China Animal Husbandry & Veterinary Medicine ›› 2025, Vol. 52 ›› Issue (11): 5180-5191.doi: 10.16431/j.cnki.1671-7236.2025.11.015
• Nutrition and Feed • Previous Articles Next Articles
LI Jiawei1, LI Yuanfei2, XIAO Yanqing1, CHEN Qinghua1
Revised:2025-06-17
Online:2025-11-05
Published:2025-10-30
CLC Number:
LI Jiawei, LI Yuanfei, XIAO Yanqing, CHEN Qinghua. Research Advance of the Mechanism of Natural Polyphenols in Regulating Lipid Metabolism in Animals[J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(11): 5180-5191.
| [1] TARJUELO L,PARDO J E,ÁLVAREZ-ORTÍ M,et al.Development of seed-oil based dried sausages,considering physicochemical and nutritional quality and the role of food neophobia[J].Nutrients,2022,14(15):3106. [2] HOU B Y,ZHAO Y R,QIANG G F,et al.Puerarin mitigates diabetic hepatic steatosis and fibrosis by inhibiting TGF-β signaling pathway activation in type 2 diabetic rats[J]. Oxidative Medicine and Cellular Longevity,2018,2018:13. [3] LIU J,SONG Y,ZHAO Q,et al.Effects of tartary buckwheat protein on gut microbiome and plasma metabolite in rats with high-fat diet[J]. Foods,2021,10(10):2457. [4] SERRA D,ALMEIDA L M,DINIS T C.Dietary polyphenols:A novel strategy to modulate microbiota-gut-brain axis[J].Trends in Food Science & Technology,2018,78:224-233. [5] HOSSEN I,HUA W,TING L,et al.Phytochemicals and inflammatory bowel disease:A review[J].Critical Reviews in Food Science and Nutrition,2022,60(8):1321-1345. [6] CHEN L Y,PU Y J,XU Y,et al.Anti-diabetic and anti-obesity:Efficacy evaluation and exploitation of polyphenols in fruits and vegetables[J]. Food Research International,2022,157:111202. [7] AHMADIFAR E,YOUSEFI M,KARIMI M,et al.Benefits of dietary polyphenols and polyphenol-rich additives to aquatic animal health:An overview[J]. Reviews in Fisheries Science & Aquaculture,2021,29(4):478-511. [8] LOSADA-BARREIRO S,BRAVO-DIAZ C.Free radicals and polyphenols:the redox chemistry of neurodegenerative diseases[J]. European Journal of Medicinal Chemistry,2017,133:379-402. [9] PALIERSE E,MASSE S,LAURENT G,et al.Synthesis of hybrid polyphenol/hydroxyapatite nanomaterials with anti-radical properties[J].Nanomaterials,2022,12(20):3588. [10] ZHANG S Y,XU M Y,ZHANG W X,et al.Natural polyphenols in metabolic syndrome:Protective mechanisms and clinical applications[J].International Journal of Molecular Sciences,2021,22(11):6110. [11] WANG Z,WANG W Q,ZHU C L,et al.Evaluation of antioxidative and neuroprotective activities of total flavonoids from sea buckthorn (Hippophae rhamnoides L.)[J].Frontiers in Nutrition,2022,9:861097. [12] WANG T Y,LI Q,BI K S.Bioactive flavonoids in medicinal plants:Structure,activity and biological fate[J].Asian Journal of Pharmaceutical Sciences,2018,13(1):12-23. [13] BEŠLO D,GOLUBI AĆG N,RASTIJA V,et al.Antioxidant activity,metabolism,and bioavailability of polyphenols in the diet of animals[J].Antioxidants,2023,12(6):1141. [14] WANG S H,DU Q Y,MENG X L,et al.Natural polyphenols:A potential prevention and treatment strategy for metabolic syndrome[J]. Food & Function,2022,13(19):9734-9753. [15] CHEN J,HUANG Z,CAO X,et al.Plant-derived polyphenols in sow nutrition:An update[J]. Animal Nutrition,2023,12:96-107. [16] RASHMI H B,NEGI P S.Phenolic