Long-term crowding stress disrupts intestinal homeostasis in largemouth bass (Micropterus salmoides)

被引:1
作者
Li, Meijia [1 ,2 ]
Yang, Leshan [2 ,3 ]
Liu, Ying [1 ,2 ]
Ma, He [2 ,3 ]
机构
[1] Zhejiang Univ, Coll Biosyst Engn & Food Sci BEFS, Hangzhou 310058, Peoples R China
[2] Minist Educ, Key Lab Environm Controlled Aquaculture, Dalian 116023, Peoples R China
[3] Dalian Ocean Univ, Coll Fisheries & Life Sci, Dalian 116023, Peoples R China
基金
中国国家自然科学基金;
关键词
Crowding stress; Largemouth bass; Intestinal microbiota; Intestinal structure; Gene expression; INNATE IMMUNE-RESPONSE; GUT MICROBIOTA; METABOLISM; BARRIER; GROWTH;
D O I
10.1016/j.aquaculture.2025.742171
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
As an inevitable stressor in high-density aquaculture environment, crowding stress has attracted extensive attention due to its detrimental impact on fish growth and immunity. However, the physiological indicators of crowding stress onset and the intricate mechanisms underlying this stressor remain unclear. In the present study, the impact of crowding stress on growth performance, intestinal microbiota composition, intestinal structure and function in largemouth bass (Micropterus salmoides) have been explored. Growth indices showed that high stocking density suppressed fish growth. The intestinal microbiota composition results showed a significant increase in the abundance of bacterial genera such as Muribaculaceae, Bacteroides, and Enterococcus after crowding stress. Functional predictions of microbiota indicated a weakening of metabolism-related pathways. Additionally, intestinal tissue damage and disrupted transcriptional profile of intestinal cells were observed in the high-density group. Specifically, genes significantly upregulated in "endopeptidase activity" and "intestinal immune network for IgA production" pathways, while significantly downregulated in "oxidative phosphorylation" and "cardiac muscle contraction" pathways. Changes in expression of genes linked to stress response, intestinal barrier integrity, anaerobic glycolysis, and inflammation processes were further validated. Notably, a strong correlation was found between intestinal microbiota and these differentially expressed genes in intestine, particularly pathogenic Enterococcus and probiotic Kocuria. Overall, these results suggest that intestinal microbiota dysbiosis and intestinal cells dysfunction are likely the direct factors contributing to intestinal structural damage and hindered growth of largemouth bass, which offers valuable insights into developing indicators for crowding stress occurrence, as well as strategies to alleviate its detrimental effects by maintaining intestinal homeostasis.
引用
收藏
页数:15
相关论文
共 50 条
[21]   A study on the function of methionine in growth, immunity, antioxidant, endoplasmic reticulum stress and apoptosis of largemouth bass (Micropterus salmoides) [J].
Liang, Hualiang ;
Huang, Dongyu ;
Ren, Mingchun ;
Zhang, Lu ;
Mi, Haifeng ;
Aboseif, Ahmed Mohamed ;
Xue, Chunyu ;
Gu, Jiaze .
AQUACULTURE REPORTS, 2024, 39
[22]   Effects of antimicrobial peptides on the growth performance, antioxidant and intestinal function in juvenile largemouth bass, Micropterus salmoides [J].
Li, Shuai ;
Chi, ShuYan ;
Cheng, Xiangtang ;
Wu, Chenglong ;
Xu, Qiaoqing ;
Qu, Peng ;
Gao, Weihua ;
Liu, Yongsheng .
AQUACULTURE REPORTS, 2020, 16
[23]   Microbiome-Metabolomics Analysis Insight into the Effects of Starvation and Refeeding on Intestinal Integrity in the Juvenile Largemouth Bass (Micropterus salmoides) [J].
Zhao, Zhenxin ;
Zhang, Xianbo ;
Zhao, Fei ;
Luo, Tianxun .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2024, 25 (23)
[24]   Toxicology of aspartame to largemouth bass ( Micropterus salmoides) on the basis of antioxidant capacity, liver histology and the intestinal microbiota [J].
Su, Qiuwen ;
Yang, Jiafa ;
Yang, Zixin ;
Kong, Qin ;
Xiao, Guohong ;
Liu, Dan ;
Tang, Huijuan .
ANIMAL FEED SCIENCE AND TECHNOLOGY, 2025, 320
[25]   Effects of cottonseed protein concentrate on growth performance, hepatic function and intestinal health in juvenile largemouth bass, Micropterus salmoides [J].
He, Guanglun ;
Zhang, Tingting ;
Zhou, Xinmei ;
Liu, Xinping ;
Sun, Hao ;
Chen, Yongjun ;
Tan, Beiping ;
Lin, Shimei .
AQUACULTURE REPORTS, 2022, 23
[26]   Dietary arginine levels affect growth performance, intestinal antioxidant capacity and immune responses in largemouth bass (Micropterus salmoides) [J].
Yu, Yayun ;
Huang, Dongyu ;
Zhang, Lin ;
Chen, Xiaoru ;
Wang, Yongli ;
Zhang, Lu ;
Ren, Mingchun ;
Liang, Hualiang .
AQUACULTURE REPORTS, 2023, 32
[27]   Dietary sodium butyrate positively modulated intestinal microbial community, but did not promote growth of largemouth bass (Micropterus salmoides) [J].
Li, Xiaoqin ;
Lin, Xia ;
Chen, Wenjie ;
Leng, Xiangjun .
FISH PHYSIOLOGY AND BIOCHEMISTRY, 2024, 50 (02) :745-755
[28]   Morphological variation in largemouth bass Micropterus salmoides in Lake Biwa, Japan [J].
Yamamoto, Yoshimasa ;
Tsukada, Hajime .
ANNALES DE LIMNOLOGIE-INTERNATIONAL JOURNAL OF LIMNOLOGY, 2010, 46 (01) :41-45
[29]   Dietary sodium diacetate inclusion relieved hepatic glycogen deposition, oxidative stress, and intestinal microbial imbalance of largemouth bass (Micropterus salmoides) fed high dietary carbohydrate [J].
Fang, Zishuo ;
Gong, Ye ;
Han, Zhihao ;
Xie, Ruitao ;
Li, Wenfei ;
Zhang, Haitao ;
Chen, Naisong ;
Li, Songlin .
AQUACULTURE, 2024, 580
[30]   Dietary synbiotics improved the growth, feed utilization and intestinal structure of largemouth bass (Micropterus salmoides) juvenile [J].
Yang, Pinxian ;
Yang, Weining ;
He, Ming ;
Li, Xiaoqin ;
Leng, Xiang-Jun .
AQUACULTURE NUTRITION, 2020, 26 (02) :590-600