电缆细菌属的比较揭示了它们的传导机制的细节。

IF 6.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
EMBO Reports Pub Date : 2025-04-01 Epub Date: 2025-02-17 DOI:10.1038/s44319-025-00387-8
Leonid Digel, Mads L Justesen, Nikoline S Madsen, Nico Fransaert, Koen Wouters, Robin Bonné, Lea E Plum-Jensen, Ian P G Marshall, Pia B Jensen, Louison Nicolas-Asselineau, Taner Drace, Andreas Bøggild, John L Hansen, Andreas Schramm, Espen D Bøjesen, Lars Peter Nielsen, Jean V Manca, Thomas Boesen
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引用次数: 0

摘要

电缆细菌是一种厘米长的多细胞细菌,通过质周导电纤维(pcf)导电。利用电刺属和电刺属的单株富集,我们系统地研究了两属在形态和电学性质上的差异和相似性。不同PCFs的电导率跨越了三个数量级,为进一步研究其传导机制的可塑性提供了依据。通过电子显微镜和元素分析,我们发现两种电缆细菌属具有相似的细胞包膜和细胞-细胞连接的超微结构。铁,硫和镍信号与pcf共定位,表明这些元素的关键功能作用。pcf是由多股股组成的绞绳状结构。此外,我们还报道了在细胞-细胞连接处形成的片状结构,核心层与PCFs相连,PCFs下方有有趣的囊泡样内膜内凹。最后,利用生物信息学工具,我们鉴定了一个细胞色素家族,预测其结构与来自其他电活性微生物的已知多血红素纳米线蛋白具有同源性,并表明这些细胞色素可以在电缆细菌的细胞外或细胞间电子传导中发挥作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of cable bacteria genera reveals details of their conduction machinery.

Cable bacteria are centimeter-long multicellular bacteria conducting electricity through periplasmic conductive fibers (PCFs). Using single-strain enrichments of the genera Electrothrix and Electronema we systematically investigate variations and similarities in morphology and electrical properties across both genera. Electrical conductivity of different PCFs spans three orders of magnitude warranting further investigations of the plasticity of their conduction machinery. Using electron microscopy and elemental analyses, we show that the two cable bacteria genera have similar cell envelopes and cell-cell junction ultrastructures. Iron, sulfur, and nickel signals are co-localized with the PCFs, indicating key functional roles of these elements. The PCFs are organized as stranded rope-like structures composed of multiple strands. Furthermore, we report lamellae-like structures formed at the cell-cell junctions with a core layer connecting to the PCFs, and intriguing vesicle-like inner membrane invaginations below the PCFs. Finally, using bioinformatic tools, we identify a cytochrome family with predicted structural homology to known multi-heme nanowire proteins from other electroactive microorganisms and suggest that these cytochromes can play a role in the extra- or intercellular electron conduction of cable bacteria.

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来源期刊
EMBO Reports
EMBO Reports 生物-生化与分子生物学
CiteScore
11.20
自引率
1.30%
发文量
267
审稿时长
1 months
期刊介绍: EMBO Reports is a scientific journal that specializes in publishing research articles in the fields of molecular biology, cell biology, and developmental biology. The journal is known for its commitment to publishing high-quality, impactful research that provides novel physiological and functional insights. These insights are expected to be supported by robust evidence, with independent lines of inquiry validating the findings. The journal's scope includes both long and short-format papers, catering to different types of research contributions. It values studies that: Communicate major findings: Articles that report significant discoveries or advancements in the understanding of biological processes at the molecular, cellular, and developmental levels. Confirm important findings: Research that validates or supports existing knowledge in the field, reinforcing the reliability of previous studies. Refute prominent claims: Studies that challenge or disprove widely accepted ideas or hypotheses in the biosciences, contributing to the correction and evolution of scientific understanding. Present null data: Papers that report negative results or findings that do not support a particular hypothesis, which are crucial for the scientific process as they help to refine or redirect research efforts. EMBO Reports is dedicated to maintaining high standards of scientific rigor and integrity, ensuring that the research it publishes contributes meaningfully to the advancement of knowledge in the life sciences. By covering a broad spectrum of topics and encouraging the publication of both positive and negative results, the journal plays a vital role in promoting a comprehensive and balanced view of scientific inquiry. 
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