acids from vegetables:A review on processing stability and health benefits[J]. Food Research International,2020,136:109298. [17] MEKKY R H,ABDEL-SATTAR E,SEGURA-CARRETERO A,et al.Phenolic compounds from sesame cake and antioxidant activity:A new insight for agri-food residues’ significance for sustainable development[J].Foods,2019,8(10):432. [18] PECYNA P,WARGULA J,MURIAS M,et al.More than resveratrol:New insights into stilbene-based compounds[J].Biomolecules,2020,10(8):1111. [19] CUI Q H,DU R K,LIU M M,et al.Lignans and their derivatives from plants as antivirals[J].Molecules,2020,25(1):183. [20] CHAN E W C,WONG S K,CHAN H T.A short review on the chemistry,pharmacological properties and patents of obovatol and obovatal (neolignans) from Magnolia obovata[J].Natural Product Sciences,2021,27(3):141-150. [21] ARNER P,KULYTÉ A.MicroRNA regulatory networks in human adipose tissue and obesity[J].Nature Reviews Endocrinology,2015,11(5):276-288. [22] ESAU C,DAVIS S,MURRAY S F,et al.miR-122 regulation of lipid metabolism revealed by in vivo antisense targeting[J].Cell Metabolism,2006,3(2):87-98. [23] DÁVALOS A,GOEDEKE L,SMIBERT P,et al.miR-33a/b contribute to the regulation of fatty acid metabolism and insulin signaling[J].Proceedings of the National Academy of Sciences,2011,108(22):9232-9237. [24] GRACIA A,FERNÁNDEZ-QUINTELA A,MIRANDA J,et al.Are miRNA-103,miRNA-107 and miRNA-122 involved in the prevention of liver steatosis induced by resveratrol ?[J].Nutrients,2017,9(4):360. [25] SU D X,LIU H S,QI X Y,et al.Citrus peel flavonoids improve lipid metabolism by inhibiting miR-33 and miR-122 expression in HepG2 cells[J].Bioscience,Biotechnology,and Biochemistry,2019,83(9):1747-1755. [26] YU M H,HUNG T W,WANG C C,et al.Neochlorogenic acid attenuates hepatic lipid accumulation and inflammation via regulating miR-34a in vitro[J].International Journal of Molecular Sciences,2021,22(23):13163. [27] JOVEN J,ESPINEL E,RULL A,et al.Plant-derived polyphenols regulate expression of miRNA paralogs miR-103/107 and miR-122 and prevent diet-induced fatty liver disease in hyperlipidemic mice[J].Biochimica et Biophysica Acta (BBA)-General Subjects,2012,1820(7):894-899. [28] 敖娜,王育川,梁玉文,等.茶多酚对马岗鹅肝脏脂质代谢及抗氧化能力的影响[J].饲料研究,2024,47(23):52-57.AO N,WANG Y C,LIANG Y W,et al.Effects of tea polyphenols on lipid metabolism and antioxidant capacity in the liver of Magang geese[J].Feed Research,2024,47(23):52-57.(in Chinese) [29] FRANKO A,HARTWIG S,KOTZKA J,et al.Identification of the secreted proteins originated from primary human hepatocytes and HepG2 cells[J].Nutrients,2019,11(8):1795. [30] HAN H,WANG M Y,ZHONG R Q,et al.Depletion of gut microbiota inhibits hepatic lipid accumulation in high-fat diet-fed mice[J].International Journal of Molecular Sciences,2022,23(16):9350. [31] TIE F F,WANG J F,LIANG Y X,et al.Proanthocyanidins ameliorated deficits of lipid metabolism in type 2 diabetes mellitus via inhibiting adipogenesis and improving mitochondrial function[J].International Journal of Molecular Sciences,2020,21(6):2029. [32] 王萱,陈泽豪,石玉祥,等.迷迭香提取物对蛋鸡产蛋性能、血清指标和肝脏脂质代谢的影响[J].动物营养学报,2025,37(2):1011-1021.WANG X,CHEN Z H,SHI Y X,et al.Effects of rosemary extract on laying performance,serum indicators and liver lipid metabolism of laying hens[J].Chinese Journal of Animal Nutrition,2025,37(2):1011-1021.