Effects of Dietary Net Energy Concentration on Reproductive Performance, Immune Function, Milk Composition, and Gut Microbiota in Primiparous Lactating Sows

被引:1
作者
Gu, Fang [1 ]
Hou, Lei [2 ]
Gao, Kaiguo [1 ]
Wen, Xiaolu [1 ]
Mi, Shuyun [2 ]
Qin, Guoxi [2 ]
Huang, Lijun [1 ]
Wu, Qiwen [1 ]
Yang, Xuefen [1 ]
Wang, Li [1 ]
Jiang, Zongyong [1 ]
Xiao, Hao [1 ]
机构
[1] Guangdong Acad Agr Sci, Inst Anim Sci,Guangdong Key Lab Anim Breeding & Nu, State Key Lab Swine & Poultry Breeding Ind, Key Lab Anim Nutr & Feed Sci South China,Minist Ag, Dafeng 1st St, Guangzhou 510640, Peoples R China
[2] Guangxi State Farms Yongxin Anim Husb Grp Co Ltd, 135 Qixing Rd, Nanning 530022, Peoples R China
来源
ANIMALS | 2024年 / 14卷 / 20期
基金
中国国家自然科学基金;
关键词
net energy; reproductive performance; immune function; milk composition; gut microbiota; primiparous lactating sows; GROWTH-PERFORMANCE; OXIDATIVE STRESS; TOLERANCE-TEST; HEAT-STRESS; SHORT-TERM; BIOSYNTHESIS; TEMPERATURE; RESPONSES; HEALTHY; PIGLET;
D O I
10.3390/ani14203044
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
Simple Summary: Increased reproductive performance in modern high-yielding sows often results in inadequate energy intake. Many recent studies have focused on the improvement of sow energy intake through the addition of different dietary energy source, but there have few studies on dietary energy concentration based on the net energy system. Our results suggest that increasing the dietary energy concentration can increase immunological substances in milk and improve milk quality and body health in primiparous lactating sows. This study aimed to determine the optimal dietary net energy concentration for the reproductive performance, immune function, milk composition, and gut microbiota of primiparous sows during lactation. Forty primiparous lactating sows (Landrace x Yorkshire) with similar body backfat thicknesses were randomly allocated into five treatment groups and fed diets with different dietary net energy concentrations of 10.05 MJ/kg, 10.47 MJ/kg, 10.89 MJ/kg, 11.30 MJ/kg, and 11.72 MJ/kg. The results showed that there were no differences in the performance of piglets, while there was a decrease in the daily feed intake of sows (p = 0.079, linear) as dietary net energy concentration increased. With the increasing dietary net energy concentration, the plasma insulin levels of sows increased (p < 0.01, linear), the plasma glucose levels tended to increase (p = 0.074, linear), and the blood urea nitrogen levels tended to decrease (p = 0.063, linear). Moreover, the plasma total superoxide dismutase activity of sows increased (p < 0.05, quadratic) and the plasma malondialdehyde content of sows decreased (p < 0.05, quadratic) by increasing the dietary net energy concentration. Interestingly, with the increase in dietary net energy concentration, the plasma immunoglobulin M content of sows increased, the milk immunoglobulin M, immunoglobulin G, immunoglobulin A and the percentage of milk fat increased (p < 0.05, linear), and the milk secretory immunoglobulin A content also increased (p < 0.05, linear and quadratic). The milk immunoglobulins and milk fat content of sows fed with net energy concentration of 11.72 MJ/kg were highest. Moreover, there were significant differences in the alpha-diversity, beta-diversity, and relative abundance of gut microbiota in sows fed with different dietary net energy concentrations. At the phylum level, Spirochaetota and Bacteroidota in the gut microbiota of sows were mainly affected by increasing the dietary net energy concentration. Furthermore, the correlation analysis showed that milk immunoglobulin content had a significant negative correlation with the relative abundance of Bacteroidota, and plasma malondialdehyde content also had a significant negative correlation with the relative abundance of Spirochaetota. In summary, these results suggest that increasing the dietary net energy concentration to 11.72 MJ/kg can increase immunological substances in milk, improve milk quality, and alter the composition of gut microbiota in primiparous lactating sows.
引用
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页数:16
相关论文
共 57 条
  • [1] Angelakis E., 2019, New Microbes and New Infections, V27, P14, DOI 10.1016/j.nmni.2018.10.009
  • [2] Colostral antibody-mediated and cell-mediated immunity contributes to innate and antigen-specific immunity in piglets
    Bandrick, Meggan
    Ariza-Nieto, Claudia
    Baidoo, Samuel K.
    Molitor, Thomas W.
    [J]. DEVELOPMENTAL AND COMPARATIVE IMMUNOLOGY, 2014, 43 (01) : 114 - 120
  • [3] Barber M.C., 1997, Lipid Metabolism in the Lactating Mammary Gland, VVolume 1347, P101
  • [4] Oxidative stress status of highly prolific sows during gestation and lactation
    Berchieri-Ronchi, C. B.
    Kim, S. W.
    Zhao, Y.
    Correa, C. R.
    Yeum, K. -J.
    Ferreira, A. L. A.
    [J]. ANIMAL, 2011, 5 (11) : 1774 - 1779
  • [5] Heritability and genome-wide association of swine gut microbiome features with growth and fatness parameters
    Bergamaschi, Matteo
    Maltecca, Christian
    Schillebeeckx, Constantino
    McNulty, Nathan P.
    Schwab, Clint
    Shull, Caleb
    Fix, Justin
    Tiezzi, Francesco
    [J]. SCIENTIFIC REPORTS, 2020, 10 (01)
  • [6] LACTATION IN THE SOW DURING HEAT-STRESS
    BLACK, JL
    MULLAN, BP
    LORSCHY, ML
    GILES, LR
    [J]. LIVESTOCK PRODUCTION SCIENCE, 1993, 35 (1-2): : 153 - 170
  • [7] Evaluation of high nutrient diets on litter performance of heat-stressed lactating sows
    Choi, Yohan
    Hosseindoust, Abdolreza
    Shim, YoungHo
    Kim, Minju
    Kumar, Alip
    Oh, Seungmin
    Kim, YoungHwa
    Chae, Byung-Jo
    [J]. ASIAN-AUSTRALASIAN JOURNAL OF ANIMAL SCIENCES, 2017, 30 (11): : 1598 - 1604
  • [8] Phospholipids in foods: prooxidants or antioxidants?
    Cui, Leqi
    Decker, Eric A.
    [J]. JOURNAL OF THE SCIENCE OF FOOD AND AGRICULTURE, 2016, 96 (01) : 18 - 31
  • [9] Long-term effects of colostrum intake in piglet mortality and performance
    Declerck, I.
    Dewulf, J.
    Sarrazin, S.
    Maes, D.
    [J]. JOURNAL OF ANIMAL SCIENCE, 2016, 94 (04) : 1633 - 1643
  • [10] Delmastro-Greenwood MM, 2013, AM J CLIN EXP IMMUNO, V2, P30