中国猪业 ›› 2026, Vol. 21 ›› Issue (4): 112-121.doi: 10.16174/j.issn.1673-4645.2026.04.006

• 营养饲料 • 上一篇    下一篇

饲粮中添加发酵桑叶对断奶仔猪生长性能、腹泻及肠道微生态的影响

万荣1,2,3,农斯伟1*,邹智淼1,黄威1,万昌乾2,甘启富2,杨明3,王赟1,黄剑1,陈江淮1   

  1. 1百色学院农业与食品工程学院,广西百色533000;

    2广西猪牧歌生态饲料有限责任公司,广西百色533818; 

    3广西隆林锦欢种养有限公司,广西百色533100

  • 出版日期:2026-08-25 发布日期:2026-08-25
  • 作者简介:作者简介:万荣,博士,副研究员,研究方向为农业资源利用,E-mail:wanrong@bsuc.cn 通信作者:农斯伟,主要从事畜禽生态养殖与非常规饲料资源开发利用,E-mail:nsw-688@qq.com

Effects of fermented mulberry leaves on growth performance, diarrhea, and intestinal microecology in weaned piglets

WAN Rong1,2,3, NONG Siwei1*, ZOU Zhimiao1, HUANG Wei1, WAN Changqian2, GAN Qifu2, YANG Ming3, WANG Yun1, HUANG Jian1, CHEN Jianghuai1   

  1. 1Agriculture and Food Engineering College, Baise University, Baise 533000, China;

    2Guangxi Pig Pastoral Ecological Feed Co., Ltd., Baise 533818, China; 

    3Guangxi Longlin Jinhuan Planting and Breeding Co., Ltd., Baise 533100, China

  • Online:2026-08-25 Published:2026-08-25

摘要: 本文旨在系统评估饲粮中添加不同水平发酵桑叶对断奶仔猪生长性能、腹泻状况及肠道微生态的影响,为发酵桑叶在仔猪生产中的科学应用提供理论依据。采用单因子试验设计,选取200头体重(8.52±0.63 kg)、日龄(28 d)一致的健康DLY断奶仔猪,随机分为5组,每组4个重复,每个重复10头猪。对照组饲喂基础饲粮,试验组分别饲喂添加5%、10%、15%和20%发酵桑叶的饲粮(发酵桑叶经乳酸菌和纤维素酶协同发酵60 d制备),试验期28 d。结果显示,整个试验期(28~56 d),各试验组仔猪平均日采食量、平均日增重及料重比与对照组均无显著差异(P>0.05);在42~56日龄期间,20%发酵桑叶添加组仔猪的平均日增重增加了14.78%,与对照组相比差异不显著(P>0.05)。在28~42d阶段,各试验组仔猪腹泻率均显著低于对照组(P<0.05),其中15%添加组腹泻率最低(0.29%),较对照组(0.61%)降低52.46%;全期(28~56d)统计显示,15%添加组腹泻率仍显著低于对照组41.86%(P<0.05);各试验组十二指肠食糜pH值均显著低于对照组(P<0.05),空肠、回肠、盲肠及结肠pH值亦有降低趋势;10%、15%和20%添加组乙酸和丙酸含量均显著高于对照组(P<0.05),其中15%添加组乙酸含量最高(34.38 mmol/L),较对照组(24.61 mmol/L)提高47.05%;发酵桑叶添加对空肠和盲肠内容物中大肠杆菌、乳酸杆菌和双歧杆菌数量均无显著影响(P>0.05),但各添加组乳酸杆菌和双歧杆菌数量普遍高于对照组。在本试验条件下,饲粮中添加5%~20%发酵桑叶虽未显著改善断奶仔猪生长性能,但可显著降低腹泻率,并通过降低肠道前端pH值、增加盲肠有益SCFAs(乙酸、丙酸)产量等方式优化肠道微生态环境。综合来看,15%添加水平在改善腹泻和促进肠道健康方面效果相对更佳。