(in Chinese) [33] LI D M,LIU F,WANG X J,et al.Apple polyphenol extract alleviates high-fat-diet-induced hepatic steatosis in male C57BL/6 mice by targeting LKB1/AMPK pathway[J].Journal of Agricultural and Food Chemistry,2019,67(44):12208-12218. [34] LI D M,CUI Y,WANG X J,et al.Apple polyphenol extract alleviates lipid accumulation in free-fatty-acid-exposed HepG2 cells via activating autophagy mediated by SIRT1/AMPK signaling[J].Phytotherapy Research,2021,35(3):1416-1431. [35] SUN Z,LIU D,AN S,et al.Effects of acorns on fatty acid composition and lipid metabolism in adipose tissue of Yuxi Black pigs[J]. Animals,2024,14(22):3271. [36] ZHANG L,ZHANG J,ZANG H,et al.Dietary pterostilbene exerts potential protective effects by regulating lipid metabolism and enhancing antioxidant capacity on liver in broilers[J]. Journal of Animal Physiology and Animal Nutrition,2024,108(4):921-933. [37] LIU Y,PENG Y,CHEN C,et al.Flavonoids from mulberry leaves inhibit fat production and improve fatty acid distribution in adipose tissue in finishing pigs[J].Animal Nutrition,2024,16:147-157. [38] LI X,YANG L,LI J,et al.A flavonoid-rich Smilax china L.extract prevents obesity by upregulating the adiponectin-receptor/AMPK signalling pathway and modulating the gut microbiota in mice[J].Food & Function,2021,12(13):5862-5875. [39] CUI Y,MO Z Y,JI P L,et al.Benzene exposure leads to lipodystrophy and alters endocrine activity in vivo and in vitro[J].Frontiers in Endocrinology,2022,13:937281. [40] ELEWA Y H A,ICHII O,KON Y.Comparative analysis of mediastinal fat-associated lymphoid cluster development and lung cellular infiltration in murine autoimmune disease models and the corresponding normal control strains[J]. Immunology,2016,147(1):30-40. [41] GHOSHAL S,MUKHERJEE S,CHAKRABORTY M,et al.Whole body Ip6k1 deletion protects mice from age-induced weight gain,insulin resistance and metabolic dysfunction[J].International Journal of Molecular Sciences,2022,23(4):2059. [42] CAROBBIO S,GUENANTIN A C,BAHRI M,et al.Unraveling the developmental roadmap toward human brown adipose tissue[J].Stem Cell Reports,2021,16(3):641-655. [43] SHIH D M,MENG Y,SALLAM T,et al.PON2 deficiency leads to increased susceptibility to diet-induced obesity[J].Antioxidants,2019,8(1):19. [44] LIU J W,ZHAO Y Y,HUANG C,et al.Prenylated flavonoid-standardized extract from seeds of Psoralea corylifolia L.activated fat browning in high-fat diet-induced obese mice[J].Phytotherapy Research,2019,33(7):1851-1864. [45] DING Y N,ZHANG L L,YAO X F,et al.Honokiol alleviates high-fat diet-induced obesity of mice by inhibiting adipogenesis and promoting white adipose tissue browning[J].Animals,2021,11(6):1493. [46] LAI J F,QIAN Q Y,DING Q C,et al.Activation of AMP-activated protein kinase-sirtuin 1 pathway contributes to salvianolic acid A-induced browning of white adipose tissue in high-fat diet fed male mice[J].Frontiers in Pharmacology,2021,12:614406. [47] CHENG L,LU S H I,CHANGHAO H E,et al.Mulberry leaf flavonoids activate BAT and induce browning of WAT to improve type 2 diabetes via regulating the AMPK/SIRT1/PGC-1α signaling pathway[J].Chinese Journal of Natural