ, QianyingW, Wanrong Y, HuangH, ShulingH. Effect and safety of Huangqi Xiaoji Huazhuo decoction in treating patients with prediabetes mellitus of spleen-deficiency phlegm-dampness syndrome. Guiding J Tradit Chin Med Pharm. 2023;29(12):53-56, 83.

[93]

MengzhuG, Jindong Z, ZhaohuiF, YiZ, DiY. Meta-analysis of the efficacy and safety of Jinlida granules combined with metformin in the treatment of type 2 diabetes mellitus. Chin J Difficult Complicated Cases. 2023;22(11):1204-1209.

[94]

BairongX, JingT, DongN, Zuoying X, BoyongQ, YongxiaW. Efficacy and safety of compound danshen dripping pills combined with conventional western medicine in the treatment of coronary heart disease complicated with diabetes mellitus: a meta analysis. Tradit Chin Drug Res Clin Pharmacol. 2024;35(2):280-290.

[95]

RuijunSCW. Evaluation of clinical efficacy of Yiben Huoxue decoction in the treatment of elderly patients with diabetes mellitus. Diabetes New World. 2023;26(21):16-19.

RIGHTS & PERMISSIONS

2024 The Author(s). Animal Models and Experimental Medicine published by John Wiley & Sons Australia, Ltd on behalf of The Chinese Association for Laboratory Animal Sciences.

AI Summary AI Mindmap
PDF (1834KB)

1373

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/