Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (14): 3203-3219.doi: 10.3864/j.issn.0578-1752.2026.14.015

• ANIMAL SCIENCE·VETERINARY SCIENCE • Previous Articles     Next Articles

Research Status of Microbial Fermentation of Chinese Herbal Medicines and Discussion on Its Application in Livestock and Poultry Breeding

ZHANG ChaoSheng(), CHEN ZhiMin(), LI ShuZhen, WANG ShaoLong, LIU GuoHua   

  1. Key Laboratory for Feed Biotechnology of the Ministry of Agriculture and Rural Affairs/Institute of Feed Research, Chinese Academy of Agricultural Sciences, Beijing 100081
  • Received:2025-10-27 Accepted:2026-06-12 Online:2026-07-16 Published:2026-07-21
  • Contact: CHEN ZhiMin

Abstract:

With the implementation of global policies to ban and limit the use of antibiotics in animal husbandry, exploring safe and efficient alternatives to antibiotics has become a research hotspot in the feed industry. The "Feed Raw Materials Catalogue" of China includes 117 kinds of natural plants that are both edible and medicinal, laying a resource foundation for the development of Chinese herbal feed additives. Although Chinese herbal medicines have the potential for antibacterial, immunomodulatory and growth-promoting properties, they have long been limited by three core bottlenecks in practical application: difficult dissolution of components, low bioavailability of glycoside active ingredients, and the existence of endogenous toxicity in some medicinal materials with unclear mechanisms. Microbial fermentation technology combines traditional processing techniques with modern biotechnology, which provides an innovative path to solve the above-mentioned problems through the biodegradation, biotransformation of microbial enzyme systems and the synergistic action of bacteria and drugs. This article systematically expounded the latest research progress of microbial fermentation of Chinese herbal medicines. Firstly, the characteristics of the two mainstream processes, including liquid fermentation and solid fermentation, were compared and analyzed: although liquid fermentation was conducive to process control and scale, its cost was relatively high; solid fermentation was cost-effective and suitable for the feed industry, but the stability of product quality needed to be improved. Secondly, it elaborated in depth on the four core advantages and mechanism of action of microbial fermentation technology: first, it generated new active substances that the original medicinal materials did not possess through enzymatic modification by microorganisms, expanding the material basis of medicinal effects; second, through the dual mechanisms of physical cell wall breaking and biochemical transformation, the content of active ingredients and bioavailability were significantly increased; thirdly, the safety hazards were eliminated by specifically degrading toxic components (such as converting diester alkaloids into monoester ones); fourthly, by improving physical and chemical properties and flavor, the stability and palatability of the product could be enhanced. Furthermore, focusing on the practical demands of the feed industry, this paper categorized and recommended specific herbal substrates with high industrial potential: growth-promoting herbs (e.g., Astragalusand, Codonopsis), immunomodulatory herbs (e.g., Glycyrrhizaand, Ligustrum), and gut health-maintaining herbs (e.g., Loniceraand, Andrographis), providing a clear guideline for feed formulation. Based on this, this article summarized the empirical effects of microbial fermentation of Chinese herbal medicine in livestock and poultry production, including promoting growth performance by optimizing the intestinal microecology, enhancing barrier function and improving nutrient utilization rate, and improving meat quality by regulating muscle metabolism and antioxidant capacity; it alleviated oxidative stress and reduced disease susceptibility by activating signaling pathways, such as Nrf2. Finally, in response to the current challenges in industrialization, this article looked forward to future research directions: the need to use multi-omics technologies to precisely identify exclusive functional strains, establish a refined and standardized control system for the fermentation process, deeply analyze the mechanism of the "microbe-organism-immune" axis, and improve the toxicological safety evaluation system and product quality standards, in order to promote the transition of fermented Chinese herbs from the laboratory to industrial application, and contribute to the green development of the livestock industry.

Key words: microbial fermentation, Chinese herbal medicines, mechanism, livestock and poultry production, biological transformation

Fig. 1

Research background"

Table 1

Summary of fermentation methods, processes, and application effects of Chinese herbal medicines"