关键词: 发酵桑叶, 断奶仔猪, 生长性能, 腹泻, 肠道微生态

Abstract: This study employed a single-factor experimental design to systematically evaluate the effects of dietary supplementation with varying levels of fermented mulberry leaves on growth performance, diarrhoea incidence, and intestinal microecology in weaned piglets. The objective was to provide a theoretical foundation for the scientific application of fermented mulberry leaves in piglet production. A total of 200 healthy DLY weaned piglets with similar initial body weight (8.52±0.63 kg) and age (28 days) were randomly allocated into five groups, each consisting of four replicates with 10 piglets per replicate. The control group received a basal diet, while the experimental groups were fed diets supplemented with 5%, 10%, 15%, or 20% fermented mulberry leaves, which had been prepared through co-fermentation with lactic acid bacteria and cellulase for 60 days. The experiment lasted for 28 days. Parameters measured included growth performance, diarrhoea rate, intestinal chyme pH, caecal short-chain fatty acid (SCFA) concentrations, and the populations of major bacteria in the jejunum and caecum. Over the entire experimental period (from 28 to 56 days of age), no significant differences were observed in average daily feed intake, average daily gain, or feed-to-gain ratio between the experimental groups and the control group (P>0.05). However, during the period from 42 to 56 days of age, the 20% supplementation group exhibited a 14.78% increase in average daily gain compared with the control group, although this difference was not statistically significant (P>0.05). Between 28 and 42 days of age, diarrhoea rates in all experimental groups were significantly lower than those in the control group (P<0.05), with the 15% supplementation group showing the lowest rate (0.29% ), representing a 52.46% reduction relative to the control group (0.61% ). Over the full experimental period, the diarrhoea rate in the 15% supplementation group remained significantly lower—by 41.86%—than that of the control group (P<0.05). Duodenal chyme pH values were significantly lower in all experimental groups compared with the control group (P<0.05), and pH values in the jejunum, ileum, caecum, and colon followed a decreasing trend. Concentrations of acetic acid and propionic acid in the 10%, 15% , and 20% supplementation groups were significantly higher than those in the control group (P<0.05). The 15% supplementation group recorded the highest acetic acid level (34.38 mmol/L), which was 47.05% greater than that of the control group (24.61 mmol/L). Supplementation with fermented mulberry leaves had no significant effect on the counts of Escherichia coli, Lactobacillus, or Bifidobacterium in the jejunal and caecal contents (P>0.05). Nonetheless, the populations of Lactobacillus and Bifidobacterium in all experimental groups were generally higher than those in the control group. Under the conditions of this experiment, dietary inclusion of 5%~20% fermented mulberry leaves did not significantly enhance growth performance in weaned piglets but did markedly reduce diarrhoea incidence. Furthermore, it optimised the intestinal microecological environment by lowering pH in the proximal intestine and increasing the production of beneficial SCFAs(acetic acid and propionic acid) in the caecum. Overall, supplementation at the 15% level appeared most effective in alleviating diarrhoea and promoting intestinal health.

Key words: fermented mulberry leaves, weaned piglets, growth performance, diarrhea, intestinal microecology

