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绘制啤酒厂中的微生物生态系统和腐败基因流动图谱,突出了污染和抗性模式。

Mapping microbial ecosystems and spoilage-gene flow in breweries highlights patterns of contamination and resistance.

作者信息

Bokulich Nicholas A, Bergsveinson Jordyn, Ziola Barry, Mills David A

机构信息

Department of Food Science and Technology, University of California, Davis, Davis, United States.

Department of Pathology and Laboratory Medicine, University of Saskatchewan, Saskatoon, Canada.

出版信息

Elife. 2015 Mar 10;4:e04634. doi: 10.7554/eLife.04634.

Abstract

Distinct microbial ecosystems have evolved to meet the challenges of indoor environments, shaping the microbial communities that interact most with modern human activities. Microbial transmission in food-processing facilities has an enormous impact on the qualities and healthfulness of foods, beneficially or detrimentally interacting with food products. To explore modes of microbial transmission and spoilage-gene frequency in a commercial food-production scenario, we profiled hop-resistance gene frequencies and bacterial and fungal communities in a brewery. We employed a Bayesian approach for predicting routes of contamination, revealing critical control points for microbial management. Physically mapping microbial populations over time illustrates patterns of dispersal and identifies potential contaminant reservoirs within this environment. Habitual exposure to beer is associated with increased abundance of spoilage genes, predicting greater contamination risk. Elucidating the genetic landscapes of indoor environments poses important practical implications for food-production systems and these concepts are translatable to other built environments.

摘要

独特的微生物生态系统已经进化以应对室内环境的挑战,塑造了与现代人类活动互动最为频繁的微生物群落。食品加工设施中的微生物传播对食品的质量和健康有着巨大影响,与食品产生有益或有害的相互作用。为了探索商业食品生产场景中的微生物传播模式和腐败基因频率,我们对一家啤酒厂中的抗蛇麻草酮基因频率以及细菌和真菌群落进行了分析。我们采用贝叶斯方法预测污染途径,揭示微生物管理的关键控制点。随时间对微生物种群进行物理定位可说明传播模式,并识别该环境中的潜在污染物储存库。经常接触啤酒与腐败基因丰度增加有关,预示着更高的污染风险。阐明室内环境的基因格局对食品生产系统具有重要的实际意义,并且这些概念可应用于其他建筑环境。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa54/4352708/f1ad4b5bc682/elife04634f001.jpg

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