Discovery of microbial glycoside hydrolases via enrichment and metaproteomics.

IF 3.1 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jitske M van Ede, Suzanne van der Steen, Geert M van der Kraan, Mark C M van Loosdrecht, Martin Pabst
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Abstract

The immense microbial diversity on Earth represents a vast genomic resource, yet discovering novel enzymes from complex environments remains challenging. Here, we combine a microbial enrichment with metagenomics and metaproteomics to facilitate the identification of microbial glycoside hydrolases that operate under defined conditions. We enriched microbial communities on the carbohydrate polymer pullulan at elevated temperatures under acidic conditions. Pullulan is a natural polysaccharide composed of maltotriose units linked by α-1,6-glycosidic bonds. Pullulan, along with its hydrolyzing enzymes, has broad applications across various industries. The enrichment inocula were sampled from thermophilic compost and from soil from the bank of a pond. In both cases, Alicyclobacillus was identified as the dominant microorganism. Metaproteomic analysis of the enriched biomass and secretome enabled the identification of several pullulan-degrading enzyme candidates from this organism. These enzymes were absent in the metagenomic analysis of the initial inoculum, which is highly complex with a wide diversity of species. This underscores the effectiveness of combining microbial enrichment with multi-omics for uncovering novel enzymes and sequence variants that operate under defined conditions from complex microbial environments.

通过富集和宏蛋白质组学发现微生物糖苷水解酶。
地球上巨大的微生物多样性代表了巨大的基因组资源,但从复杂的环境中发现新的酶仍然具有挑战性。在这里,我们将微生物富集与宏基因组学和宏蛋白质组学相结合,以促进在规定条件下工作的微生物糖苷水解酶的鉴定。我们在酸性条件下,在高温下丰富了碳水化合物聚合物普鲁兰上的微生物群落。普鲁兰是由α-1,6-糖苷键连接的麦芽糖糖单元组成的天然多糖。普鲁兰及其水解酶在各个行业都有广泛的应用。富集菌分别从喜热堆肥和池塘边的土壤中取样。在这两种情况下,艾丽环杆菌被确定为优势微生物。对富集的生物量和分泌组进行元蛋白质组学分析,鉴定出几种普鲁兰降解酶候选物。这些酶在初始接种物的宏基因组分析中是不存在的,这是一个高度复杂的物种多样性。这强调了将微生物富集与多组学相结合,在复杂微生物环境中发现在特定条件下运行的新酶和序列变异的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.10
自引率
0.00%
发文量
128
审稿时长
10 weeks
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