Medicines,2023,21(11):812-829. [48] KOBAYASHI M,OHSUGI M,SASAKO T,et al.The RNA methyltransferase complex of WTAP,METTL3,and METTL14 regulates mitotic clonal expansion in adipogenesis[J].Molecular and Cellular Biology,2018,38(16):e00116-e00118. [49] ZHAO Y,PAN J F,CAO C W,et al.RNF20 affects porcine adipocyte differentiation via regulation of mitotic clonal expansion[J].Cell Proliferation,2021,54(12):e13131. [50] WU L Y,CHEN C W,CHEN L K,et al.Curcumin attenuates adipogenesis by inducing preadipocyte apoptosis and inhibiting adipocyte differentiation[J].Nutrients,2019,11(10):2307. [51] HSU C L,HUANG S L,YEN G C.Inhibitory effect of phenolic acids on the proliferation of 3T3-L1 preadipocytes in relation to their antioxidant activity[J].Journal of Agricultural and Food Chemistry,2006,54(12):4191-4197. [52] CHAN C Y,WEI L,CASTRO-MUÑOZLEDO F,et al.(-)-epigallocatechin-3-gallate blocks 3T3-L1 adipose conversion by inhibition of cell proliferation and suppression of adipose phenotype expression[J].Life Sciences,2011,89(21-22):779-785. [53] TANG Q Q,OTTO T C,LANE M D.CCAAT/enhancer-binding protein β is required for mitotic clonal expansion during adipogenesis[J].Proceedings of the National Academy of Sciences,2003,100(3):850-855. [54] KIM M A,KANG K,LEE H J,et al.Apigenin isolated from Daphne genkwa Siebold et Zucc.inhibits 3T3-L1 preadipocyte differentiation through a modulation of mitotic clonal expansion[J].Life Sciences,2014,101(1-2):64-72. [55] MOLONIA M S,SALAMONE F L,MUSCARÀ C,et al.Regulation of mitotic clonal expansion and the rmogenic pathway are involved in the antiadipogenic effects of cyanidin-3-O-glucoside[J].Frontiers in Pharmacology,2023,14:1225586. [56] LEE M H,KIM H M,CHUNG H C,et al.Licorice extract suppresses adipogenesis through regulation of mitotic clonal expansion and adenosine monophosphate‐activated protein kinase in 3T3-L1 cells[J].Journal of Food Biochemistry,2020,44(12):e13528. [57] YU H S,KIM W J,BAE W Y,et al.Inula britannica inhibits adipogenesis of 3T3-L1 preadipocytes via modulation of mitotic clonal expansion involving ERK 1/2 and Akt signaling pathways[J].Nutrients,2020,12(10):3037. [58] COX T O,LUNDGREN P,NATH K,et al.Metabolic control by the microbiome[J].Genome Medicine,2022,14(1):1-13. [59] MOMPEO O,SPECTOR T D,MATEY HERNANDEZ M,et al.Consumption of stilbenes and flavonoids is linked to reduced risk of obesity independently of fiber intake[J].Nutrients,2020,12(6):1871. [60] CORRA T A F,ROGERO M M,HASSIMOTTO N M A,et al.The two-way polyphenols-microbiota interactions and their effects on obesity and related metabolic diseases[J].Frontiers in Nutrition,2019,6:188. [61] WALKER A W,PARKHILL J.Fighting obesity with bacteria[J].Science,2013,341(6150):1069-1070. [62] FORSTER G M,STOCKMAN J,NOYES N,et al.A comparative study of serum biochemistry,metabolome and microbiome parameters of clinically healthy,normal weight,overweight,and obese companion dogs[J]. Topics in Companion Animal Medicine,2018,33(4):126-135. [63] GUO J L HAN X,TAN H Y,et al.Blueberry extract improves obesity through regulation of the gut microbiota and bile acids via pathways involving FXR and TGR5[J].iScience,2019,19:676-690. [64] WANG Q,WANG Z,SHANG B,et al.Tea polyphenols improve lipid