Characterization of the gastrointestinal microbiota in paddlefish (Polyodon spathula)

被引:10
作者
Yang, Gang [1 ,2 ]
Tao, Zhiying [3 ]
Xiao, Jun [3 ]
Tu, Guohua [4 ]
Kumar, Vikas [2 ]
Wen, Chungen [1 ]
机构
[1] Nanchang Univ, Sch Life Sci, Dept Fisheries Sci, Nanchang 330031, Jiangxi, Peoples R China
[2] Univ Idaho, Aquaculture Res Inst, Hagerman Fish Culture Expt Stn, 3059-F Natl Fish Hatchery Rd, Hagerman, ID 83332 USA
[3] Jiangxi Fisheries Res Inst, Nanchang 330039, Jiangxi, Peoples R China
[4] Lichuan Zhongxian Aquaculture Farm, Fuzhou 344000, Peoples R China
基金
中国国家自然科学基金;
关键词
Polyodon spathula; Gastrointestinal microbiome; Ecological network; Microbial function; HIGH-FAT DIET; GUT MICROBIOTA; INTESTINAL MICROBIOTA; DIVERSITY; NETWORKS; METABOLISM; STABILITY; EVOLUTION; ECOLOGY; GROWTH;
D O I
10.1016/j.aqrep.2020.100402
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
The role of gastrointestinal microbiome has long been proven to be crucial in the nutrition uptake and meta-bolism of host. In paddlefish (Polyodon spathula ), a greater proportion of Gammaproteobacteria, Fusobacteriia, Clostridia, Alphaproteobacteria were found in esophagus and stomach, whereas intestine was predominated by Fusobacteriia, Gammaproteobacteria, and Bacteroidia detected by 16s RNA sequencing. Shannon diversity index and microbial richness decreased along the digestive tract, and a significantly higher proportion of Cetobacterium was observed in intestine, following by a remarkable alteration in the structure of microbial community in intestine compared to esophagus and stomach. Through species-species interactions, microbiome formed unique ecological networks to adapt the distinct physicochemical conditions in esophagus, stomach, and intestine, and dominant microflora was the major component of these networks. Within these networks, many bacterial strains from the dominant microbiota served important ecological roles such as module hubs or connectors, which contributed in maintaining the stability of the microbial community. The microbial cooperative interactions predominated along the digestive tract, and the lowest proportion of competitive interactions was observed in stomach. Microbial function composition in intestine, predicted by function analysis, significantly differed from that in esophagus and stomach. Specially, in terms of nutrition metabolism, the intestinal microbial community exhibited a high capacity in carbohydrate fermentation compared with that in esophagus and stomach. These results suggested that the microbial composition and function in intestine were significantly different from that in esophagus and stomach of paddle fish. Moreover, complex species-species interactions may promote the adaptation of microbiome to the physiological environment of the host.
引用
收藏
页数:9
相关论文
共 50 条
[41]   Contaminants in muscle tissue from paddlefish (Polyodon spathula) and hybrid striped bass (Morone chrysops x M-saxatilis) after being raised in reclaimed effluent water [J].
Cuevas-Uribe, R. ;
Mims, S. D. .
JOURNAL OF APPLIED ICHTHYOLOGY, 2015, 31 :71-74
[42]   Research Regarding Content in Amino-acids and Biological Value of Proteins from Polyodon spathula Sturgeon Meat [J].
Simeanu, Cristina ;
Simeanu, Daniel ;
Popa, Anca ;
Usturoi, Alexandru ;
Bodescu, Dan ;
Dolis, Marius Gheorghe .
REVISTA DE CHIMIE, 2017, 68 (05) :1063-1069
[43]   Characterization and comparison of the bacterial microbiota in different gastrointestinal tract compartments of Mongolian horses [J].
Su, Shaofeng ;
Zhao, Yiping ;
Liu, Zongzheng ;
Liu, Guiqin ;
Du, Ming ;
Wu, Jing ;
Bai, Dongyi ;
Li, Bei ;
Bou, Gerelchimeg ;
Zhang, Xinzhuang ;
Dugarjaviin, Manglai .
MICROBIOLOGYOPEN, 2020, 9 (06) :1085-1101
[44]   The Gastrointestinal Microbiome Alcohol Effects on the Composition of Intestinal Microbiota [J].
Engen, Phillip A. ;
Green, Stefan J. ;
Voigt, Robin M. ;
Forsyth, Christopher B. ;
Keshavarzian, Ali .
ALCOHOL RESEARCH-CURRENT REVIEWS, 2015, 37 (02) :223-236
[45]   Nutritional influences on the gut microbiota and the consequences for gastrointestinal health [J].
Scott, Karen P. ;
Duncan, Sylvia H. ;
Louis, Petra ;
Flint, Harry J. .
BIOCHEMICAL SOCIETY TRANSACTIONS, 2011, 39 :1073-1078
[46]   Effects of Berberine on the Gastrointestinal Microbiota [J].
Zhang, Lichao ;
Wu, Xiaoying ;
Yang, Ruibing ;
Chen, Fang ;
Liao, Yao ;
Zhu, Zifeng ;
Wu, Zhongdao ;
Sun, Xi ;
Wang, Lifu .
FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY, 2021, 10
[47]   Effects of a high fat diet on intestinal microbiota and gastrointestinal diseases [J].
Zhang, Mei ;
Yang, Xiao-Jiao .
WORLD JOURNAL OF GASTROENTEROLOGY, 2016, 22 (40) :8905-8909
[48]   Codiversification of gastrointestinal microbiota and phylogeny in passerines is not explained by ecological divergence [J].
Kropackova, Lucie ;
Tesicky, Martin ;
Albrecht, Tomas ;
Kubovciak, Jan ;
Cizkova, Dagmar ;
Tomasek, Oldrich ;
Martin, Jean-Francois ;
Bobek, Lukas ;
Kralova, Tereza ;
Prochazka, Petr ;
Kreisinger, Jakub .
MOLECULAR ECOLOGY, 2017, 26 (19) :5292-5304
[49]   Do the intestinal microbiotas differ between paddlefish (Polyodon spathala) and bighead carp (Aristichthys nobilis) reared in the same pond? [J].
Li, X. M. ;
Zhu, Y. J. ;
Yan, Q. Y. ;
Ringo, E. ;
Yang, D. G. .
JOURNAL OF APPLIED MICROBIOLOGY, 2014, 117 (05) :1245-1252
[50]   Composition and evolutionary characterization of the gut microbiota in pigs [J].
Zhang, Shuhong ;
Zhang, Huan ;
Zhang, Cheng ;
Wang, Guan ;
Shi, Chuanxing ;
Li, Zhiqiang ;
Gao, Fengyi ;
Cui, Yanyan ;
Li, Ming ;
Yang, Guangli .
INTERNATIONAL MICROBIOLOGY, 2024, 27 (04) :993-1008