Biochemistry III-Regensburg Center for Biochemistry-Institute for Biochemistry, Genetics and Microbiology, University of Regensburg, Regensburg, Germany.
Methods Mol Biol. 2022;2533:3-22. doi: 10.1007/978-1-0716-2501-9_1.
Ribosomes are universally conserved ribonucleoprotein complexes involved in the decoding of the genetic information contained in messenger RNAs into proteins. Accordingly, ribosome biogenesis is a fundamental cellular process required for functional ribosome homeostasis and to preserve satisfactory gene expression capability.Although the ribosome is universally conserved, its biogenesis shows an intriguing degree of variability across the tree of life . These differences also raise yet unresolved questions. Among them are (a) what are, if existing, the remaining ancestral common principles of ribosome biogenesis ; (b) what are the molecular impacts of the evolution history and how did they contribute to (re)shape the ribosome biogenesis pathway across the tree of life ; (c) what is the extent of functional divergence and/or convergence (functional mimicry), and in the latter case (if existing) what is the molecular basis; (d) considering the universal ribosome conservation, what is the capability of functional plasticity and cellular adaptation of the ribosome biogenesis pathway?In this review, we provide a brief overview of ribosome biogenesis across the tree of life and try to illustrate some potential and/or emerging answers to these unresolved questions.
核糖体是普遍存在的核糖核蛋白复合物,参与将信使 RNA 中包含的遗传信息解码为蛋白质。因此,核糖体生物发生是一个基本的细胞过程,需要功能性的核糖体稳态和保持令人满意的基因表达能力。尽管核糖体是普遍存在的,但它的生物发生在生命之树上显示出了令人着迷的多样性。这些差异也提出了尚未解决的问题。其中包括:(a)如果存在,核糖体生物发生的剩余祖先共同原则是什么;(b)进化历史的分子影响是什么,以及它们如何有助于(重塑)生命之树上的核糖体生物发生途径;(c)功能分歧和/或趋同(功能模拟)的程度如何,在后一种情况下(如果存在),分子基础是什么;(d)考虑到普遍的核糖体保守性,核糖体生物发生途径的功能可塑性和细胞适应性如何?在这篇综述中,我们简要概述了生命之树上的核糖体生物发生,并试图说明对这些未解决问题的一些潜在和/或新兴答案。