如果芽孢杆菌休眠孢子需要ATP和大分子合成来触发孢子萌发,那么能量和前体从何而来?

IF 3.2 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Peter Setlow, Graham Christie
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引用次数: 0

摘要

ATP是生命的标志性分子之一。作为细胞的主要能量货币,关于它是否参与驱动与休眠芽孢杆菌孢子萌发相关的最早生物物理事件的争论持续了几十年而没有解决。为了形成争论的框架,本文介绍了孢子生理学的基本方面,以及生物能量学和大分子合成背景下的关键实验观察。显然,孢子核和内膜都不存在有利于显著氧化或底物水平磷酸化、基因转录或蛋白质翻译活性的亚细胞环境。此外,在休眠孢子中既不存在许多关键大分子的前体,也不存在合成这些前体所需的细胞装置。即使这些可能以某种方式在局部微环境中产生,由于孢子的次优腺苷酸能量电荷,与孢子中存在的可忽略不计的ATP相关的磷酸化电位相对于积极代谢的细胞严重降低。因此,大分子合成的范围在热力学上是不可能的。展望未来,孢子生物能量学和代谢领域的清晰性只有通过明确包含这些最坚决的细胞施加的生理约束的研究才能实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
If ATP and macromolecular synthesis are needed for dormant spores of Bacillota species to trigger spore germination, where do the energy and precursors come from?

ATP is one of the signature molecules of life. As the primary energy currency of cells, the debate concerning its involvement, if any, in driving the earliest biophysical events associated with germination of dormant Bacillota spores has continued without resolution for several decades. With a view to framing the debate, this article presents a synopsis of fundamental aspects of spore physiology coupled with key experimental observations in the context of bioenergetics and macromolecular synthesis. Evidently, neither the spore core nor the inner membrane present sub-cellular environments conducive to significant oxidative- or substrate-level phosphorylation, gene transcription, or protein translation activities. Additionally, neither the precursors of numerous critical macromolecules, nor the cellular apparatus required to synthesize these precursors, are present in dormant spores. Even if these might somehow be generated within localized micro-environments, the phosphorylation potential associated with the negligible quantities of ATP present in spores is severely reduced relative to actively metabolizing cells as a result of spores' sub-optimal adenylate energy charge. Thus, the scope for significant macromolecular synthesis is thermodynamically improbable. Looking ahead, clarity in the field of spore bioenergetics and metabolism will only be achieved by studies that unambiguously encompass the physiological constraints imposed by these most resolute cells.

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来源期刊
Journal of Applied Microbiology
Journal of Applied Microbiology 生物-生物工程与应用微生物
CiteScore
7.30
自引率
2.50%
发文量
427
审稿时长
2.7 months
期刊介绍: Journal of & Letters in Applied Microbiology are two of the flagship research journals of the Society for Applied Microbiology (SfAM). For more than 75 years they have been publishing top quality research and reviews in the broad field of applied microbiology. The journals are provided to all SfAM members as well as having a global online readership totalling more than 500,000 downloads per year in more than 200 countries. Submitting authors can expect fast decision and publication times, averaging 33 days to first decision and 34 days from acceptance to online publication. There are no page charges.
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