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Metaproteomic evidence of changes in protein expression following a change in electrode potential in a robust biocathode microbiome

机译:蛋白质组学证据表明,在强大的生物阴极微生物组中,电极电位发生变化后,蛋白质表达也会发生变化

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摘要

Microorganisms that respire electrodes may be exploited for biotechnology applications if key pathways for extracellular electron transfer (EET) can be identified and manipulated through bioengineering. To determine whether expression of proposed Biocathode-MCL EET proteins are changed by modulating electrode potential without disrupting the relative distribution of microbial constituents, metaproteomic and 16S rRNA gene expression analyses were performed after switching from an optimal to suboptimal potential based on an expected decrease in electrode respiration. Five hundred and seventy-nine unique proteins were identified across both potentials, the majority of which were assigned to three previously defined Biocathode-MCL metagenomic clusters: a Marinobacter sp., a member of the family Chromatiaceae, and a Labrenzia sp. Statistical analysis of spectral counts using the Fisher's exact test identified 16 proteins associated with the optimal potential, five of which are predicted electron transfer proteins. The majority of proteins associated with the suboptimal potential were involved in protein turnover/turnover, motility, and membrane transport. Unipept and 16S rRNA gene expression analyses indicated that the taxonomic profile of the microbiome did not change after 52 hours at the suboptimal potential. These findings show that protein expression is sensitive to the electrode potential without inducing shifts in community composition, a feature that may be exploited for engineering Biocathode-MCL.
机译:如果可以通过生物工程识别和操纵细胞外电子转移(EET)的关键途径,那么可以激发电极活力的微生物可以用于生物技术应用。为了确定拟议的Biocathode-MCL EET蛋白的表达是否可通过调节电极电位而不会破坏微生物成分的相对分布而改变,根据预期的电极减少,从最佳电位切换至次最佳电位后,进行了蛋白质组学和16S rRNA基因表达分析呼吸。在这两个电位中鉴定出579个独特的蛋白质,其中大多数被分配给三个先前定义的Biocathode-MCL宏基因组:Marinobacter sp。,Chromatiaceae家族成员和Labrenzia sp.。使用Fisher精确检验对光谱计数进行统计分析,确定了16种与最佳电位相关的蛋白质,其中5种是预测的电子转移蛋白质。与次优潜力相关的大多数蛋白质都涉及蛋白质周转/周转,运动性和膜转运。 Unipept和16S rRNA基因表达分析表明,微生物组的分类学特征在52个小时后仍未达到最佳状态。这些发现表明,蛋白质表达对电极电位敏感,而不会引起群落组成的改变,这一特征可用于工程化生物阴极-MCL。

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