发酵方式
Fermentation method
菌株
Strain
工艺特点
Process feature
应用效果
Application effect
参考文献
Reference
液体发酵
Liquid fermentation
酿酒酵母等混菌
Mixed bacteria such as Saccharomyces cerevisiae
发酵1-16 d
Ferment for 1 to 16 days
姜汁发酵后可提高其多酚和类黄酮的含量,且对糖尿病和肥胖症有缓解作用
After fermentation, ginger juice can increase the content of polyphenols and flavonoids, and has an alleviating effect on diabetes and obesity
[14]
6株乳酸菌
Six strains of lactic acid bacteria
发酵24 h
Fermentation for 24 hours
黄芪液发酵后提高可总多糖、总黄酮和总皂苷含量,且氨基酸和皂苷化合物组成发生显著差异
After fermentation of Astragalus membranaceus liquid, the contents of total polysaccharides, total flavonoids and total saponins are increased, and there are significant differences in the composition of amino acids and saponin compounds
[15]
副干酪乳杆菌和嗜酸乳杆菌
Lactobacillus paracasei and Lactobacillus acidophilus
发酵24 h
Fermentation for 24 hours
欧李仁液中的苦杏仁苷可通过乳酸菌直接发酵降解,主要产生扁桃腈和苯甲醛2种物质,使其得到广泛应用并减少了欧李副产物的积累
The amygdalin in the plum kernel liquid can be directly fermented and degraded by lactic acid bacteria, mainly generating two substances, mandelitrile and benzaldehyde, which makes it widely used and reduces the accumulation of by-products of plums
[16]
甜茶自生菌
Sweet tea grows its own bacteria
发酵15 d
Fermentation for 15 days
发酵后的甜茶具有独特的感官特性,包括红棕色的色泽、烤焦和木质的香气,并降低了的涩味和苦味
The sweet tea after fermentation has unique sensory characteristics, including a reddish-brown color, a burnt and woody aroma, and a reduced astringency and bitterness
[17]
植物乳杆菌
Lactobacillus plantarum
发酵16 d
Fermentation for 16 days
提高了人参酶中稀有皂苷含量和提高对羟基自由基、DPPH自由基和超氧阴离子自由基的清除率,并生产了新的有机酸
The content of rare saponins in ginseng enzymes was increased, and the clearance rates of hydroxyl radicals, DPPH radicals and superoxide anion radicals were enhanced, and new organic acids were produced
[18]
枯草芽孢杆菌和瑞氏木霉
Bacillus subtilis and Trichoderma Reieri
发酵24 h
Fermentation for 24 hours
人参根通过2种益生菌代谢产生的水解酶使其人参皂苷的产量显著增强,且发酵液的药理活性明显提高
The yield of ginsenosides in ginseng roots is significantly enhanced through the hydrolases produced by the metabolism of two probiotics, and the pharmacological activity of the fermentation liquid is notably improved
[19]
固体发酵
Solid fermentation
茯苓
Poria cocos
发酵湿度为90%,时间为10 d
Fermentation humidity is 90% and the duration is 10 days
茯苓充分利用黄芪纤维素作为碳源,降解其细胞壁,促进黄芪苷Ⅳ的释放,提高其生物利用度和抗氧化活性
Poria cocos fully utilizes the cellulose of Astragalus membranaceus as a carbon source to degrade its cell wall, promote the release of astragaloside Ⅳ, and enhance its bioavailability and antioxidant activity
[20]
枯草芽孢杆菌和酿酒酵母
Bacillus subtilis and Saccharomyces cerevisiae
料水比1:1,时间为41-58 h
The ratio of material to water is 1:1, and the time is 41 to 58 hours
固态发酵提高多花黄精多糖产率和含量,并改变其成分组成和官能团结构,进而提高小鼠肠道抗氧化力和机体的免疫功能
Solid-state fermentation increases the yield and content of Polygonatum odoratum polysaccharides, alters their composition and functional group structure, and thereby enhances the antioxidant capacity of the mouse intestine and the immune function of the body
[21]
米曲霉
Aspergillus oryzae
料水比1:6,时间为5 d
The ratio of material to water is 1:6 and the time is 5 days
米曲霉生物转化中药渣后,总酚含量和抗氧化活性增加,单宁含量降低,且对7种病原菌表现出广谱的抗菌活性,提高其利用率,从而降低草药的生产成本
After the biotransformation of traditional Chinese medicine residue by Aspergillus oryzae, the total phenol content and antioxidant activity increase, the tannin content decreases, and it shows broad-spectrum antibacterial activity against seven pathogenic bacteria, improving its utilization rate and thereby reducing the production cost of herbal medicine
[22]
六神曲自生菌
Massa Medicata Fermentata grows its own bacteria
料水比为1:4,时间为4 d
The ratio of material to water is 1:4 and the time is 4 days
六神曲发酵后可提高阿魏酸和乳酸的含量明,进而起到健脾胃、促进消化的功能
After fermentation, Massa Medicata Fermentata can increase the content of ferulic acid and lactic acid, thereby playing a role in strengthening the spleen and stomach and promoting digestion
[23]
冬虫夏草菌
Cordyceps
料水比为1:5,时间为25 d
The ratio of material to water is 1:5 and the time is 25 days
五种冬虫夏草菌发酵黄芪后可降低其粗纤维含量,并增加甘露醇和可溶性糖的含量
Five kinds of Cordyceps can reduce the crude fiber content of Astragalus membranaceus after fermentation, and increase the content of mannitol and soluble sugar
[24]
植物乳杆菌
Lactobacillus plantarum
料水比3:4,时间20 h
The ratio of material to water is 3:4, and the time is 20 hours
甘草发酵后其成分明显改变,有益成分比例增加,显著缓解小鼠的炎症、氧化应激和肠道损伤效果,且效果优于甘草提取物
After the fermentation of licorice, its components change significantly, the proportion of beneficial components increases, and it has a remarkable effect in alleviating inflammation, oxidative stress and intestinal damage in mice, and the effect is better than that of licorice extract
[25]
植物乳杆菌
Lactobacillus plantarum
料水比1:1,时间10 d
The ratio of material to water is 1:1, and the time is 10 days
固态发酵通过提高艾蒿类黄酮和多酚的水平,改变其精油成分和百分比,从而增强了艾蒿的抗氧化活性
Solid-state fermentation enhances the antioxidant activity of mugwort by increasing the levels of flavonoids and polyphenols, altering its essential oil composition and percentage
[26]
红曲霉
Monascus purpureus
料水比1:1,时间 2 d
The ratio of material to water is 1:1, and the time is 2 days
桑叶发酵后黄酮苷含量显著降低,而黄酮苷元含量增加,进而提高其生物可及性和生物利用度,从而增强其抗糖尿病活性
After fermentation, the content of flavonoid glycosides in mulberry leaves significantly decreases, while the content of flavonoid aglycones increases, thereby enhancing their bioaccessibility and bioavailability, and thus strengthening their anti-diabetic activity
[27]

Table 2

Comparison between liquid-state and solid-state fermentation methods for Chinese herbal medicines"

评价指标
Evaluation indicators
液体发酵
Liquid fermentation
固体发酵
Solid fermentation
发酵基质
Fermentation substrate
液体培养基,中草药多为浸提液或粉末悬浮液
Liquid culture media for Chinese herbal medicines are mostly extracts or powder suspensions
固态支撑物(如麸皮)与中草药粉末混合,湿度低
Solid supports (such as bran) are mixed with Chinese herbal powder, with low humidity
过程控制
Process control
参数(温度、pH、溶氧)易于在线监测与控制,均一性好
Parameters (temperature, pH, and dissolved oxygen) are easy to monitor and control online, and have good uniformity
参数梯度大,控制困难,异质性强,多凭经验判断
The parameter gradient is large, control is difficult, heterogeneity is strong, and judgment is mostly based on experience
发酵周期
Fermentation period
较短(通常数天)
Relatively short (usually several days)
较长(数天至数周)
Longer (several days to several weeks)
主要优势
Main advantage
规模化潜力大,发酵过程易于放大,操作简便,成本相对较低
It has the great potential for large-scale production, the fermentation process is easy to scale up, the operation is simple, and the cost is relatively low
更接近微生物自然生长环境,能耗低,产物浓度高,稳定性好,无大量废液产生
It is closer to the natural growth environment of microorganisms, with low energy consumption, high product concentration, good stability and no large amount of waste liquid produced
主要局限
Main limitation
易染菌,后期提取分离成本可能较高
It is prone to bacterial contamination, and the cost of extraction and separation in the later stage may be relatively high
染菌风险高,过程监控难,机械化程度待提高
The risk of contamination is high, process monitoring is difficult, and the mechanization degree needs to be improved
适用场景
Applicable scene
目标产物为微生物胞外代谢物或易于从液体中提取的活性成分
The target product is an extracellular metabolite of microorganisms or an active component that is easily extracted from the liquid
目标为菌丝体与药材的复合体,或需充分利用药材整体作为营养源
The target is the complex of mycelium and medicinal materials, or it is necessary to fully utilize the entire medicinal material as a nutrient source

Table 3

Research progress on the application of fermented CHMs in livestock and poultry production"

类别
Class
研究对象
Research object
中草药种类
Chinese herbal medicine type
细菌种类
Bacterial species
结果
Result
参考文献
Reference