中图分类号:  S828;S816

[1] TANG W J, LIU J L, MA Y F, et al. Impairment of intestinal barrier function induced by early weaning via autophagy and apoptosis associated with gut microbiome and metabolites[J]. Frontiers in Immunology, 2021, 12: 804870. [2] INDRIO F, NEU J, PETTOELLO-MANTOVANI M, et al. Development of the gastrointestinal tract in newborns as a challenge for an appropriate nutrition: a narrative review[J]. Nutrients, 2022, 14(7): 1405. [3] LIN L, ZHANG J Q. Role of intestinal microbiota and metabolites on gut homeostasis and human diseases[J]. BMC Immunology, 2017, 18(1): 2. [4] HASSAN F U, ARSHAD M A, LI M W, et al. Potential of mulberry leaf biomass and its flavonoids to improve production and health in ruminants: mechanistic insights and prospects[J]. Animals, 2020, 10(11): 2076. [5] MA G Q, CHAI X Y, HOU G G, et al. Phytochemistry, bioactivities and future prospects of mulberry leaves: a review[J]. Food Chemistry, 2022, 372: 131335. [6] YAN C H, CHEN F H, YANG Y L, et al. Biochemical and protein nutritional potential of mulberry (Morus alba L.) leaf: partial substitution improves the nutrition of conventional protein[J]. Journal of the Science of Food and Agriculture, 2024, 104(4): 2204-2214. [7] CAI M, MU L, WANG Z L, et al. Assessment of mulberry leaf as a potential feed supplement for animal feeding in P.R. China[J]. Asian-Australasian Journal of Animal Sciences, 2019, 32(8): 1145-1152. [8] ZHAO Q N, YAN X H, YUE Y, et al. Improved flavonoid content in mulberry leaves by solid-state fermentation: metabolic profile, activity, and mechanism[J]. Innovative Food Science & Emerging Technologies, 2023, 84: 103308. [9] BARTKIENE E, MOZURIENE E, LELE V, et al. Changes of bioactive compounds in barley industry by-products during submerged and solid state fermentation with antimicrobial Pediococcus acidilactici strain LUHS29[J]. Food Science & Nutrition, 2020, 8(1): 340-350. [10] CUI YY, PENG S, LI ZM, et al. Effects of fermented mulberry leaves on growth performance, plasma and urine metabolites of finishing pigs[J]. China Journal Animal Nutrition, 2022, 34: 5620-5629. [11] KUEBUTORNYE F K A, ABARIKE E D, LU Y S. A review on the application of Bacillus as probiotics in aquaculture[J]. Fish & Shellfish Immunology, 2019, 87: 820-828. [12] PENG W T, TALPUR M Z, ZENG Y X, et al. Influence of fermented feed additive on gut morphology, immune status, and microbiota in broilers[J]. BMC Veterinary Research, 2022, 18(1): 218. [13] HNOKAEW P, SRINGARM K, CHUAMMITRI P, et al. Influence of dietary mulberry (Morus albaL.) leaf supplementation on production performance, blood metabolites, rumen fermentation characteristics and ruminal bacteria community in lactating dairy cows[J]. Italian Journal of Animal Science, 2024, 23(1): 1031-1043. [14] GUO L Y, SHI X Y, CAO F, et al. Effects of dietary addition of mulberry leaf powder on blood metabolites and fecal microbiota composition in Hu sheep[J]. Frontiers in Animal Science, 2025, 5: 1469850. [15] DORAN M P, LACA E A, SAINZ R D. Total tract and rumen digestibility of mulberry foliage (Morus alba), alfalfa hay and oat hay in sheep[J]. Animal Feed Science and Technology, 2007, 138(3/4): 239-253. [16] LIU Q W, ZHUO Z H, ZHANG J H, et al. Nutritional quality assessment of mulberry leaves from different varieties as an alternative feed in ruminant nutrition[J]. Journal of Food Composition and Analysis, 2025, 140: 107213. [17] MA J Y, MA H, LIU S J, et al. Effect of mulberry leaf powder of varying levels on growth performance, immuno-antioxidant status, meat quality and intestinal health in finishing pigs[J]. Antioxidants, 2022, 11(11): 2243. [18] CUI Y Y, LIU Z C, DENG D, et al. Influence of fermented mulberry leaves as an alternative animal feed source on product performance and gut microbiome in pigs[J]. Fermentation, 2024, 10(4): 215. [19] WANG Q, QI Z T, FU W L, et al. Research and prospects of enzymatic hydrolysis and microbial fermentation technologies in protein raw materials for aquatic feed[J]. Fermentation, 2024, 10(12): 648. [20] LI J Z, LI G M, ZHANG H S, et al. The fermentation quality, antioxidant activity, and bacterial community of mulberry leaf silage with Pediococcus, Bacillus, and wheat bran[J]. Fermentation, 2024, 10(4): 214. [21] 段艳珍, 杨文, 杨叶眉, 等. 发酵桑叶及其在动物生产中的应用研究进展[J]. 饲料研究, 2024, 47(7): 146-150. DUAN Y Z, YANG W, YANG Y M, et al. Research progress of fermented mulberry leaves and its application in animal production[J]. Feed Research, 2024, 47(7): 146-150. [22] MA L X, LI J F, ZHAO W Y, et al. Key cellulase components synergizing with lactic acid bacteria to degrade alfalfa lignocellulose to improve lactic acid fermentation[J]. Frontiers in Microbiology, 2025, 16: 1566973. [23] 符兵, 周东来, 李庆荣, 等. 桑叶及其活性物质对动物肠道微生物的调控作用研究进展[J]. 