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Roles of specific aminoglycoside-ribosome interactions in the inhibition of translation

机译:特定氨基糖苷类 - 核糖体相互作用在翻译中的抑制作用

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Aminoglycosides containing a 2-deoxystreptamine core (AGs) represent a large family of antibiotics that target the ribosome. These compounds promote miscoding, inhibit translocation, and inhibit ribosome recycling. AG binding to helix h44 of the small subunit induces rearrangement of A-site nucleotides A1492 and A1493, which promotes a key open-to-closed conformational change of the subunit and thereby increases miscoding. Mechanisms by which AGs inhibit translocation and recycling remain less clear. Structural studies have revealed a secondary AG binding site in H69 of the large subunit, and it has been proposed that interaction at this site is crucial for inhibition of translocation and recycling. Here, we analyze ribosomes with mutations targeting either or both AG binding sites. Assaying translocation, we find that ablation of the h44 site increases the IC50 values for AGs dramatically, while removal of the H69 site increases these values modestly. This suggests that the AG-h44 interaction is primarily responsible for inhibition, with H69 playing a minor role. Assaying recycling, we find that mutation of h44 has no effect on AG inhibition, consistent with a primary role for AG-H69 interaction. Collectively, these findings help clarify the roles of the two AG binding sites in mechanisms of inhibition by these compounds.
机译:含有2-脱氧肽核心(AGS)的氨基糖苷代表了靶向核糖体的大型抗生素。这些化合物促进错误分量,抑制易位,抑制核糖体再循环。 Ag与小亚基的螺旋H44结合,诱导A-位点核苷酸A1492和A1493的重排,这促进了亚基的关键开口闭合构象变化,从而增加了误差。 AGS抑制易位和再循环的机制仍然不太清楚。结构研究揭示了大亚基H69中的二级Ag结合位点,并提出了该位点的相互作用对于抑制易位和再循环至关重要。在此,我们将核糖体分析靶向或两者粘结位点的突变。测定易位,我们发现H44站点的消融急剧增加了AG的IC50值,同时删除了H69站点的谦虚地增加了这些值。这表明AG-H44相互作用主要负责抑制,H69发挥次要作用。测定回收,我们发现H44的突变对AG抑制没有影响,与Ag-H69相互作用的主要作用一致。总的来说,这些发现有助于阐明两种Ag结合位点在这些化合物抑制机制中的作用。

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