Pig
断奶仔猪
Weaned piglet
苍术、马齿苋、白芍、甘草、黄芪、和小茴香
Atractylodes, Portulaca oleracea, Paeonia lactiflora, licorice, Astragalus membranaceus, and fennel
地衣芽孢杆菌、酿酒酵母菌、丁酸梭菌、嗜酸乳杆菌、干酪乳杆菌和粪肠球菌
Bacillus licheniformis, Saccharomyces cerevisiae, Clostridium butyricum, Lactobacillus acidophilus, Lactobacillus casei and Enterococcus faecalis
通过增加空肠绒毛高度,增强消化酶活性,调节肠道菌群,进而改善断奶仔猪空肠的肠道结构和形态,促进肠道健康,提高断奶仔猪的生长性能
By increasing the height of jejunal villi, enhancing the activity of digestive enzymes, and regulating the intestinal flora, the intestinal structure and morphology of the jejunum in weaned piglets can be improved, promoting intestinal health and enhancing the growth performance of weaned piglets
[58]
仔猪
Piglet
六神曲
Massa Medicata Fermentata
促进仔猪肠道结构的发育,提高血清中的抗氧化能力,且通过调节肠道菌群组成和有益短链脂肪酸水平来增强宿主肠道稳态,从而改善仔猪断奶应激
Promote the development of intestinal structure in piglets, enhance the antioxidant capacity in serum, and strengthen the host's intestinal homeostasis by regulating the composition of intestinal flora and the level of beneficial short-chain fatty acids, thereby improving weaning stress in piglets
[59]
仔猪
Piglet
黄芪、党参、甘草和白术
Astragalus membranaceus, Codonopsis pilosula, Licorice and Atractylodes macrocephala
植物乳杆菌、枯草芽孢杆菌和酿酒酵母
Lactobacillus plantarum, Bacillus subtilis and Saccharomyces cerevisiae
乳酸和丙酸的含量显著增加,通过调节肠道菌群和降低腹泻率,显著增加仔猪的平均日增重,降低料重比
The contents of lactic acid and propionic acid were significantly increased. By regulating the intestinal flora and reducing the rate of diarrhea, the average daily weight gain of piglets was significantly increased, and the feed-to-weight ratio was reduced
[54]
仔猪
Piglet
党参、黄芪、板蓝根、白芍和苍术
Codonopsis pilosula, Astragalus membranaceus, Isatidis Radix, Paeonia lactiflora and Atractylodes macrocephala
草芽孢杆菌、粪肠球菌和酿酒酵母
Bacillus albaceous, Enterococcus faecalis and Saccharomyces cerevisiae
提高肠道抗氧化能力和修复肠道细胞屏障,且改善肠道菌群和降低腹泻率,提高仔猪的平均采食量和日增重
It enhances the antioxidant capacity of the intestinal tract and repairs the intestinal cell barrier, improves the intestinal flora and reduces the rate of diarrhea, and increases the average feed intake and daily weight gain of piglets
[60]
断奶仔猪
Weaned piglet
三七、地黄和黄芪
Notoginseng, Rehmannia and Astragalus
植物乳杆菌、酿酒酵母和地衣芽孢杆菌
Lactobacillus plantarum, Saccharomyces cerevisiae and Bacillus licheniformis
减少粪便有毒气体排放和通过降低腹泻率提高断奶猪的生长性能和营养消化率
Reduce the emission of toxic gases from feces and improve the growth performance and nutrient digestibility of weaned pigs by lowering the rate of diarrhea
[61]
育肥猪
Fattening pig
石榴皮、银杏叶、绿茶和甘草根
Pomegranate peels, ginkgo leaves, green tea and licorice roots
植物乳杆菌和酿酒酵母
Lactobacillus plantarum and Saccharomyces cerevisiae
增强育肥猪免疫力,提高饲料效率、胴体等级和瘦肉度
Enhance the immunity of fattening pigs, improve feed efficiency, carcass grade and lean meat content
[55]
育肥猪
Fattening pig
桦褐孔菌
Inonotus obliquus
增强猪肉的色泽、嫩度和营养价值,同时还能增加育肥猪中慢肌纤维的比例和抗氧化能力
It can enhance the color, tenderness and nutritional value of pork, and at the same time increase the proportion of slow muscle fibers and antioxidant capacity in fattening pigs
[62]
家禽 Poultry 雏鸡
Chick
银杏叶
Ginkgo biloba leaves
黑曲霉
Aspergillus niger
降低LPS有害影响,并改善了免疫应激鸡的肠道发育、吸收和免疫力
It reduced the harmful effects of LPS and improved the intestinal development, absorption and immunity of immune- stressed chickens
[63]
肉鸡
Broiler
艾蒿
Artemisia argyi
黑曲霉
Aspergillus niger
提高肉鸡的平均日增重和屠宰性能,改善胴体性状和肉品质
Improve the average daily weight gain and slaughter performance of broilers, and enhance carcass traits and meat quality
[56]
番鸭
Muscovy duck
穿心莲
Andrographis paniculata
酵母菌和乳酸菌
Yeast and lactic acid bacteria
增强番鸭的免疫力、改善肠道形态以及肠道微生物群组成和结构,进而提高其生长性能
Enhance the immunity of Muscovy ducks, improve their intestinal morphology and the composition and structure of the intestinal microbiota, and thereby enhance their growth performance
[57]
肉鸡
Broiler
四黄
Sihuang
枯草芽孢杆菌、植物乳杆菌、地衣芽孢杆菌、屎肠球菌和凝结芽孢杆菌
Bacillus subtilis, Lactobacillus plantarum, Bacillus licheniformis, Enterococcus faecium and Bacillus coagulans
提高四黄总黄酮类化合物、小檗碱和黄芩苷的含量,增强了肉鸡的抗氧化能力、免疫功能、盲肠乳杆菌、肠道α-淀粉酶活性、肠道屏障功能以及平均日增重和和饲料转化率
By increasing the contents of total flavonoids, berberine and baicalin in Sihuang, the antioxidant capacity, immune function, Lactobacillus cecum, intestinal α -amylase activity, intestinal barrier function, as well as average daily weight gain and feed conversion rate of broilers were enhanced
[64]
雏鸡
Chick
黄芪、三七、甘草、鹰嘴豆和黑豆
Astragalus membranaceus, Notoginseng, licorice, chickpeas and black beans
植物乳杆菌和副干酪乳杆菌
Lactobacillus plantarum and Lactobacillus paracasei
改善感染沙门菌的新生雏鸡的临床症状,提高其生长性能,并增强免疫功能
Improve the clinical symptoms of newborn chicks infected with Salmonella, enhance their growth performance and boost their immune function
[65]
反刍 Ruminant 育肥羔羊
Fattening lambs
板蓝根、金银花、半边莲、丹参、黄芪、当归、甘草
Isatis root, honeysuckle, half-leaf lotus, Salvia miltiorrhiza, Astragalus membranaceus, Angelica sinensis, licorice
植物乳杆菌和酿酒酵母
Lactobacillus plantarum and Saccharomyces cerevisiae
通过增强瘤胃粘膜屏障(包括机械、化学、免疫和微生物屏障)来改善热应激条件下育肥羔羊的生长性能
Improve the growth performance of fattening lambs under heat stress conditions by enhancing the rumen mucosal barrier (including mechanical, chemical, immune and microbial barriers)
[66]
奶牛
Dairy cattle
黄芪、扁柏、山楂、川芎、甘草、栀子和大黄
Astragalus membranaceus, Cypress, hawthorn, Ligusticum chuanxiong, licorice, Gardenia and rhubarb
酿酒酵母和枯草芽孢杆菌
Saccharomyces cerevisiae and Bacillus subtilis
提高暴露于人热应激条件的泌乳晚期奶牛的产奶量和牛奶质量,增强机体抗氧化能力
Increase the milk production and milk quality of late lactating dairy cows exposed to human heat stress conditions, and enhance the antioxidant capacity of the body
[67]
断奶羔羊
Weaned lamb
板蓝根和黄芪
Radix Isatidis and Astragalus membranaceus
枯草芽孢杆菌
Bacillus subtilis
增强板蓝根和黄芪中游离氨基酸、肽和活性成分的含量,且通过增加肠绒毛高度和增加肠道菌群多样性提高断奶羔羊的生长性能
Enhance the content of free amino acids, peptides and active ingredients in Radix Isatidis and Astragalus membranaceus, and improve the growth performance of weaned lambs by increasing the height of intestinal villi and the diversity of intestinal flora
[68]
胡羊羔羊
Hu lamb sheep
青蒿
Artemisia annua
枯草芽孢杆菌、地衣芽孢杆菌、植物乳杆菌
Bacillus subtilis, Bacillus licheniformis, Lactobacillus plantarum
通过改善羔羊肠道菌群结构、提高机体抗炎能力,进而显著增加羔羊平均日增重
By improving the structure of the intestinal flora in lambs and enhancing their anti-inflammatory capacity, the average daily weight gain of lambs can be significantly increased
[69]
[1]
黄稳妃, 韦巧燕, 覃明强, 俸祥仁, 蒋玲艳, 熊丽文, 林广津, 张在, 黄善慰, 李祥祥, 陆晶山. 辣木叶、穿心莲、肿节风混合中药水煎剂防治大肠杆菌病疗效研究[J]. 饲料工业, 2024, 45(24): 83-90.
Huang W F, Wei Q Y, Qin M Q, Feng X R, Jiang L Y, Xiong L W, Lin G J, Zhang Z, Huang S W, Li X X, Lu J S. Study on effect of Moringa oleifera leaf, Andrographis paniculata and Zhongjiefeng decoction on colibacillosis[J]. Feed Industry, 2024, 45(24): 83-90. (in Chinese)
[2]
张谦. 加味白头翁散益生菌发酵产物的制备及其对肉仔鸡大肠杆菌病的防治[D]. 长春: 吉林大学, 2019.
Zhang Q. Preparation of fermentated products of modified Baitouweng San by probiotics and its prevention and treatment of colibacillosis in broilers[D]. Changchun: Jilin University, 2019. (in Chinese)
[3]
吴兰兰, 吴钢, 谭强来, 林锦峰, 甘淑娇, 熊梅惠, 吴伟菁. 煮制对多花黄精多糖结构及其体外免疫刺激活性的影响[J]. 中国食物与营养, 2023, 29(6): 28-34.
Wu L L, Wu G, Tan Q L, Lin J F, Gan S J, Xiong M H, Wu W J. Effect of cooking on the structure and immunological activities in vitro of polysaccharides from Polygonatum cyrtonema[J]. Food and Nutrition in China, 2023, 29(6): 28-34. (in Chinese)
[4]
白长胜, 田秋丰, 金振华, 王欢, 刘秋瑾, 史同瑞. 糙皮侧耳菌HXS-M1发酵复方中草药对断奶仔猪生长性能、腹泻情况、血清生化指标及粪便菌群的影响[J]. 动物营养学报, 2024, 36(11): 6958-6968.