中国畜牧兽医, 2024, 51(6): 2460-2470. FU B, ZHOU D L, LI Q R, et al. Research progress on the regulation of animal intestinal microbiota by mulberry leaves and its active substances[J]. China Animal Husbandry & Veterinary Medicine, 2024, 51(6): 2460-2470. [24] DUMAS G, LO VERSO L, GUAY F. Effect of creep and post-weaning feeding composition on piglets’ intestinal health and post-weaning growth according to their creep feed consumption status[J]. Canadian Journal of Animal Science, 2025, 105: 1-15. [25] PENG S, CUI Y Y, YU M, et al. Effect of fermented mulberry leaves on gut health of finishing pigs[J]. Animals, 2024, 14(19): 2911. [26] 呼红梅, 郝丽红, 王怀中, 等. 发酵桑叶对生长育肥猪生长性能、胴体品质和肌肉营养成分的影响[J]. 动物营养学报, 2021, 33(11): 6104-6113. HU H M, HAO L H, WANG H Z, et al. Effects of fermented mulberry leaves on growth performance, carcass quality and muscle nutrients of growing-finishing pigs[J]. Chinese Journal of Animal Nutrition, 2021, 33(11): 6104-6113. [27] CHEN G S, SU Y Y, CAI Y, et al. Comparative transcriptomic analysis reveals beneficial effect of dietary mulberry leaves on the muscle quality of finishing pigs[J]. Veterinary Medicine and Science, 2019, 5(4): 526-535. [28] YAN H, YAN S R, LI Z Y, et al. Mulberry leaf benefits the intestinal epithelial barrier via direct anti-oxidation and indirect modulation of microbiota in pigs[J]. Phytomedicine, 2024, 135: 156217. [29] LING X, HU Y F, HU Y M, et al. Analysis of chlorogenic acid and two flavonoids in mulberry leaves of different harvest periods and origins and HPLC fingerprint study for quality control[J]. Journal of Food Composition and Analysis, 2024, 132: 106284. [30] LU N, ZHANG L, TIAN Y Q, et al. Biosynthetic pathways and related genes regulation of bioactive ingredients in mulberry leaves[J]. Plant Signaling & Behavior, 2023, 18(1): 2287881. [31] PROCHáZKOVá N, LAURSEN M F, LA BARBERA G, et al. Gut physiology and environment explain variations in human gut microbiome composition and metabolism[J]. Nature Microbiology, 2024, 9(12): 3210-3225. [32] KAEWARSAR E, CHAIYASUT C, LAILERD N, et al. Effects of synbiotic Lacticaseibacillus paracasei, Bifidobacterium breve, and prebiotics on the growth stimulation of beneficial gut microbiota[J]. Foods, 2023, 12(20): 3847. [33] MOESER A J. 5 DPP lecture: investigating the impact of weaning and biological sex on gut development: discovering new targets for gut inflammation[J]. Journal of Animal Science, 2023, 101(Supplement_2): 62-63. [34] ZHANG Q, ZHANG L J, LYU Y, et al. Dietary supplementation of Lactobacillus Zeae regulated the gut microbiome in piglets infected with enterotoxigenic Escherichia coli[J]. Czech Journal of Animal Science, 2022, 67(1): 27-38. [35] 宋敏, 王超普, 崔艺燕, 等. 桑叶提取物对断奶仔猪粪便中主要微生物数量和臭气物质生成的影响[J]. 动物营养学报, 2023, 35(2): 823-833. SONG M, WANG C P, CUI Y Y, et al. Effects of mulberry leaf extract on number of main microbes and production of odorous substances in feces of weaned piglets[J]. Chinese Journal of Animal Nutrition, 2023, 35(2): 823-833. [36] FUSCO W, LORENZO M B, CINTONI M, et al. Short-chain fatty-acid-producing bacteria: key components of the human gut microbiota[J]. Nutrients, 2023, 15(9): 2211. [37] SUN C B, LI A, WANG H, et al. Positive regulation of acetate in adipocyte differentiation and lipid deposition in obese mice[J]. Nutrients, 2023, 15(17): 3736. [38] PENG K X, XIA S H, XIAO S Q, et al. Short-chain fatty acids affect the development of inflammatory bowel disease through intestinal barrier, immunology, and microbiota: a promising therapy?[J]. Journal of Gastroenterology and Hepatology, 2022, 37(9): 1710-1718. [39] WU M J, LYU Y X, XU H Y, et al. Raspberry polysaccharides attenuate hepatic inflammation and oxidative stress in diet-induced obese mice by enhancing butyrate-mediated intestinal barrier function[J]. International Journal of Biological Macromolecules, 2024, 262: 130007. [40] SONG M, WANG C P, YU M, et al. Mulberry leaf extract improves intestinal barrier function and displays beneficial effects on colonic microbiota and microbial metabolism in weaned piglets[J]. Journal of the Science of Food and Agriculture, 2023, 103(3): 1561-1568. [41] WANG W, CHEN L P, ZHOU R, et al. Increased proportions of Bifidobacterium and the Lactobacillus group and loss of butyrate-producing bacteria in inflammatory bowel disease[J]. Journal of Clinical Microbiology, 2014, 52(2): 398-406. [42] DUE?AS M, MU?OZ-GONZáLEZ I, CUEVA C, et al. A survey of modulation of gut microbiota by dietary polyphenols[J]. BioMed Research International, 2015, 2015: 850902. [43] ZHAO X J, LI L, LUO Q L, et al. Effects of mulberry (Morus alba L.) leaf polysaccharides on growth performance, diarrhea, blood parameters, and gut microbiota of early-weanling pigs[J]. Livestock Science, 2015, 177: 88-94.
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