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6S RNA – an old issue became blue-green

机译:6S RNA - 一个旧的问题变得蓝绿色

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6S RNA from Escherichia coli acts as a versatile transcriptional regulator by binding to the RNA polymerase and changing promoter selectivity. Although homologous 6S RNA structures exist in a wide range of bacteria, including cyanobacteria, our knowledge of 6S RNA function results almost exclusively from studies with E. coli. To test for potential structural and functional conservation, we selected four predicted cyanobacterial 6S RNAs (Synechocystis, Synechococcus, Prochlorococcus and Nostoc), which we compared with their E. coli counterpart. Temperature-gradient gel electrophoresis revealed similar thermodynamic transition profiles for all 6S RNAs, indicating basically similar secondary structures. Subtle differences in melting behaviour of the different RNAs point to minor structural variations possibly linked to differences in optimal growth temperature. Secondary structural analysis of three cyanobacterial 6S RNAs employing limited enzymic hydrolysis and in-line probing supported the predicted high degree of secondary structure conservation. Testing for functional homology we found that all cyanobacterial 6S RNAs were active in binding E. coli RNA polymerase and transcriptional inhibition, and had the ability to act as template for transcription of product RNAs (pRNAs). Deletion of the 6S RNA gene in Synechocystis did not significantly affect cell growth in liquid media but reduced fitness during growth on solid agar. While our study shows that basic 6S RNA functions are conserved in species as distantly related as E. coli and cyanobacteria, we also noted a subtle degree of divergence, which might reflect fundamental differences in transcriptional regulation and lifestyle, thus providing the first evidence for a possible physiological role in cyanobacteria.
机译:6S来自大肠杆菌的RNA通过与RNA聚合酶结合和改变启动子选择性来充当多功能转录调节剂。虽然同源6S RNA结构存在于各种细菌中,但包括蓝藻,但我们对6S RNA功能的了解几乎完全来自大肠杆菌的研究。为了测试潜在的结构和功能守恒,我们选择了四种预测的蓝藻6S RNA(SyneChocystis,SyneChococcus,Prochlorocccus和Nostoc),我们与他们的大肠杆菌对应物进行比较。温度梯度凝胶电泳显示了所有6S RNA的类似热力学过渡轮廓,表明基本相似的二次结构。不同RNA的熔化行为的微妙差异是可能与最佳生长温度的差异有关的少量结构变化。三种蓝藻6S RNA的二次结构分析,采用有限的酶水解和在线探测支持预测高度的二级结构守恒。测试功能性同源性的测试,我们发现所有的蓝细菌6s RNA都是有效的结合大肠杆菌RNA聚合酶和转录抑制,并且具有作为转录产品RNA(PRNA)的转录的能力。综合症中6S RNA基因的缺失没有显着影响液体培养基中的细胞生长,但在固体琼脂的生长期间减少健康。虽然我们的研究表明,碱性6S RNA功能在物种中被保守为与大肠杆菌和青霉菌相比,但我们还注意到了一种微妙的分歧,这可能反映了转录规则和生活方式的根本差异,从而为A提供了基本差异,从而提供了第一个证据在蓝藻中可能的生理作用。

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