deposition via modulation of gut microbiota in rats and Ningxiang pigs[J].Journal of Functional Foods,2024,113:106049. [65] ZHU Y,ZHANG J Y,WEI Y L,et al.The polyphenol-rich extract from chokeberry (Aronia melanocarpa L.) modulates gut microbiota and improves lipid metabolism in diet-induced obese rats[J].Nutrition & Metabolism,2020,17(1):1-15. [66] QUEIPO-ORTUÑO M I,BOTO-ORDÓÑEZ M,MURRI M,et al.Influence of red wine polyphenols and ethanol on the gut microbiota ecology and biochemical biomarkers[J].The American Journal of Clinical Nutrition,2012,95(6):1323-1334. [67] WANG L,ZENG B,LIU Z,et al.Green tea polyphenols modulate colonic microbiota diversity and lipid metabolism in high-fat diet treated HFA mice[J].Journal of Food Science,2018,83(3):864-873. [68] WANG S,MOUSTAID-MOUSSA N,CHEN L X,et al.Novel insights of dietary polyphenols and obesity[J].The Journal of Nutritional Biochemistry,2014,25(1):1-18. [69] KANG L,HENG W,YUAN A,et al.Resveratrol modulates adipokine expression and improves insulin sensitivity in adipocytes:Relative to inhibition of inflammatory responses[J].Biochimie,2010,92(7):789-796. [70] MOLONIA M S,OCCHIUTO C,MUSCARÀ C,et al.Cyanidin-3-O-glucoside restores insulin signaling and reduces inflammation in hypertrophic adipocytes[J]. Archives of Biochemistry and Biophysics,2020,691:108488. [71] KANG B,KIM C Y,HWANG J,et al.Punicalagin,a pomegranate-derived ellagitannin,suppresses obesity and obesity-induced inflammatory responses via the Nrf2/Keap1 signaling pathway[J].Molecular Nutrition & Food Research,2019,63(22):1900574. [72] SHEHZAD A,HA T,SUBHAN F,et al.New mechanisms and the anti-inflammatory role of curcumin in obesity and obesity-related metabolic diseases[J].European Journal of Nutrition,2011,50:151-161. [73] WANG Y R,YANG C X,NAHLA ABDALLA HASSAN E,et al.HO-1 reduces heat stress-induced apoptosis in bovine granulosa cells by suppressing oxidative stress[J].Aging (Albany NY),2019,11(15):5535. [74] MARSEGLIA L,MANTI S,D’ANGELO G,et al.Oxidative stress in obesity:A critical component in human diseases[J]. International Journal of Molecular Sciences,2014,16(1):378-400. [75] IZDEBSKA M,PITKOWSKA-CHMIEL I,KOROLCZUK A,et al.The beneficial effects of resveratrol on steatosis and mitochondrial oxidative stress in HepG2 cells[J].Canadian Journal of Physiology and Pharmacology,2017,95(12):1442-1453. [76] KAN J,HUI Y Y,XIE W J,et al.Lily bulbs’ polyphenols extract ameliorates oxidative stress and lipid accumulation in vitro and in vivo[J].Journal of the Science of Food and Agriculture,2021,101(12):5038-5048. [77] HAN M,YIN Y,GONG S,et al.Effects of dietary Eucommia ulmoides leaf extract supplementation on growth performance,meat quality,antioxidant capacity,and lipid metabolism of finishing pigs[J].Antioxidants,2024,13(3):320. [78] AHMADIPOUR B,KALANTAR M,ABASZADEH S,et al.Antioxidant and antihyperlipidemic effects of hawthorn extract (Crataegus oxyacantha) in broiler chickens[J].Veterinary Medicine and Science,2024,10(3):e1414. [79] 屈圣富,田琦,梅华迪,等.厚朴酚对断奶仔猪生长性能、肝脏抗氧化功能及脂代谢的影响[J].动物营养学报,2022,34(5):2872-2883.QU S F,TIAN Q,MEI H D,et al.Effects of magnolol on growth performance,liver antioxidant function and lipid metabolism of weaned piglets[J].Chinese Journal of Animal Nutrition,2022,34(5):2872-2883.