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Simultaneous Binding of Multiple EF-Tu Copies to Translating Ribosomes in Live Escherichia coli

机译:多种EF-Tu拷贝与活体大肠杆菌中的翻译核糖体同时结合

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ABSTRACT In bacteria, elongation factor Tu is a translational cofactor that forms ternary complexes with aminoacyl-tRNA (aa-tRNA) and GTP. Binding of a ternary complex to one of four flexible L7/L12 units on the ribosome tethers a charged tRNA in close proximity to the ribosomal A site. Two sequential tests for a match between the aa-tRNA anticodon and the current mRNA codon then follow. Because one elongation cycle can occur in as little as 50?ms and the vast majority of aa-tRNA copies are not cognate with the current mRNA codon, this testing must occur rapidly. We present a single-molecule localization and tracking study of fluorescently labeled EF-Tu in live Escherichia coli . Imaging at 2?ms/frame distinguishes 60% slowly diffusing EF-Tu copies (assigned as transiently bound to translating ribosome) from 40% rapidly diffusing copies (assigned as a mixture of free ternary complexes and free EF-Tu). Combining these percentages with copy number estimates, we infer that the four L7/L12 sites are essentially saturated with ternary complexes in vivo. The results corroborate an earlier inference that all four sites can simultaneously tether ternary complexes near the A site, creating a high local concentration that may greatly enhance the rate of testing of aa-tRNAs. Our data and a combinatorial argument both suggest that the initial recognition test for a codon-anticodon match occurs in less than 1 to 2?ms per aa-tRNA copy. The results refute a recent study (A. Plochowietz, I. Farrell, Z. Smilansky, B. S. Cooperman, and A. N. Kapanidis, Nucleic Acids Res 45:926–937, 2016, https://doi.org/10.1093ar/gkw787 ) of tRNA diffusion in E.?coli that inferred that aa-tRNAs arrive at the ribosomal A site as bare monomers, not as ternary complexes. IMPORTANCE Ribosomes catalyze translation of the mRNA codon sequence into the corresponding sequence of amino acids within the nascent polypeptide chain. Polypeptide elongation can be as fast as 50?ms per added amino acid. Each amino acid arrives at the ribosome as a ternary complex comprising an aminoacyl-tRNA (aa-tRNA), an elongation factor called EF-Tu, and GTP. There are 43 different aa-tRNAs in use, only one of which typically matches the current mRNA codon. Thus, ternary complexes must be tested very rapidly. Here we use fluorescence-based single-molecule methods that locate and track single EF-Tu copies in E.?coli . Fast and slow diffusive behavior determines the fraction of EF-Tu copies that are ribosome bound. We infer simultaneous tethering of ~4 ternary complexes to the ribosome, which may facilitate rapid initial testing for codon matching on a time scale of less than 1 to 2?ms per aa-tRNA.
机译:摘要在细菌中,延伸因子Tu是一种翻译辅因子,与氨酰基tRNA(aa-tRNA)和GTP形成三元复合物。三元复合物与核糖体系链上四个柔性L7 / L12单元之一的结合,使带电tRNA紧邻核糖体A位点。然后进行两个连续测试,以检测aa-tRNA反密码子与当前mRNA密码子之间的匹配。因为一个延伸周期可以在短短的50µms内发生,并且绝大部分的aa-tRNA拷贝都与当前的mRNA密码子不相关,所以这一检测必须迅速进行。我们目前在活大肠杆菌中荧光标记的EF-Tu的单分子定位和跟踪研究。以2?ms /帧成像可将40%的快速扩散拷贝(分配为游离三元复合物和游离EF-Tu的混合物)与60%缓慢扩散的EF-Tu拷贝(分配为与翻译的核糖体暂时结合)区分开。将这些百分比与拷贝数估计值结合起来,我们可以推断出四个L7 / L12位点在体内基本被三元复合物饱和。结果证实了先前的推论,即所有四个位点都可以同时在A位点附近束缚三元复合物,从而产生较高的局部浓度,这可能会大大提高aa-tRNA的测试速度。我们的数据和组合论证都表明,密码子-反密码子匹配的初始识别测试发生在每个aa-tRNA拷贝少于1到2?ms的时间内。结果驳斥了最近的一项研究(A.Plochowietz,I.Farrell,Z.Smilansky,BS Cooperman和AN Kapanidis,Nucleic Acids Res 45:926-937,2016,https://doi.org/10.1093ar/gkw787 )的tRNA在大肠杆菌中的扩散,推断aa-tRNA以裸露单体而不是三元复合物的形式到达核糖体A位点。重要信息核糖体催化将mRNA密码子序列翻译成新生多肽链中相应的氨基酸序列。每个添加的氨基酸,多肽的延伸速度可高达50µms。每个氨基酸以三元复合物的形式到达核糖体,该三元复合物包含氨酰基-tRNA(aa-tRNA),称为EF-Tu的延伸因子和GTP。使用了43种不同的aa-tRNA,其中只有一种通常与当前的mRNA密码子匹配。因此,必须非常快速地测试三元配合物。在这里,我们使用基于荧光的单分子方法来定位和追踪大肠杆菌中的单个EF-Tu拷贝。快慢扩散行为决定了核糖体结合的EF-Tu拷贝的比例。我们推断〜4个三元复合物同时束缚到核糖体,这可能有助于在少于1至2µms / aa-tRNA的时间尺度上进行密码子匹配的快速初始测试。

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