Varied microbial community assembly and specialization patterns driven by early life microbiome perturbation and modulation in young ruminants

Author:

Pan Zhe12,Ma Tao3,Steele Michael4,Guan Le Luo125

Affiliation:

1. Department of Agricultural , Food and Nutritional Science, , Edmonton, AB T6G 2P5 , Canada

2. University of Alberta , Food and Nutritional Science, , Edmonton, AB T6G 2P5 , Canada

3. Key Laboratory of Feed Biotechnology of the Ministry of Agriculture and Rural Affairs, Institute of Feed Research, Chinese Academy of Agricultural Sciences , Beijing 100081 , China

4. Department of Animal Biosciences, University of Guelph , Guelph, ON N1G 2W1 , Canada

5. Faculty of Land and Food Systems, The University of British Columbia , Vancouver, BC V6T 1Z4 , Canada

Abstract

Abstract Perturbations and modulations during early life are vital to affect gut microbiome assembly and establishment. In this study, we assessed how microbial communities shifted during calf diarrhea and with probiotic yeast supplementation (Saccharomyces cerevisiae var. boulardii, SCB) and determined the key bacterial taxa contributing to the microbial assembly shifts using a total of 393 fecal samples collected from 84 preweaned calves during an 8-week trial. Our results revealed that the microbial assembly patterns differed between healthy and diarrheic calves at 6- and 8-week of the trial, with healthy calves being stochastic-driven and diarrheic calves being deterministic-driven. The two-state Markov model revealed that SCB supplementation had a higher possibility to shift microbial assembly from deterministic- to stochastic-driven in diarrheic calves. Furthermore, a total of 23 and 21 genera were specific ecotypes to assembly patterns in SCB-responsive (SCB-fed calves did not exhibit diarrhea) and nonresponsive (SCB-fed calves occurred diarrhea) calves, respectively. Among these ecotypes, the area under a receiver operating characteristic curve revealed that Blautia and Ruminococcaceae UCG 014, two unidentified genera from the Ruminococcaceae family, had the highest predictiveness for microbial assembly patterns in SCB-responsive calves, while Prevotellaceae, Blautia, and Escherichia-Shigella were the most predictive bacterial taxa for microbial assembly patterns in SCB-nonresponsive calves. Our study suggests that microbiome perturbations and probiotic yeast supplementation serving as deterministic factors influenced assembly patterns during early life with critical genera being predictive for assembly patterns, which sheds light on mechanisms of microbial community establishment in the gut of neonatal calves during early life.

Funder

Natural Sciences and Engineering Research Council of Canada

Results Driven Agriculture Research

Alberta Milk

NSERC Alliance and Lallemand Animal Nutrition

Agricultural Science and Technology Innovation Program of the Chinese Academy of Agricultural Sciences

Publisher

Oxford University Press (OUP)

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