Department of Biology, Boston College, 140 Commonwealth Ave. Chestnut Hill, MA 02467, USA.
Nucleic Acids Res. 2013 Apr 1;41(6):3491-503. doi: 10.1093/nar/gkt055. Epub 2013 Feb 8.
In Escherichia coli, 12 distinct RNA structures within the transcripts encoding ribosomal proteins interact with specific ribosomal proteins to allow autogenous regulation of expression from large multi-gene operons, thus coordinating ribosomal protein biosynthesis across multiple operons. However, these RNA structures are typically not represented in the RNA Families Database or annotated in genomic sequences databases, and their phylogenetic distribution is largely unknown. To investigate the extent to which these RNA structures are conserved across eubacterial phyla, we created multiple sequence alignments representing 10 of these messenger RNA (mRNA) structures in E. coli. We find that while three RNA structures are widely distributed across many phyla of bacteria, seven of the RNAs are narrowly distributed to a few orders of Gammaproteobacteria. To experimentally validate our computational predictions, we biochemically confirmed dual L1-binding sites identified in many Firmicute species. This work reveals that RNA-based regulation of ribosomal protein biosynthesis is used in nearly all eubacterial phyla, but the specific RNA structures that regulate ribosomal protein biosynthesis in E. coli are narrowly distributed. These results highlight the limits of our knowledge regarding ribosomal protein biosynthesis regulation outside of E. coli, and the potential for alternative RNA structures responsible for regulating ribosomal proteins in other eubacteria.
在大肠杆菌中,编码核糖体蛋白的转录本中存在 12 种不同的 RNA 结构,这些 RNA 结构与特定的核糖体蛋白相互作用,从而允许来自大的多基因操纵子的表达进行自体调节,从而协调多个操纵子中的核糖体蛋白生物合成。然而,这些 RNA 结构通常不在 RNA 家族数据库中表示,也不在基因组序列数据库中注释,并且它们的系统发育分布在很大程度上是未知的。为了研究这些 RNA 结构在真细菌门中的保守程度,我们创建了代表大肠杆菌中 10 种这些信使 RNA(mRNA)结构的多个序列比对。我们发现,虽然有三种 RNA 结构广泛分布于许多细菌门,但其中七种 RNA 结构仅限于少数γ变形菌目。为了实验验证我们的计算预测,我们通过生物化学方法证实了在许多厚壁菌门物种中鉴定出的 L1 结合位点的双重结合。这项工作表明,基于 RNA 的核糖体蛋白生物合成调控几乎存在于所有真细菌门中,但在大肠杆菌中调控核糖体蛋白生物合成的特定 RNA 结构分布狭窄。这些结果突出了我们在大肠杆菌以外的核糖体蛋白生物合成调控方面的知识的局限性,以及负责调节其他真细菌中核糖体蛋白的替代 RNA 结构的潜力。