doi: 10.12418/CJAN2024.593
Bai C S, Tian Q F, Jin Z H, Wang H, Liu Q J, Shi T R. Effects of Pleurotus ostreatus HXS-M1 fermented compound Chinese herbal medicine on growth performance, diarrhea condition, serum biochemical indexes and fecal microflora of weaned piglets[J]. Chinese Journal of Animal Nutrition, 2024, 36(11): 6958-6968. (in Chinese)
[5]
刘显军, 李玟, 陈静, 马旭东, 陈畅, 刘宏宇, 苏晴, 张家硕, 乔富博, 贾展鹏. 复方中草药对断奶仔猪生长性能及血清免疫、蛋白质代谢、抗应激指标的影响[J]. 动物营养学报, 2025, 37(1): 194-203.

doi: 10.12418/CJAN2025.017
Liu X J, Li M, Chen J, Ma X D, Chen C, Liu H Y, Su Q, Zhang J S, Qiao F B, Jia Z P. Effects of compound Chinese herbal medicine on growth performance and serum immune, protein metabolism, anti-stress indexes of weaned piglets[J]. Chinese Journal of Animal Nutrition, 2025, 37(1): 194-203. (in Chinese)

doi: 10.12418/CJAN2025.017
[6]
王德志, 文鹏, 杨海峰, 刘永军, 尹文, 吴晨晨. 中草药防治犊牛腹泻的研究现状[J]. 动物医学进展, 2025, 46(1): 113-117.
Wang D Z, Wen P, Yang H F, Liu Y J, Yin W, Wu C C. Research status on Chinese herbal medicines for prevention and treatment of calf diarrhea[J]. Progress in Veterinary Medicine, 2025, 46(1): 113-117. (in Chinese)
[7]
黄强, 彭玉麟, 栾超. 禁抗下功能性饲料添加剂的营养健康作用[J]. 饲料工业, 2020, 41(23): 49-58.
Huang Q, Peng Y L, Luan C. Nutritional and health role of functional feed additives after antibiotic free in feed[J]. Feed Industry, 2020, 41(23): 49-58. (in Chinese)
[8]
任津莹, 陈鹏. “禁抗”背景下的几种绿色饲料添加剂[J]. 饲料博览, 2020(12): 39-43.
Ren J Y, Chen P. Several green feed additives under the background of “No resistance”[J]. Feed Review, 2020(12): 39-43. (in Chinese)
[9]
Németh K, Plumb G W, Berrin J G, Juge N, Jacob R, Naim H Y, Williamson G, Swallow D M, Kroon P A. Deglycosylation by small intestinal epithelial cell beta-glucosidases is a critical step in the absorption and metabolism of dietary flavonoid glycosides in humans[J]. European Journal of Nutrition, 2003, 42(1): 29-42.

doi: 10.1007/s00394-003-0397-3 pmid: 12594539
[10]
Ranilla L G, Kwon Y I, Apostolidis E, Shetty K. Phenolic compounds, antioxidant activity and in vitro inhibitory potential against key enzymes relevant for hyperglycemia and hypertension of commonly used medicinal plants, herbs and spices in Latin America[J]. Bioresource Technology, 2010, 101(12): 4676-4689.

doi: 10.1016/j.biortech.2010.01.093 pmid: 20185303
[11]
Zhang Y Z, Zhang J, Yan J W, Qi X R, Wang Y H, Zheng Z T, Liang J Q, Ling J T, Chen Y X, Tang X Y, Zeng X X, Yu P, Zhang D J. Application of fermented Chinese herbal medicines in food and medicine field: From an antioxidant perspective[J]. Trends in Food Science & Technology, 2024, 148: 104410.
[12]
Hussain A, Bose S, Wang J H, Yadav M K, Mahajan G B, Kim H. Fermentation, a feasible strategy for enhancing bioactivity of herbal medicines[J]. Food Research International, 2016, 81: 1-16.

doi: 10.1016/j.foodres.2015.12.026
[13]
Yang H Y, Han L, Lin Y Q, Li T, Wei Y, Zhao L H, Tong X L. Probiotic fermentation of herbal medicine: Progress, challenges, and opportunities[J]. The American Journal of Chinese Medicine, 2023, 51(5): 1105-1126.

doi: 10.1142/S0192415X23500519
[14]
Kayath C A, Ibala Zamba A, Mokémiabeka S N, Opa-Iloy M, Elenga Wilson P S, Kaya-Ongoto M D, Mouellet Maboulou R J, Nguimbi E. Synergic involvements of microorganisms in the biomedical increase of polyphenols and flavonoids during the fermentation of ginger juice[J]. International Journal of Microbiology, 2020, 2020: 8417693.
[15]
Li X M, Liu W, Ge Q Y, Xu T T, Wu X, Zhong R H. Enhancement of active substances in astragali Radix broth with lactic acid bacteria fermentation and the promotion role of Chlorella growth factor[J]. Fermentation, 2024, 10(9): 455.

doi: 10.3390/fermentation10090455
[16]
Guo M Y, Kong Q, Wang W N, Yu H. Biotransformation of amygdalin by lactic acid bacteria fermentation[J]. Process Biochemistry, 2023, 132: 221-227.