(in Chinese) [80] WANG Y,CHEN X,HUANG Z,et al.Dietary ferulic acid supplementation improves antioxidant capacity and lipid metabolism in weaned piglets[J].Nutrients,2020,12(12):3811. [81] MIYOSHI M,SAITO K,JIA H,et al.Maternal protein restriction and post-weaning high-fat feeding alter plasma amino acid profiles and hepatic gene expression in mice offspring[J]. Foods,2022,11(5):753. [82] HUO L H,GAMBER K,GREELEY S,et al.Leptin-dependent control of glucose balance and locomotor activity by POMC neurons[J]. Cell Metabolism,2009,9(6):537-547. [83] VARELA L,HORVATH T L.Leptin and insulin pathways in POMC and AgRP neurons that modulate energy balance and glucose homeostasis[J].EMBO Reports,2012,13(12):1079-1086. [84] SAFAHANI M,ALIGHOLI H,NOORBAKHSH F,et al.Resveratrol promotes the arcuate nucleus architecture remodeling to produce more anorexigenic neurons in high-fat-diet-fed mice[J].Nutrition,2018,50:49-59. [85] WANG X J,LIU F,CUI Y,et al.Apple polyphenols extracts ameliorate high carbohydrate diet-induced body weight gain by regulating the gut microbiota and appetite[J]. Journal of Agricultural and Food Chemistry,2021,70(1):196-210. [86] BADSHAH H,ULLAH I,KIM S E,et al.Anthocyanins attenuate body weight gain via modulating neuropeptide Y and GABAB1 receptor in rats hypothalamus[J].Neuropeptides,2013,47(5):347-353. [87] LE H T,LIE K K,GIROUD-ARGOUD J,et al.Effects of cholecystokinin (CCK) on gut motility in the stomachless fish ballan wrasse (Labrus bergylta)[J].Frontiers in Neuroscience,2019,13:553. [88] PANDA V,SHINDE P.Appetite suppressing effect of Spinacia oleracea in rats:Involvement of the short term satiety signal cholecystokinin[J].Appetite,2017,113:224-230. [89] KIM H Y,PARK M,KIM K,et al.Hesperetin stimulates cholecystokinin secretion in enteroendocrine STC-1 cells[J].Biomolecules & Therapeutics,2013,21(2):121. [90] PARK M,KIM K,LEE Y M,et al.Naringenin stimulates cholecystokinin secretion in STC-1 cells[J].Nutrition Research and Practice,2014,8(2):146-150. |
| [1] | LIU Huiying, GAO Libing, LI Xiaomin, LI Wei, WANG Qiuju, WANG Jing. Effects of Dietary Bile Acids or Compound Essential Oils on Laying Performance and Lipid Metabolism of Hens During the Extended Laying Period [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(9): 4105-4113. |
| [2] | XIA Huanting, ZHENG Chuntian, LI Kaichao, JIANG Liying, CHEN Wei, WANG Shuang, XIA Weiguang, JIN Chenglong, HUANG Xuebing, WANG Shenglin, ZHANG Yanan. Effects of Dietary Quercetin Supplementation on Egg Production Performance, Eggshell Mechanical Property and Lipid Metabolism in Aged Laying Ducks [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(7): 3126-3135. |
| [3] | LIU Jijun, WANG Fengbo, WEI Feng, JIN Yaping, ZHANG Haisen, CHEN Huatao. Research Progress on the Role of Circadian Clock in Regulating Glucose and Lipid Metabolism Homeostasis of Ketosis in Dairy Cows [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(7): 3449-3458. |
| [4] | CAO Chang, LI Yulian, WANG Jie, HE Qing, GONG Yanmei, FAN Zhiyong. Effects of Adding Hyocholic Acid on Body Lipid Metabolism,Intestinal Microorganisms and Bile Acid Metabolism in High-fat Pregnant Mice [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(5): 1999-2011. |
