Rho-dependent termination: a bacterial evolutionary capacitor for stress resistance.

IF 4.4 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Transcription-Austin Pub Date : 2025-04-01 Epub Date: 2025-03-05 DOI:10.1080/21541264.2025.2474367
Sarah B Worthan, Megan I Grant, Megan G Behringer
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Abstract

Since the Modern Synthesis, interest has grown in resolving the "black box" between genotype and phenotype. Contained within this black box are highly plastic RNA and proteins with global effects on chromosome integrity and gene expression that serve as evolutionary capacitors - elements that enable the accumulation and buffering of genetic variation in normal conditions and reveal hidden genetic variation when induced by environmental stress. Discussion of evolutionary capacitors has primarily focused on eukaryotic translation factors and chaperones, such as Hsp90 and PSI+ prion. However, due to the coupling of transcription and translation in prokaryotes, transcription factors can be equally impactful in the modulation of gene expression and phenotypes. In this review, we discuss the prokaryotic transcription terminator Rho and how mutagenesis and plasticity of Rho influence epistasis, evolvability, and adaptation to stress in bacteria. We discuss the effects of variation in Rho generated by nature, laboratory mutagenesis, and experimental evolution; and how this variation is constrained or encouraged by Rho's extensive network of protein interactors. Exploring Rho's role as an evolutionary capacitor, along with identifying additional elements that can serve this function, can significantly advance our understanding of how organisms adapt to thrive in diverse environments.

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rho依赖终止:细菌抗应力进化电容器。
自现代合成以来,人们对解决基因型和表现型之间的“黑盒子”越来越感兴趣。这个黑盒子中包含高度可塑性的RNA和蛋白质,它们对染色体完整性和基因表达具有全局影响,充当进化电容器——在正常条件下积累和缓冲遗传变异的元件,在环境胁迫诱导下揭示隐藏的遗传变异。关于进化电容器的讨论主要集中在真核翻译因子和伴侣蛋白上,如Hsp90和PSI+朊病毒。然而,由于原核生物中转录和翻译的耦合,转录因子在基因表达和表型的调节中同样具有影响力。本文综述了原核转录终止子Rho及其诱变和可塑性如何影响细菌的上位性、进化性和对胁迫的适应。我们讨论了由自然、实验室诱变和实验进化产生的Rho变异的影响;以及这种变异是如何受到Rho广泛的蛋白质相互作用物网络的限制或鼓励的。探索Rho作为进化电容器的角色,以及确定可以服务于这一功能的其他元素,可以显著推进我们对生物如何适应在不同环境中茁壮成长的理解。
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来源期刊
Transcription-Austin
Transcription-Austin BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
6.50
自引率
5.60%
发文量
9
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