通过ArfA和RF2对替代翻译终结的机制见解
Chengying Ma1, Daisuke Kurita2, Ningning Li3
1Ministry of Education Key Laboratory of Protein Sciences, Beijing Advanced Innovation Center for Structural Biology, School of Life Sciences, Tsinghua University, Beijing 100084, China.
Nature
|December 2, 2016
概括
在不间断的信使RNA (mRNA) 上停滞的核糖体被ArfA-RF2系统所拯救. 这种机制使用ArfA作为止代码替代体,使释放因子2 (RF2) 能够终止翻译,从而促进核糖体循环.
科学领域:
- 分子生物学
- 结构生物学
- 微生物学
背景情况:
- 在翻译过程中,可能会发生信使RNA (mRNA) 的核糖体停滞,特别是在缺少停止编码子的异常mRNA上.
- 有效地终止和回收停滞的核糖体对于维持细胞翻译能力至关重要.
- 细菌细胞使用包括转译和ArfA-RF2在内的救援系统来处理停滞的核糖体.
研究的目的:
- 阐明ArfA-RF2救援系统在不间断的mRNA中终止翻译的结构机制.
- 了解ArfA如何在没有停止子的情况下促进释放因子2 (RF2) 的作用.
主要方法:
- 使用冷电子显微镜来确定大肠杆菌70S核糖体的结构.
- 这项研究涉及带有ArfA,释放因子2 (RF2),非停止mRNA和P位转移RNA (tRNA) 的核糖体.
主要成果:
- 结构显示ArfA的C端环占据了mRNA入口通道,而它的N端与RF2相互作用.
- 这些相互作用会在核糖体的解码中心和RF2中诱导构造变化.
- ArfA将RF2的催化GGQ动机与tRNA相邻,作为一个停止代码的替代物.
结论:
- ArfA-RF2系统提供了一种新的阻断代码替代机制来拯救核糖体.
- 这种机制使RF2能够在不间断的mRNA中终止翻译,从而促进核糖体循环.
- 这些发现为细菌翻译质量控制提供了结构性见解.
相关概念视频
Termination of Translation
28.4K
The large ribosomal subunit has several important structures essential to translation. These include the peptidyl transferase center (PTC) - which is the site where the peptide bond is formed - and a large, internal, water-filled tube through which the nascent polypeptide moves. This latter structure is called the Peptide Exit Tunnel, and it begins at the PTC and spans the body of the large ribosomal subunit. During translation, as the nascent polypeptide chain is synthesized, it passes through...
28.4K
Termination of Translation
6.9K
6.9K
Improving Translational Accuracy
15.3K
Base complementarity between the three base pairs of mRNA codon and the tRNA anticodon is not a failsafe mechanism. Inaccuracies can range from a single mismatch to no correct base pairing at all. The free energy difference between the correct and nearly correct base pairs can be as small as 3 kcal/ mol. With complementarity being the only proofreading step, the estimated error frequency would be one wrong amino acid in every 100 amino acids incorporated. However, error frequencies observed in...
15.3K
Translation in Prokaryotes
2.2K
Prokaryote translation is a complex, highly coordinated process that converts genetic information from mRNA into functional proteins. It involves three stages: initiation, elongation, and termination, each facilitated by specific molecular components.Initiation of TranslationThe process begins with the assembly of the ribosomal subunits and initiation factors on the mRNA. In bacteria, the 30S ribosomal subunit recognizes the Shine-Dalgarno sequence in the mRNA, a conserved region upstream of...
2.2K
Leaky Scanning
5.8K
During most eukaryotic translation processes, the small 40S ribosome subunit scans an mRNA from its 5' end until it encounters the first start AUG codon. The large 60S ribosomal subunit then joins the smaller one to initiate protein synthesis. The location of the translation initiation is largely determined by the nucleotides near the start codon as there may be multiple translation initiation sites present on the mRNA. Marilyn Kozak discovered that the sequence RCCAUGG (where R...
5.8K
Initiation of Translation
39.8K
Initiating translation is complex because it involves multiple molecules. Initiator tRNA, ribosomal subunits, and eukaryotic initiation factors (eIFs) are all required to assemble on the initiation codon of mRNA. This process consists of several steps that are mediated by different eIFs.
First, the initiator tRNA must be selected from the pool of elongator tRNAs by eukaryotic initiation factor 2 (eIF2). The initiator tRNA (Met-tRNAi) has conserved sequence elements including modified bases at...
First, the initiator tRNA must be selected from the pool of elongator tRNAs by eukaryotic initiation factor 2 (eIF2). The initiator tRNA (Met-tRNAi) has conserved sequence elements including modified bases at...
39.8K


