4.8 Article

Structural Switch of Lysyl-tRNA Synthetase between Translation and Transcription

期刊

MOLECULAR CELL
卷 49, 期 1, 页码 30-42

出版社

CELL PRESS
DOI: 10.1016/j.molcel.2012.10.010

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资金

  1. U.S. Department of Energy [DE-AC02-06CH11357, DE-AC02-05CH11231]
  2. NIH [GM088278, GM23562, GM78359, GM100136]
  3. NSF Division of Materials Research [DMR-06-54118]
  4. National Foundation for Cancer Research
  5. Global Frontier Project [NRF-M1AXA002-2012M3A6A4054273]
  6. WCU project of the Ministry of Education, Science, and Technology, Korea [R31-2008-000-10103-0]
  7. Israel Science Foundation
  8. United States Binational Science Foundation
  9. National Research Foundation of Singapore (HUJ-CREATE)
  10. German-Israel Foundation for Scientific Research and Development
  11. Cooperation Program in Cancer Research of the Deutsches Krebsforschungszentrum (DKFZ)
  12. Israel's Ministry of Science and Technology (MOST)
  13. state of Florida
  14. National Research Foundation of Korea [R31-2012-000-10103-0, 2010-0029785] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Lysyl-tRNA synthetase (LysRS), a component of the translation apparatus, is released from the cytoplasmic multi-tRNA synthetase complex (MSC) to activate the transcription factor MITF in stimulated mast cells through undefined mechanisms. Here we show that Ser207 phosphorylation provokes a new conformer of LysRS that inactivates its translational function but activates its transcriptional function. The crystal structure of an MSC subcomplex established that LysRS is held in the MSC by binding to the N terminus of the scaffold protein p38/AIMP2. Phosphorylation-created steric clashes at the LysRS domain interface disrupt its binding grooves for p38/AIMP2, releasing LysRS and provoking its nuclear translocation. This alteration also exposes the C-terminal domain of LysRS to bind to MITF and triggers LysRS-directed production of the second messenger ANA that activates MITF. Thus our results establish that a single conformational change triggered by phosphorylation leads to multiple effects driving an exclusive switch of LysRS function from translation to transcription.

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