Xiao Xiao, Cui Tiantian, Qin Songke, Wang Tao, Liu Jinsong, Sa Lihan, Wu Yanping, Zhong Yifan, Yang Caimei
Key Laboratory of Applied Technology on Green-Eco-Healthy Animal Husbandry of Zhejiang Province, College of Animal Science and Technology, College of Veterinary Medicine, Zhejiang A&F University, 311300, Hangzhou, China; Zhejiang Provincial Engineering Laboratory for Animal Health and Internet Technology, College of Animal Science and Technology, College of Veterinary Medicine, Zhejiang A&F University, 311300, Hangzhou, China; Zhejiang International Science and Technology Cooperation Base for Veterinary Medicine and Health Management, College of Animal Science and Technology, College of Veterinary Medicine, Zhejiang A&F University, 311300, Hangzhou, China; China-Australia Joint Laboratory for Animal Health Big Data Analytics, College of Animal Science and Technology, College of Veterinary Medicine, Zhejiang A&F University, 311300, Hangzhou, China; Zhejiang Vegamax Biotechnology Co. Ltd., Anji, 313300, Huzhou, China.
Key Laboratory of Applied Technology on Green-Eco-Healthy Animal Husbandry of Zhejiang Province, College of Animal Science and Technology, College of Veterinary Medicine, Zhejiang A&F University, 311300, Hangzhou, China; Zhejiang Provincial Engineering Laboratory for Animal Health and Internet Technology, College of Animal Science and Technology, College of Veterinary Medicine, Zhejiang A&F University, 311300, Hangzhou, China.
Poult Sci. 2024 Dec;103(12):104280. doi: 10.1016/j.psj.2024.104280. Epub 2024 Sep 1.
Lactobacillus plantarum (L. plantarum) has been globally regarded as antibiotic alternative in animal farming in the past few years. However, the potential function of L. plantarum in broilers has not been systemically explored. In this study, a total of 560 one-day-old yellow-feathered broilers were randomly divided into 3 groups, fed with basal diet and drank with L. plantarum HJZW08 (LP) at the concentration of 0 (CON), 1000 × 10^5 (LP1000), and 2000 × 10^5 CFU/L (LP2000) for 70 d. Results showed that the body weight (BW), average daily gain (ADG), average daily feed intake (ADFI), immunoglobulin A (IgA), IgY, and anti-inflammatory interleukin 10 (IL-10) were markedly improved (P < 0.05), while the levels of pro-inflammatory IL-2, IL-1β, IL-6, and tumor necrosis factor-α (TNF-α) in serum were decreased (P < 0.05) in the LP2000 group comparing with the CON group. Besides, LP treatment groups prominently increased the levels and activities of antioxidant enzymes and decreased the content of malondialdehyde (MDA). Additionally, the levels of isobutyric acid in the LP1000 and LP2000 groups and isovaleric acid in the LP2000 group were significantly improved. More importantly, the α-diversity and microbial structure of intestinal microbiota were pronounced altered by LP supplementation. The results showed that only the relative abundance of Actinobacteriota was significantly increased in the LP2000 group, while 6 kinds of bacteria on genus level were significantly changed. For further validation, linear discriminant analysis with effect size (LEfSe) plots revealed that 8 amplicon sequence variants (ASVs) were predominant in the CON group, while Bacteroides and other beneficial species such as Lactimicrobium massiliense (ASV4 and ASV36), Intestinimonas butyriciproducens (ASV71), and Barnesiella viscericola (ASV152 and ASV571) were enriched in the LP groups. Taken together, dietary supplementation with LP obviously enhanced the immune status, antioxidant capacity, and stabilized the cecal microbiota and SCFAs, contributing to the improvement of growth performance of broilers. Our study laid good foundation for the application of probiotic Lactobacillus in animal industry in the future.
在过去几年中,植物乳杆菌在全球范围内被视为动物养殖中的抗生素替代品。然而,植物乳杆菌在肉鸡中的潜在功能尚未得到系统研究。在本研究中,总共560只1日龄黄羽肉鸡被随机分为3组,分别饲喂基础日粮,并饮用浓度为0(CON)、1000×10^5(LP1000)和2000×10^5 CFU/L(LP2000)的植物乳杆菌HJZW08(LP),持续70天。结果表明,与CON组相比,LP2000组的体重(BW)、平均日增重(ADG)、平均日采食量(ADFI)、免疫球蛋白A(IgA)、IgY和抗炎性白细胞介素10(IL - 10)显著提高(P < 0.05),而血清中促炎性IL - 2、IL - 1β、IL - 6和肿瘤坏死因子 - α(TNF - α)的水平降低(P < 0.05)。此外,LP处理组显著提高了抗氧化酶的水平和活性,并降低了丙二醛(MDA)的含量。另外,LP1000组和LP2000组中的异丁酸水平以及LP2000组中的异戊酸水平显著提高。更重要的是,补充LP显著改变了肠道微生物群的α - 多样性和微生物结构。结果显示,仅LP2000组中的放线菌门相对丰度显著增加,而属水平上有6种细菌发生了显著变化。为进一步验证,效应大小线性判别分析(LEfSe)图显示,CON组中有8个扩增子序列变体(ASV)占主导,而拟杆菌属和其他有益物种,如马赛乳微杆菌(ASV4和ASV36)、丁酸产肠单胞菌(ASV71)和内脏巴恩斯氏菌(ASV152和ASV571)在LP组中富集。综上所述,日粮中添加LP明显增强了肉鸡的免疫状态、抗氧化能力,并稳定了盲肠微生物群和短链脂肪酸,有助于提高肉鸡的生长性能。我们的研究为未来益生菌植物乳杆菌在动物产业中的应用奠定了良好基础。