doi: 10.1016/j.procbio.2023.07.022
[17]
Huang W M, Zhang C Y, Gu Z P, Li C, Fang Z F, Zeng Z, Zhang Z Q, Hu B, Chen H, Wu W J, Wang T Q, Lan X G, Liu Y T. Effect of microbial fermentation on the sensory characteristics and chemical compositions of Chinese sweet tea (Lithocarpus litseifolius (Hance) Chun)[J]. Food Bioscience, 2022, 46: 101567.

doi: 10.1016/j.fbio.2022.101567
[18]
Xu Y Q, Tang Y Q, Liu T, Liu H C, Yang J G, Meng L. Optimization of rare ginsenosides and antioxidant activity quality of ginseng jiaosu based on probiotic strains and fermentation technology[J/OL]. Journal of Food Quality, 2023. https://doi.org/10.1155/2023/5686929.
[19]
Xie G, Guo B Q, Li X M, Liu S, Liu H X, Wang Y Z. Enhancement of biotransformation of ginsenosides in white ginseng roots by aerobic co-cultivation of Bacillus subtilis and Trichoderma reesei[J]. Applied Microbiology and Biotechnology, 2021, 105(21): 8265-8276.

doi: 10.1007/s00253-021-11631-1
[20]
Chen C Y, Zhang R, Zhang L J, Hu Z Y, Wang S P, Mei X, Mi W, Zhang J Y. Biotransformation and bioaccessibility of active ingredients from Radix Astragali by Poria cocos during solid-state fermentation and in vitro digestion and antioxidant activity evaluation[J]. Scientific Reports, 2023, 13: 6888.

doi: 10.1038/s41598-023-33969-4
[21]
Cheng Y, Huang X Y, Li L X, Liu L, Zhang C S, Fan X, Xie Y, Zou Y F, Geng Z, Huang C. Effects of solid fermentation on Polygonatum cyrtonema polysaccharides: Isolation, characterization and bioactivities[J]. Molecules, 2023, 28(14): 5498.

doi: 10.3390/molecules28145498
[22]
Wen Y L, Yan L P, Chen C S. Effects of fermentation treatment on antioxidant and antimicrobial activities of four common Chinese herbal medicinal residues by Aspergillus oryzae[J]. Journal of Food and Drug Analysis, 2013, 21(2): 219-226.

doi: 10.1016/j.jfda.2013.05.013
[23]
Zhang H, Gao S M, Zhang X Y, Meng N, Chai X, Wang Y F. Fermentation characteristics and the dynamic trend of chemical components during fermentation of Massa Medicata Fermentata[J]. Arabian Journal of Chemistry, 2022, 15(1): 103472.

doi: 10.1016/j.arabjc.2021.103472
[24]
Zhu Z Y, Li Y, Sun H Q, Chen L J, Tang Y L, Liu X C, Zhang Y M. Screening of Cordyceps strains and optimization of its solid-state fermentation conditions on bioconversion of Astragalus residue[J]. Cellulose Chemistry and Technology, 2016, 50(2): 257-263.
[25]
Hu F L, Chen J Y, Xu Y X, Zhao C C, Li G H, Wang T F, Li M, Deng G Z, Peng X L. Fermented licorice extract alleviates ulcerative colitis by inhibiting the TLR4/NF-κB pathway and rebuilding intestinal microbiota in mice[J]. Food Bioscience, 2024, 61: 104918.

doi: 10.1016/j.fbio.2024.104918
[26]
Zhou X R, Li H B, Han Y, Xu G F. Solid-state fermentation by Lactiplantibacillus plantarum improves the active ingredients levels and physiological activities of Artemisia argyi leaves[J]. Industrial Crops and Products, 2025, 228: 120898.

doi: 10.1016/j.indcrop.2025.120898
[27]
Wang B, Wang C M, Duan Y C, Liu C, Zhang X W, Jia J Q, Wu Q Y. The effects of Monascus purpureus fermentation on metabolic profile, α-glucosidase inhibitory action, and in vitro digestion of mulberry leaves flavonoids[J]. LWT, 2023, 188: 115449.

doi: 10.1016/j.lwt.2023.115449
[28]
聂芙蓉, 张晨曦, 江青东, 刘太宇, 邓红雨. 混菌发酵对女贞子营养成分及生物活性物质含量变化的影响[J]. 现代牧业, 2018, 2(4): 14-18.
Nie F R, Zhang C X, Jiang Q D, Liu T Y, Deng H Y. Effect of mixed fermentation on the changes of nutritional components and bioactive substances in Ligustrum lucidum[J]. Modern Animal Husbandry, 2018, 2(4): 14-18. (in Chinese)
[29]
刘倩, 赵德辉, 杨雪, 李晓成, 宋庄, 孟影, 钟伟. 中草药渣发酵工艺及其在动物生产中的应用[J]. 中国饲料, 2023(7): 115-120.
Liu Q, Zhao D H, Yang X, Li X C, Song Z, Meng Y, Zhong W. Fermentation technology of Chinese medicine residue and its application in animal production[J]. China Feed, 2023(7): 115-120. (in Chinese)
[30]
Ali H K Q, Zulkali M M D. Design aspects of bioreactors for solid-state fermentation: A review[J]. Chemical and Biochemical Engineering Quarterly, 2011, 25(2): 255-266.
[31]
田秋丰, 张红, 尹珺伊, 张军, 白长胜, 王欢, 刘秋瑾, 王岩, 秦平伟, 邱景会, 汤继龙, 钟鹏, 史同瑞. 复方中草药生物发酵对其活性成分的影响[J]. 黑龙江畜牧兽医, 2023(8): 116-121.
Tian Q F, Zhang H, Yin J Y, Zhang J, Bai C S, Wang H, Liu Q J, Wang Y, Qin P W, Qiu J H, Tang J L, Zhong P, Shi T R. Effects of biological fermentation on active components of compound Chinese herbal medicine[J]. Heilongjiang Animal Science and Veterinary Medicine, 2023(8): 116-121. (in Chinese)
[32]
张文宣. 四君子汤加味固体发酵物对免疫抑制小鼠生理生化及免疫指标的影响[D]. 合肥: 安徽农业大学, 2023.
Zhang W X. Effects of modified solid fermentation of sijunzi decoction on physiological, biochemical and immune indexes of immunosuppressed mice[D]. Hefei: Anhui Agricultural University, 2023. (in Chinese)
[33]
刘波, 张鹏翼, 孟祥璟, 张祥奎, 李敏, 段崇刚, 张兰英, 张岱州, 凌沛学. 益生菌发酵中药方法概述及其应用研究进展[J]. 中国现代中药, 2020, 22(10): 1741-1750.
Liu B, Zhang P Y, Meng X J, Zhang X K, Li M, Duan C G, Zhang L Y, Zhang D Z, Ling P X. Research progress in probiotics fermentation methods of traditional Chinese medicine and its application[J]. Modern Chinese Medicine, 2020, 22(10): 1741-1750. (in Chinese)
[34]
王光强, 杨忠达, 吴倩, 夏永军, 刘光鹏, 初乐, 和法涛, 艾连中. 益生菌发酵中草药的研究进展[J]. 上海理工大学学报, 2024, 46(4): 357-363.
Wang G Q, Yang Z D, Wu Q, Xia Y J, Liu G P, Chu L, He F T, Ai L Z. Research advance of probiotics in the fermentation of Chinese herbal medicine[J]. Journal of University of Shanghai for Science and Technology, 2024, 46(4): 357-363. (in Chinese)
[35]
耿傲盼, 吴海青, 程超, 代东亮, 王力伟, 白晋宇, 苏少锋, 张心壮. 发酵中草药在动物生产中的应用研究进展[J]. 饲料研究, 2023, 46(16): 135-141.
Geng A P, Wu H Q, Cheng C, Dai D L, Wang L W, Bai J Y, Su S F, Zhang X Z. Research progress on application of fermented Chinese herbs in animal production[J]. Feed Research, 2023, 46(16): 135-141. (in Chinese)
[36]
Okamoto T, Sugimoto S, Noda M, Yokooji T, Danshiitsoodol N, Higashikawa F, Sugiyama M. Interleukin-8 release inhibitors generated by fermentation of Artemisia princeps pampanini herb extract with Lactobacillus plantarum SN13T[J]. Frontiers in Microbiology, 2020, 11: 1159.

