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单分子关联化学探测揭示了核糖体中的大规模结构通讯以及抗生素大观霉素在活细胞中的作用机制。

Single-molecule correlated chemical probing reveals large-scale structural communication in the ribosome and the mechanism of the antibiotic spectinomycin in living cells.

机构信息

Department of Chemistry, University of North Carolina Chapel Hill, Chapel Hill, North Carolina, United States of America.

出版信息

PLoS Biol. 2019 Sep 5;17(9):e3000393. doi: 10.1371/journal.pbio.3000393. eCollection 2019 Sep.

Abstract

The ribosome moves between distinct structural states and is organized into multiple functional domains. Here, we examined hundreds of occurrences of pairwise through-space communication between nucleotides in the ribosome small subunit RNA using RNA interaction groups analyzed by mutational profiling (RING-MaP) single-molecule correlated chemical probing in bacterial cells. RING-MaP revealed four structural communities in the small subunit RNA, each distinct from the organization defined by the RNA secondary structure. The head domain contains 2 structural communities: the outer-head contains the pivot for head swiveling, and an inner-head community is structurally integrated with helix 44 and spans the entire ribosome intersubunit interface. In-cell binding by the antibiotic spectinomycin (Spc) barely perturbs its local binding pocket as revealed by the per-nucleotide chemical probing signal. In contrast, Spc binding overstabilizes long-range RNA-RNA contacts that extend 95 Å across the ribosome that connect the pivot for head swiveling with the axis of intersubunit rotation. The two major motions of the small subunit-head swiveling and intersubunit rotation-are thus coordinated via long-range RNA structural communication, which is specifically modulated by Spc. Single-molecule correlated chemical probing reveals trans-domain structural communication and rationalizes the profound functional effects of binding by a low-molecular-mass antibiotic to the megadalton ribosome.

摘要

核糖体在不同的结构状态之间移动,并组织成多个功能域。在这里,我们使用通过突变分析(RING-MaP)单细胞相关化学探测在细菌细胞中分析 RNA 相互作用组,检查了核糖体小亚基 RNA 中核苷酸之间数百个成对的空间相互作用。RING-MaP 在小亚基 RNA 中揭示了四个结构社区,每个社区都与 RNA 二级结构定义的组织不同。头部结构域包含 2 个结构社区:外头部包含头部旋转的枢轴,内头部社区与螺旋 44 结构上集成并跨越整个核糖体亚基间界面。抗生素壮观霉素(Spc)在细胞内的结合几乎不会干扰其局部结合口袋,这一点通过每个核苷酸的化学探测信号揭示出来。相比之下,Spc 结合过度稳定了跨越核糖体延伸 95 Å 的长程 RNA-RNA 接触,这些接触将头部旋转的枢轴与亚基间旋转的轴连接起来。小亚基头部旋转和亚基间旋转这两个主要运动因此通过长程 RNA 结构通讯进行协调,而 Spc 特异性地调节这种通讯。单细胞相关化学探测揭示了跨结构域的结构通讯,并合理化了低分子量抗生素结合对兆道尔顿核糖体的深远功能影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebcd/6748448/cb2f147f4807/pbio.3000393.g001.jpg

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