不稳定RNA视角下基因表达转录后调控的机制、机制和信息。

IF 7.2 2区 生物学 Q1 BIOPHYSICS
Giulia Paris, Kai Katsuya-Gaviria, Ben F Luisi
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引用次数: 0

摘要

在生命的所有领域,甚至在共存的病毒中,RNA分子在调节遗传信息表达的速率、持续时间和强度方面发挥着关键作用。RNA在许多不同的层面上发挥这些作用。反式作用调控rna可以调节与之配对的转录本的寿命和翻译效率,仅使用少量组分即可实现快速和高度特异性的识别。顺式作用的识别元件、共价修饰和RNA分子末端的变化编码影响转录物寿命、翻译效率和其他功能方面的信号。RNA可以通过小配体的结合或与其他大分子的相互作用提供变构功能来信号状态变化。无论是顺式还是反式,RNA都可以与多酶组合一起作用,这些多酶组合在RNA周转、加工和监视错误转录物中起作用。这些酶机制可能在不同的生命形式中独立进化,但仍然具有类似的功能角色,这暗示了合作组装以满足RNA代谢的确切要求的生物学重要性。支持所有rna介导的过程有两个关键方面:特异性,避免错误识别,和快速行动,赋予信号及时反应。这些过程是如何运作的,以及降解机器是如何识别异常RNA物种并对其做出反应的,这些都是有趣的谜题。我们回顾了这些过程的生物物理基础。组装动力学和相互作用组分的多价性为关键调控事件所需的识别和行动提供了机会之窗。rna介导调控的热力学不可逆性是生物系统的一个新兴特征,可能有助于解释明显的特异性和最佳速率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machinery, mechanism, and information in post-transcription control of gene expression, from the perspective of unstable RNA.

Throughout all the domains of life, and even among the co-existing viruses, RNA molecules play key roles in regulating the rates, duration, and intensity of the expression of genetic information. RNA acts at many different levels in playing these roles. Trans-acting regulatory RNAs can modulate the lifetime and translational efficiency of transcripts with which they pair to achieve speedy and highly specific recognition using only a few components. Cis-acting recognition elements, covalent modifications, and changes to the termini of RNA molecules encode signals that impact transcript lifetime, translation efficiency, and other functional aspects. RNA can provide an allosteric function to signal state changes through the binding of small ligands or interactions with other macromolecules. In either cis or trans, RNA can act in conjunction with multi-enzyme assemblies that function in RNA turnover, processing and surveillance for faulty transcripts. These enzymatic machineries have likely evolved independently in diverse life forms but nonetheless share analogous functional roles, implicating the biological importance of cooperative assemblies to meet the exact demands of RNA metabolism. Underpinning all the RNA-mediated processes are two key aspects: specificity, which avoids misrecognition, and speedy action, which confers timely responses to signals. How these processes work and how aberrant RNA species are recognised and responded to by the degradative machines are intriguing puzzles. We review the biophysical basis for these processes. Kinetics of assembly and multivalency of interacting components provide windows of opportunity for recognition and action that are required for the key regulatory events. The thermodynamic irreversibility of RNA-mediated regulation is one emergent feature of biological systems that may help to account for the apparent specificity and optimal rates.

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来源期刊
Quarterly Reviews of Biophysics
Quarterly Reviews of Biophysics 生物-生物物理
CiteScore
12.90
自引率
1.60%
发文量
16
期刊介绍: Quarterly Reviews of Biophysics covers the field of experimental and computational biophysics. Experimental biophysics span across different physics-based measurements such as optical microscopy, super-resolution imaging, electron microscopy, X-ray and neutron diffraction, spectroscopy, calorimetry, thermodynamics and their integrated uses. Computational biophysics includes theory, simulations, bioinformatics and system analysis. These biophysical methodologies are used to discover the structure, function and physiology of biological systems in varying complexities from cells, organelles, membranes, protein-nucleic acid complexes, molecular machines to molecules. The majority of reviews published are invited from authors who have made significant contributions to the field, who give critical, readable and sometimes controversial accounts of recent progress and problems in their specialty. The journal has long-standing, worldwide reputation, demonstrated by its high ranking in the ISI Science Citation Index, as a forum for general and specialized communication between biophysicists working in different areas. Thematic issues are occasionally published.
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