doi: 10.3389/fmicb.2020.01159 pmid: 32582099
[37]
韩春杨, 刘翠艳, 牛钟相. 中药制剂发酵前后成分的变化及对肉鸡部分免疫指标和生长的影响[J]. 畜牧兽医学报, 2005, 36(11): 1223-1227.
Han C Y, Liu C Y, Niu Z X. Component changes of Chinese herb before and after fermentation and the effect on some immune indices and growth performance of broiler chickens[J]. Acta Veterinaria et Zootechnica Sinica, 2005, 36(11): 1223-1227. (in Chinese)
[38]
屈青松, 林峰, 赵崇妍, 马涛, 宋帅, 史新元. 发酵乳杆菌发酵人参工艺优化及人参皂苷抗氧化活性测定[J]. 中成药, 2020, 42(10): 2738-2743.
Qu Q S, Lin F, Zhao C Y, Ma T, Song S, Shi X Y. Optimization of fermentation technology of ginseng by Lactobacillus fermentum and determination of antioxidant activity of ginsenoside[J]. Chinese Traditional Patent Medicine, 2020, 42(10): 2738-2743. (in Chinese)
[39]
张栋健, 李薇, 梁之桃, 简宏良, 黄传奇, 何钧恒. 枳壳发酵炮制前后的成分变化及工艺优化[J]. 中国药房, 2017, 28(7): 971-974.
Zhang D J, Li W, Liang Z T, Jian H L, Huang C Q, He J H. Composition changes of aurantii fructus before and after fermentation processing and its technology op-timization[J]. China Pharmacy, 2017, 28(7): 971-974. (in Chinese)
[40]
Hur S J, Lee S Y, Kim Y C, Choi I, Kim G B. Effect of fermentation on the antioxidant activity in plant-based foods[J]. Food Chemistry, 2014, 160: 346-356.

doi: 10.1016/j.foodchem.2014.03.112 pmid: 24799248
[41]
王占一, 赵静, 朱天顺, 胡锦钢, 赵春林, 向兰. 纤维素酶辅助提取藕节多糖工艺优化及其动力学、热力学研究[J]. 中成药, 2020, 42(4): 836-842.
Wang Z Y, Zhao J, Zhu T S, Hu J G, Zhao C L, Xiang L. Cellulase-assisted extraction process optimization, kinetics and thermodynamics of polysaccharides from Nelumbinis Rhizomatis Nodus[J]. Chinese Traditional Patent Medicine, 2020, 42(4): 836-842. (in Chinese)
[42]
Wang L, Wei W H, Tian X F, Shi K, Wu Z Q. Improving bioactivities of polyphenol extracts from Psidium guajava L. Leaves through co-fermentation of Monascus anka GIM 3.592 and Saccharomyces cerevisiae GIM 2.139[J]. Industrial Crops and Products, 2016, 94: 206-215.

doi: 10.1016/j.indcrop.2016.08.043
[43]
Lee J H, Lee J H, Jin J S. Fermentation of traditional medicine: Present and future[J]. Oriental Pharmacy and Experimental Medicine, 2012, 12(3): 163-165.

doi: 10.1007/s13596-012-0080-4
[44]
Zhang S, Cheng M Q, Li Z D, Guan S M, Cai B G, Li Q Q, Rong S F. Composition and biological activity of rose and jujube kernel after fermentation with kombucha SCOBY[J]. Journal of Food Processing and Preservation, 2020, 44(10): e14758.
[45]
崔亚鹏, 许锐, 陈泽元, 陈双喜. 酿酒酵母和植物乳杆菌混合发酵对金银花浸提液多酚物质的影响[J]. 食品与发酵工业, 2022, 48(5): 95-99.

doi: 10.13995/j.cnki.11-1802/ts.028914
Cui Y P, Xu R, Chen Z Y, Chen S X. Effects of mixed fermentation of Saccharomyces cerevisiae and Lactobacillus plantarum on the polyphenol of honeysuckle extract[J]. Food and Fermentation Industries, 2022, 48(5): 95-99. (in Chinese)
[46]
Wang L, Bei Q, Wu Y N, Liao W Z, Wu Z Q. Characterization of soluble and insoluble-bound polyphenols from Psidium guajava L. Leaves co-fermented with Monascus anka and Bacillus sp. and their bio-activities[J]. Journal of Functional Foods, 2017, 32: 149-159.

doi: 10.1016/j.jff.2017.02.029
[47]
Lin Y L, Wang T H, Lee M H, Su N W. Biologically active components and nutraceuticals in the Monascus-fermented rice: A review[J]. Applied Microbiology and Biotechnology, 2008, 77(5): 965-973.

doi: 10.1007/s00253-007-1256-6
[48]
Wang X H, Jiang D, Shi Q J, Ren G X, Liu C S. Microbial degradation of aristolochic acid I by endophytic fungus A.h-Fs-1 of Asarum heterotropoides[J]. Frontiers in Microbiology, 2022, 13: 917117.

doi: 10.3389/fmicb.2022.917117
[49]
薛蓉, 宫静雯, 屈凌芸, 张倩, 苏联麟, 季德, 张伟, 李林, 毛春芹, 陆兔林. 毒性中药饮片炮制研究进展与探讨[J]. 世界中医药, 2022, 17(9): 1193-1201.
Xue R, Gong J W, Qu L Y, Zhang Q, Su L L, Ji D, Zhang W, Li L, Mao C Q, Lu T L. Research progress and discussion on processing of toxic traditional Chinese medicine decoction pieces[J]. World Chinese Medicine, 2022, 17(9): 1193-1201. (in Chinese)
[50]
何栾樱, 林子淳, 卢建东, 熊国良, 王诗卉. 基于灵芝双向固体发酵雷公藤减毒持效的研究[J]. 北京化工大学学报(自然科学版), 2021, 48(4): 48-56.

doi: 10.13543/j.bhxbzr.2021.04.006
He L Y, Lin Z C, Lu J D, Xiong G L, Wang S H. Detoxification and sustained effects of Tripterygium wilfordii based on Ganoderma lucidum bi-directional solid fermentation[J]. Journal of Beijing University of Chemical Technology (Natural Science Edition), 2021, 48(4): 48-56. (in Chinese)
[51]
Cao G, Ma F, Xu J, Zhang Y. Microbial community succession and toxic alkaloids change during fermentation of Huafeng Dan Yaomu[J]. Letters in Applied Microbiology, 2020, 70(4): 318-325.

