4.5 Article

Promiscuous methionyl-tRNA synthetase mediates adaptive mistranslation to protect cells against oxidative stress

期刊

JOURNAL OF CELL SCIENCE
卷 127, 期 19, 页码 4234-4245

出版社

COMPANY BIOLOGISTS LTD
DOI: 10.1242/jcs.152470

关键词

Cell protection; ERK; Methionyl-tRNA synthetase; Misacylation; Reactive oxygen species

资金

  1. Global Frontier Project from the National Research Foundation - Ministry of Science, ICT and Future Planning (MSIP) of Korea [NRF-M3A6A4-2010-0029785, NRF-2013M3A6A4045452, NRF-2013-045813]
  2. Korea Science and Engineering Foundation [NRF-2008-0060617]
  3. Gyeonggi Research Development Program
  4. National R&D Program for Cancer Control from National Cancer Center of Korea [1120170]
  5. Korea Health Promotion Institute [1120170] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

Aminoacyl-tRNA synthetases (ARSs) acylate transfer (t) RNAs with amino acids. Charging tRNAs with the right amino acids is the first step in translation; therefore, the accurate and error-free functioning of ARSs is an essential prerequisite for translational fidelity. A recent study found that methionine (Met) can be incorporated into non-Met residues of proteins through methionylation of non-cognate tRNAs under conditions of oxidative stress. However, it was not understood how this mis-methionylation is achieved. Here, we report that methionyl-tRNA synthetase (MRS) is phosphorylated at Ser209 and Ser825 by extracellular signal-related kinase (ERK1/2) under conditions of stress caused by reactive oxygen species (ROS), and that this phosphorylated MRS shows increased affinity for non-cognate tRNAs with lower affinity for tRNA(Met), leading to an increase in Met residues in cellular proteins. The expression of a mutant MRS containing the substitutions S209D and S825D, mimicking dual phosphorylation, reduced ROS levels and cell death. This controlled inaccuracy of MRS seems to serve as a defense mechanism against ROS-mediated damage at the cost of translational fidelity.

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