| [5] | LIU Sirui, LIU Hongfei, LIU Dapeng, MU Qiming, TANG Hehe, ZHANG He, ZHANG Yongfu, HOU Shuisheng, ZHOU Zhengkui. Screening of Candidate Genes Regulating Fat Deposition in Pekin Ducks by Integrating Genome and Transcriptome [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(4): 1468-1477. |
| [6] | LI Mengqi, ZHENG Chuntian, CHEN Wei, JIN Chenglong, ZHANG Yanan, WANG Shuang, LI Kaichao, HUANG Xuebing, XIA Weiguang, ZHU Yuanzhao. Effects of Low Protein Amino Acid Balanced Diet on Productive Performance, Egg Quality and Lipid Metabolism in Laying Ducks [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(4): 1533-1542. |
| [7] | Siriguleng, YU Wen, JIANG Xiaowei, LI Ziyi, JIN Junjian, BAI Haoyu. The Expression of miR-144-5p in Plasma Exosomes of Different Body Types of Bactrian Camels and the Verification of Target Gene [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(3): 1022-1032. |
| [8] | HAO Asiya, MU Siqin, YI Minna, WEN Xin, BOU Gerelchimeg. Research Progress on Trophoblast Cells of Horse Placenta [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(11): 5063-5073. |
| [9] | LIU Jie, LI Shengnan, HE Chenpeng, MA Xiang, LI Chun, WANG Zhongbo, XIAO Dingfu. Research on Beef Quality and Its Influencing Factors Based on Omics [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(11): 5134-5146. |
| [10] | LI Huanyu, ZHANG Wanli, WANG Shuang, CUI Shengwei, MA Yanfen, MA Yun, YU Yongtao. Characteristics of Serum Lipid Metabolites in Diary Cows with Subclinical Ketosis [J]. China Animal Husbandry & Veterinary Medicine, 2025, 52(10): 4592-4602. |
| [11] | XIA Minglong, XIAO Yintao, ZHENG Saizhen, TAN Bie, YIN Yulong, CHEN Jiashun, YIN Jie. Analysis of Differentially Expressed Genes and Regulatory Pathways in Intramuscular Fat Deposition of Ningxiang Pigs at Different Developmental Stages [J]. China Animal Husbandry & Veterinary Medicine, 2024, 51(9): 3703-3714. |
| [12] | CHEN Xiangyu, HUANG Yuan, LIU Baoling, LUO Qin, LU Yongkun, HE Zhenwen, LIU Dingyu, QIAO Changhong, WANG Xiaohu, WANG Gang, BAI Aiquan, CAI Rujian. Research Progress on Biofilm Formation and Its Drug Resistance Mechanism of Streptococcus suis [J]. China Animal Husbandry & Veterinary Medicine, 2024, 51(9): 4002-4013. |
| [13] | LUO Qin, LIU Baoling, QIAO Changhong, CHEN Xiangyu, LIU Dingyu, WANG Xiaohu, WANG Gang, LIU Hao, CAI Rujian. Research Progress on the Role of Lipid Metabolism and Glucose Metabolism in PRRSV-infected Host Cells [J]. China Animal Husbandry & Veterinary Medicine, 2024, 51(4): 1686-1695. |
| [14] | WU Qingyao, YIN Yunju, WANG Min, PAN Junyi, LI Fengna, ZHAO Shengguo, CHEN Guoshun, GUO Qiuping. Effects of Chlorogenic Acid and Leucine on the Carcass Traits,Meat Quality and Serum Biochemical Indexes of Fattening Pigs [J]. China Animal Husbandry & Veterinary Medicine, 2024, 51(3): 1060-1068. |
| [15] | MAJianqing, SONG Pengyan, YANG Qingfang, KONGJianjun, SONG Zhanfeng, ZHANG Yali, WU Dongwei, XU Zengnian, ZHAO Ning, ZHOU Rongyan, WU Zhanyong. Target Gene Prediction and Bioinformatics Analysis of miR-141 in Capra hircus [J]. China Animal Husbandry & Veterinary Medicine, 2024, 51(10): 4211-4221. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||