doi: 10.1111/lam.13276 pmid: 31951031
[52]
张文, 韩广泉, 王凯, 姜艳萍, 张建梅. 乳酸菌对中草药的发酵及抑菌活性检测[J]. 饲料博览, 2014(1): 4-7.
Zhang W, Han G Q, Wang K, Jiang Y P, Zhang J M. The fermentation of TCMs by Lactobacillus and the assay of antibacterial activities of fermentation products[J]. Feed Review, 2014(1): 4-7. (in Chinese)
[53]
Yan X T, Zhang W M, Zhang Y Y, Zhang Z Q, Chen D W, Wang W Q, Ma W L, Qu H X, Qian J Y, Gu R X. In vitro anti-obesity effect of shenheling extract (SHLE) fermented with Lactobacillus fermentum grx08[J]. Foods, 2022, 11(9): 1221.

doi: 10.3390/foods11091221
[54]
Xiao R M, Wang L L, Tang Z Q, Qian X Q, Wang J, Lian Y L, Tang J Y, Xu J R, Lin Y, Shi B J, Xu P, Xiong Q S. Effects of fermented Chinese herbal medicine feed additives on growth performance and intestinal microbiota of piglets[J]. PLoS ONE, 2024, 19(10): e0308196.

doi: 10.1371/journal.pone.0308196
[55]
Ahmed S T, Mun H S, Yang C J. Effects of probiotic bacteria- fermented herbal combinations on growth performance, immunity, and meat quality of grower-finisher pigs[J]. Livestock Science, 2023, 273: 105258.

doi: 10.1016/j.livsci.2023.105258
[56]
Wang Q X, Wang L, Li L W, Sun M Q, Li P, Yu Y, Zhang Y H, Xu Z Y, Gao P, Ma J Y, Liu X Y. Effects of dietary supplementation of fermented Artemisia argyi on growth performance, slaughter performance, and meat quality in broilers[J]. Poultry Science, 2024, 103(4): 103545.

doi: 10.1016/j.psj.2024.103545
[57]
Liu Z N, Lei X W, Li J J, Zhong Y P, Tan D H, Zhang Q, Kong Z W. Effects of fermented Andrographis paniculata on growth performance, carcass traits, immune function, and intestinal health in Muscovy ducks[J]. Poultry Science, 2023, 102(3): 102461.

doi: 10.1016/j.psj.2022.102461
[58]
Chen G, Li Z Q, Liu S L, Tang T, Chen Q H, Yan Z M, Peng J, Yang Z K, Zhang G F, Liu Y T, Zheng M L. Fermented Chinese herbal medicine promoted growth performance, intestinal health, and regulated bacterial microbiota of weaned piglets[J]. Animals, 2023, 13(3): 476.

doi: 10.3390/ani13030476
[59]
Wang Y B, Xie Q H, Sun S, Huang B J, Zhang Y, Xu Y, Zhang S M, Xiang H Y. Probiotics-fermented Massa Medicata Fermentata ameliorates weaning stress in piglets related to improving intestinal homeostasis[J]. Applied Microbiology and Biotechnology, 2018, 102(24): 10713-10727.

doi: 10.1007/s00253-018-9438-y pmid: 30397767
[60]
Li Y, Sun T H, Hong Y X, Qiao T, Wang Y S, Li W, Tang S, Yang X, Li J, Li X W, Zhou Z T, Xiao Y C. Mixture of five fermented herbs (Zhihuasi tk) alters the intestinal microbiota and promotes the growth performance in piglets[J]. Frontiers in Microbiology, 2021, 12: 725196.

doi: 10.3389/fmicb.2021.725196
[61]
Zhao P Y, Li H L, Lei Y, Li T S, Kim S, Kim I. Effect of fermented medicinal plants on growth performance, nutrient digestibility, fecal noxious gas emissions, and diarrhea score in weanling pigs[J]. Journal of the Science of Food and Agriculture, 2016, 96(4): 1269-1274.

doi: 10.1002/jsfa.7217 pmid: 25873008
[62]
Li X Y, Zhang L, Zhang Y M, Luo X, Yu J, Ren S F, Ni L X, Yao X Q, Wu J Q, Mao Y W. Effects of dietary Inonotus obliquus fermentation products supplementation on meat quality and antioxidant capacity of finishing pigs[J]. Meat Science, 2025, 224: 109789.

doi: 10.1016/j.meatsci.2025.109789
[63]
Zhang X H, Zhao L G, Cao F L, Ahmad H, Wang G B, Wang T. Effects of feeding fermented Ginkgo biloba leaves on small intestinal morphology, absorption, and immunomodulation of early lipopolysaccharide-challenged chicks[J]. Poultry Science, 2013, 92(1): 119-130.

doi: 10.3382/ps.2012-02645
[64]
Liao L, Zhang W H, Liu Y H, Chen J L, Sun Y, Liu X Q. Optimization of fermentation process for Sihuang compound with Bacillus subtilis and its efficacy against Escherichia coli infections and growth performance in broilers[J]. Poultry Science, 2025, 104(10): 105588.

doi: 10.1016/j.psj.2025.105588
[65]
Wang Y M, Li J Y, Xie Y H, Zhang H X, Jin J H, Xiong L X, Liu H. Effects of a probiotic-fermented herbal blend on the growth performance, intestinal flora and immune function of chicks infected with Salmonella pullorum[J]. Poultry Science, 2021, 100(7): 101196.

doi: 10.1016/j.psj.2021.101196
[66]
Zhao S P, Sun X S, Zhao N, Zhang H W, Wang G F, Zhang L, Liu Y Q, Yang H T, Li J J, Zhou J, Gao Y H. Fermented Chinese herbal medicines combined with probiotics promote growth of fattening lambs under heat stress by modulating rumen mucosal barrier functions[J]. Animal Feed Science and Technology, 2025, 326: 116384.

doi: 10.1016/j.anifeedsci.2025.116384
[67]
Zhao S P, Shan C H, Wu Z J, Feng M, Song L J, Wang Y N, Gao Y H, Guo J J, Sun X S. Fermented Chinese herbal preparation: Impacts on milk production, nutrient digestibility, blood biochemistry, and antioxidant capacity of late-lactation cows under heat stress[J]. Animal Feed Science and Technology, 2022, 292: 115448.

doi: 10.1016/j.anifeedsci.2022.115448
[68]
Fan J Y, Cui H Y, Mu Z Y, Yao C X, Yang M F, Jin Y, Ning C S, Zhang H Y. Non-targeted metabolomics analysis of fermented traditional Chinese medicine and its impact on growth performance, serum biochemistry, and intestinal microbiome of weaned lambs[J]. Scientific Reports, 2024, 14: 20385.

doi: 10.1038/s41598-024-71516-x pmid: 39223216
[69]
Liu S Q, Li S H, Lu S L, Yang M F, Liu M Y, Li J F, Li S Y, Jian F C. Effects of fermented Artemisia annua on the intestinal microbiota and metabolites of Hu lambs with naturally infected with Eimeria spp.[J]. Frontiers in Cellular and Infection Microbiology, 2025, 14: 1448516.

doi: 10.3389/fcimb.2024.1448516
[70]
刘泽青, 耿怡雯, 朱龙龙, 马超, 陈国顺, 王晶. 发酵中草药饲料添加剂在畜禽生产中的研究应用进展[J]. 畜牧兽医学报, 2024, 55(10): 4250-4262.

