Translational Medicine Research Center, North Sichuan Medical College, Nanchong, Sichuan, 637000, PR China.
Institute of Preventive Veterinary Medicine, Sichuan Agricultural University, Chengdu, Sichuan, 611130, PR China.
Microbiol Res. 2018 Mar;207:134-139. doi: 10.1016/j.micres.2017.11.014. Epub 2017 Nov 29.
To adapt to a wide range of nutritional and environmental changes, cells must adjust their gene expression profiles. This process is completed by the frequent transcription and rapid degradation of mRNA. mRNA decay is initiated by a series of endo- and exoribonucleases. These enzymes leave behind 2- to 5-nt-long oligoribonucleotides termed "nanoRNAs" that are degraded by specific nanoRNases; the degradation of nanoRNA is essential because nanoRNA can mediate the priming of transcription initiation that is harmful for the cell via an unknown mechanism. Identified nanoRNases include Orn in E. coli, NrnA and NrnB in B. subtilis, and NrnC in Bartonella. Even though these nanoRNases can degrade nanoRNA specifically into mononucleotides, the biochemical features, structural features and functional mechanisms of these enzymes are different. Sequence analysis has identified homologs of these nanoRNases in different bacteria, including Gammaproteobacteria, Betaproteobacteria, Alphaproteobacteria, Firmicutes and Cyanobacteria. However, there are several bacteria, such as those belonging to the class Thermolithobacteria, that do not have homologs of these nanoRNases. In this paper, the source of nanoRNA, the features of different kinds of nanoRNases and the distribution of these enzymes in prokaryotes are described in detail.
为了适应广泛的营养和环境变化,细胞必须调整其基因表达谱。这个过程是通过频繁的转录和 mRNA 的快速降解来完成的。mRNA 的降解是由一系列内切核酸酶和外切核酸酶启动的。这些酶会留下 2-5 个核苷酸长的寡核糖核苷酸,称为“nanoRNA”,它们被特定的 nanoRNases 降解;nanoRNA 的降解是必不可少的,因为 nanoRNA 可以通过未知的机制介导转录起始的引发,这对细胞是有害的。已鉴定的 nanoRNases 包括大肠杆菌中的 Orn、枯草芽孢杆菌中的 NrnA 和 NrnB 以及巴尔通体中的 NrnC。尽管这些 nanoRNases可以特异性地将 nanoRNA 降解为单核苷酸,但这些酶的生化特征、结构特征和功能机制是不同的。序列分析已经在不同的细菌中鉴定出这些 nanoRNases 的同源物,包括γ变形菌、β变形菌、α变形菌、厚壁菌和蓝细菌。然而,有一些细菌,如属于热石杆菌纲的细菌,没有这些 nanoRNases 的同源物。本文详细描述了 nanoRNA 的来源、不同种类的 nanoRNases 的特征以及这些酶在原核生物中的分布。