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KpsM(Slr0977)缺失会影响 sp. PCC 6803 细胞外聚合物质(EPS)的分泌并影响碳通量。

Absence of KpsM (Slr0977) Impairs the Secretion of Extracellular Polymeric Substances (EPS) and Impacts Carbon Fluxes in sp. PCC 6803.

机构信息

i3S-Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Porto, Portugal.

IBMC-Instituto de Biologia Celular e Molecular, Universidade do Porto, Porto, Portugal.

出版信息

mSphere. 2021 Jan 27;6(1):e00003-21. doi: 10.1128/mSphere.00003-21.

Abstract

Many cyanobacteria produce extracellular polymeric substances (EPS), composed mainly of heteropolysaccharides, that play a variety of physiological roles, being crucial for cell protection, motility, and biofilm formation. However, due to their complexity, the EPS biosynthetic pathways as well as their assembly and export mechanisms are still far from being fully understood. Here, we show that the absence of a putative EPS-related protein, KpsM (Slr0977), has a pleiotropic effect on sp. strain PCC 6803 physiology, with a strong impact on the export of EPS and carbon fluxes. The mutant exhibits a significant reduction of released polysaccharides and a smaller decrease of capsular polysaccharides, but it accumulates more polyhydroxybutyrate (PHB) than the wild type. In addition, this strain shows a light/cell density-dependent clumping phenotype and exhibits an altered protein secretion capacity. Furthermore, the most important structural component of pili, the protein PilA, was found to have a modified glycosylation pattern in the mutant compared to the wild type. Proteomic and transcriptomic analyses revealed significant changes in the mechanisms of energy production and conversion, namely, photosynthesis, oxidative phosphorylation, and carbon metabolism, in response to the inactivation of Overall, this work shows for the first time that cells with impaired EPS secretion undergo transcriptomic and proteomic adjustments, highlighting the importance of EPS as a major carbon sink in cyanobacteria. The accumulation of PHB in cells of the mutant, without affecting significantly its fitness/growth rate, points to its possible use as a chassis for the production of compounds of interest. Most cyanobacteria produce extracellular polymeric substances (EPS) that fulfill different biological roles depending on the strain/environmental conditions. The interest in the cyanobacterial EPS synthesis/export pathways has been increasing, not only to optimize EPS production but also to efficiently redirect carbon flux toward the production of other compounds, allowing the implementation of industrial systems based on cyanobacterial cell factories. Here, we show that a () mutant secretes less EPS than the wild type, accumulating more carbon intracellularly, as polyhydroxybutyrate. Further characterization showed a light/cell density-dependent clumping phenotype, altered protein secretion, and modified glycosylation of PilA. The proteome and transcriptome of the mutant revealed significant changes, namely, in photosynthesis and carbon metabolism. Altogether, this work provides a comprehensive overview of the impact of disruption on physiology, highlighting the importance of EPS as a carbon sink and showing how cells adapt when their secretion is impaired, and the redirection of the carbon fluxes.

摘要

许多蓝藻产生细胞外聚合物(EPS),主要由杂多糖组成,这些多糖在细胞保护、运动和生物膜形成等方面发挥着多种生理作用,对细胞至关重要。然而,由于其复杂性,EPS 生物合成途径以及它们的组装和输出机制仍远未完全被理解。在这里,我们表明,一种假定的 EPS 相关蛋白 KpsM(Slr0977)的缺失对 sp. PCC 6803 菌株的生理学有多种影响,对 EPS 的输出和碳通量有很大的影响。该突变体表现出释放多糖的显著减少和荚膜多糖的减少较小,但比野生型积累更多的聚-β-羟基丁酸(PHB)。此外,该菌株表现出光/细胞密度依赖性聚集表型,并表现出改变的蛋白质分泌能力。此外,在突变体中,发现菌毛最重要的结构成分蛋白 PilA 的糖基化模式与野生型相比发生了改变。蛋白质组学和转录组学分析表明,为了响应 EPS 分泌的中断,细胞在能量产生和转化的机制上发生了显著变化,即光合作用、氧化磷酸化和碳代谢。总的来说,这项工作首次表明,EPS 分泌受损的细胞经历转录组和蛋白质组的调整,突出了 EPS 作为蓝藻主要碳汇的重要性。突变体细胞中 PHB 的积累并没有显著影响其适应性/生长速率,这表明 PHB 可能被用作生产感兴趣化合物的底盘。大多数蓝藻产生细胞外聚合物(EPS),这些 EPS 根据菌株/环境条件发挥不同的生物学作用。人们对蓝藻 EPS 合成/输出途径的兴趣一直在增加,这不仅是为了优化 EPS 的生产,也是为了有效地将碳通量重新导向生产其他化合物,从而实现基于蓝藻细胞工厂的工业系统。在这里,我们表明,一种()突变体比野生型分泌更少的 EPS,更多的碳在细胞内积累,形成聚-β-羟基丁酸。进一步的表征显示出光/细胞密度依赖性聚集表型、改变的蛋白质分泌和 PilA 的糖基化修饰。突变体的蛋白质组和转录组显示出显著的变化,即光合作用和碳代谢。总的来说,这项工作全面概述了中断对()生理学的影响,突出了 EPS 作为碳汇的重要性,并展示了细胞在分泌受到干扰时如何适应,以及碳通量的重新定向。

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