Structural and Computational Biology Unit, European Molecular Biology Laboratory (EMBL), 69117 Heidelberg, Germany.
Faculty of Biosciences, Collaboration for Joint PhD Degree between EMBL and Heidelberg University, 69117 Heidelberg, Germany.
Biomolecules. 2023 May 19;13(5):866. doi: 10.3390/biom13050866.
Ribosome assembly is one of the most fundamental processes of gene expression and has served as a playground for investigating the molecular mechanisms of how protein-RNA complexes (RNPs) assemble. A bacterial ribosome is composed of around 50 ribosomal proteins, several of which are co-transcriptionally assembled on a ~4500-nucleotide-long pre-rRNA transcript that is further processed and modified during transcription, the entire process taking around 2 min in vivo and being assisted by dozens of assembly factors. How this complex molecular process works so efficiently to produce an active ribosome has been investigated over decades, resulting in the development of a plethora of novel approaches that can also be used to study the assembly of other RNPs in prokaryotes and eukaryotes. Here, we review biochemical, structural, and biophysical methods that have been developed and integrated to provide a detailed and quantitative understanding of the complex and intricate molecular process of bacterial ribosome assembly. We also discuss emerging, cutting-edge approaches that could be used in the future to study how transcription, rRNA processing, cellular factors, and the native cellular environment shape ribosome assembly and RNP assembly at large.
核糖体组装是基因表达中最基本的过程之一,它为研究蛋白质-RNA 复合物(RNP)组装的分子机制提供了一个研究平台。细菌核糖体由大约 50 种核糖体蛋白组成,其中有几种是在大约 4500 个核苷酸长的 pre-rRNA 转录本上共转录组装的,该转录本在转录过程中进一步加工和修饰,整个过程在体内大约需要 2 分钟,并由数十种组装因子协助。几十年来,人们一直在研究这个复杂的分子过程是如何如此高效地产生一个有活性的核糖体的,这导致了许多新方法的发展,这些方法也可以用于研究原核生物和真核生物中其他 RNP 的组装。在这里,我们回顾了已经开发并整合的生化、结构和生物物理方法,这些方法为细菌核糖体组装的复杂和精细的分子过程提供了详细和定量的理解。我们还讨论了未来可能用于研究转录、rRNA 加工、细胞因子和天然细胞环境如何塑造核糖体组装和 RNP 组装的新兴前沿方法。