doi: 10.11843/j.issn.0366-6964.2024.10.002
Liu Z Q, Geng Y W, Zhu L L, Ma C, Chen G S, Wang J. Progress in research and application of fermented Chinese herbal feed additives in livestock and poultry production[J]. Acta Veterinaria et Zootechnica Sinica, 2024, 55(10): 4250-4262. (in Chinese)

doi: 10.11843/j.issn.0366-6964.2024.10.002
[71]
张一凡, 聂馨玙, 刘可昕, 刘可心, 孟辰, 敖常伟. 益生菌发酵中草药制剂对猪生长性能及猪肉品质的影响[J]. 家畜生态学报, 2024, 45(12): 23-29.
Zhang Y F, Nie X Y, Liu K X, Liu K X, Meng C, Ao C W. Effects of probiotic-fermented herbal medicine preparation on growth performance of pigs and quality of pork[J]. Acta Ecologae Animalis Domastici, 2024, 45(12): 23-29. (in Chinese)

doi: 10.3969/j.issn.1673-1182.2024.12.004
[72]
白长胜, 刘秋瑾, 王欢, 田秋丰, 王振, 董佳强, 张蕾, 史同瑞. 糙皮侧耳菌HXS-M1发酵复方中草药对主要活性成分含量及抑菌活性的影响[J]. 饲料工业, 2025, 46(4): 147-153.
Bai C S, Liu Q J, Wang H, Tian Q F, Wang Z, Dong J Q, Zhang L, Shi T R. Effect of Pleurotus ostreatus HXS-M1 fermented compound traditional Chinese medicine on main active components and antibacterial activities[J]. Feed Industry, 2025, 46(4): 147-153. (in Chinese)
[73]
Adli D N, Sholikin M M, Ujilestari T, Ahmed B, Sadiqqua A, Harahap M A, Sofyan A, Sugiharto S. Effect of fermentation of herbal products on growth performance, breast meat quality, and intestinal morphology of broiler chickens: A meta-analysis[J]. Italian Journal of Animal Science, 2024, 23(1): 734-750.

doi: 10.1080/1828051X.2024.2351441
[74]
Wang X, Xie H J, Liu F, Wang Y H. Production performance, immunity, and heat stress resistance in Jersey cattle fed a concentrate fermented with probiotics in the presence of a Chinese herbal combination[J]. Animal Feed Science and Technology, 2017, 228: 59-65.

doi: 10.1016/j.anifeedsci.2017.03.015
[75]
Gao J, Wang R, Liu J X, Wang W L, Chen Y, Cai W T. Effects of novel microecologics combined with traditional Chinese medicine and probiotics on growth performance and health of broilers[J]. Poultry Science, 2022, 101(2): 101412.

doi: 10.1016/j.psj.2021.101412
[76]
Cao F L, Zhang X H, Yu W W, Zhao L G, Wang T. Effect of feeding fermented Ginkgo biloba leaves on growth performance, meat quality, and lipid metabolism in broilers[J]. Poultry Science, 2012, 91(5): 1210-1221.

doi: 10.3382/ps.2011-01886 pmid: 22499881
[77]
周映华, 高书锋, 王升平, 龚平, 舒燕, 曾发姣, 周小玲. 发酵中草药对淮南黄肉鸡生长性能、屠宰性能、肌肉品质和免疫机能的影响[J]. 饲料研究, 2025, 48(2): 62-66.
Zhou Y H, Gao S F, Wang S P, Gong P, Shu Y, Zeng F J, Zhou X L. Effects of fermented Chinese herbal medicine on growth performance, slaughter performance, meat quality, and immune function of Huainan Yellow broilers[J]. Feed Research, 2025, 48(2): 62-66. (in Chinese)
[78]
刘洪亮, 鲍菊, 刘庆雨, 高一, 马铮财, 张志彬, 矫君凤, 李娜. 发酵中草药副产物对松辽黑猪屠宰性能和肉品质及经济效益的影响[J]. 饲料工业, 2023, 44(22): 47-53.
Liu H L, Bao J, Liu Q Y, Gao Y, Ma Z C, Zhang Z B, Jiao J F, Li N. Effects of fermented Chinese herbal by-products on slaughter performance, meat quality and economic benefits of Songliao black pig[J]. Feed Industry, 2023, 44(22): 47-53. (in Chinese)
[79]
张朝生, 陈志敏, 王少龙, 刘国华. Kelech样环氧氯丙烷相关蛋白1-核因子E2相关因子2-抗氧化反应元件信号通路及其激活剂在畜禽生产中应用的研究进展[J]. 动物营养学报, 2024, 36(5): 2813-2829.

doi: 10.12418/CJAN2024.243
Zhang C S, Chen Z M, Wang S L, Liu G H. Research progress of kelech-like epichlorohydrin-associated protein 1-nuclear factor E2-related factor 2-antioxidant response element signaling pathway and application of its activators in livestock and poultry production[J]. Chinese Journal of Animal Nutrition, 2024, 36(5): 2813-2829. (in Chinese)

doi: 10.12418/CJAN2024.243
[80]
常伟辰, 李帅奇, 李琰, 闫微, 张红英, 王彦彬, 杨明凡, 张昂克. 白头翁散煎剂发酵物对感染猪流行性腹泻病毒仔猪肠道屏障功能的影响[J]. 畜牧兽医学报, 2023, 54(10): 4403-4410.

doi: 10.11843/j.issn.0366-6964.2023.10.036
Chang W C, Li S Q, Li Y, Yan W, Zhang H Y, Wang Y B, Yang M F, Zhang A K. Effect of Pulsatilla powder prescription decoction ferments on intestinal barrier function of piglets infected with porcine epidemic diarrhea virus[J]. Acta Veterinaria et Zootechnica Sinica, 2023, 54(10): 4403-4410. (in Chinese)
[81]
Wu R, Gao J P, Wang H L, Gao Y, Wu Q, Cui X H. Effects of fermented Cordyceps sinensis on oxidative stress in doxorubicin treated rats[J]. Pharmacognosy Magazine, 2015, 11(44): 724-731.

doi: 10.4103/0973-1296.165562
[82]
Zhao W J, Peng D, Li W J, Chen S Y, Liu B, Huang P X, Wu J S, Du B, Li P. Probiotic-fermented Pueraria Lobata (Willd.) Ohwi alleviates alcoholic liver injury by enhancing antioxidant defense and modulating gut microbiota[J]. Journal of the Science of Food and Agriculture, 2022, 102(15): 6877-6888.

doi: 10.1002/jsfa.v102.15
[83]
Duan Y, Guo F Q, Li C, Xiang D H, Gong M, Yi H, Chen L M, Yan L H, Zhang D, Dai L P, Liu X Q, Wang Z M. Aqueous extract of fermented Eucommia ulmoides leaves alleviates hyperlipidemia by maintaining gut homeostasis and modulating metabolism in high-fat diet fed rats[J]. Phytomedicine, 2024, 128: 155291.

doi: 10.1016/j.phymed.2023.155291
[84]
You S Q, Shi X Q, Yu D, Zhao D, An Q, Wang D D, Zhang J C, Li M, Wang C T. Fermentation of Panax notoginseng root extract polysaccharides attenuates oxidative stress and promotes type I procollagen synthesis in human dermal fibroblast cells[J]. BMC Complementary Medicine and Therapies, 2021, 21(1): 34.

doi: 10.1186/s12906-020-03197-8
[85]
Lu X R, Li J X, Ma Y C, Khan I, Yang Y, Li Y X, Wang Y F, Liu G L, Zhang Z M, Yang P R, Zhang C J. Fermented Angelica sinensis activates Nrf2 signaling and modulates the gut microbiota composition and metabolism to attenuate d-gal induced liver aging[J]. Food & Function, 2023, 14(1): 215-230.
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