Upon environmental insults, SGs (stress granules) aid cell survival by serving as sites of translational silencing. RNA helicase DDX3 was reported to associate with SGs. However, its role in SG physiology remains undefined. We have demonstrated previously that DDX3 acts as an eIF4E (eukaryotic initiation factor 4E)-inhibitory protein to suppress translation. In the present study, we indentified the SG marker PABP1 [poly(A)-binding protein 1] as another direct interaction partner of DDX3. We established various stimuli as novel stressors that direct DDX3 with eIF4E and PABP1 into SGs, but not to processing bodies. Interestingly, down-regulation of DDX3 interfered with SG assembly, led to nuclear accumulation of PABP1 and reduced cell viability following stress. Conversely, supplementation with a shRNA (short hairpin RNA)-resistant DDX3 restored SG formation, the translocation of PABP1 into SGs and cell survival. Notably, the SG-inducing capacity of DDX3 is independent of its ATPase and helicase activities, but mapped to the eIF4E-binding region. Moreover, the eIF4E-binding-defective mutant DDX3 was impaired in its SG-inducing ability and protective effect on cell survival under adverse conditions. All together, the present study has characterized DDX3 as a pivotal SG-nucleating factor and illustrates co-ordinative roles for DDX3, eIF4E and PABP1 in integrating environmental stress with translational regulation.
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Research Article|
December 14 2011
Critical roles of RNA helicase DDX3 and its interactions with eIF4E/PABP1 in stress granule assembly and stress response Available to Purchase
Jing-Wen Shih;
Jing-Wen Shih
*Institute of Biochemistry and Molecular Biology, National Yang Ming University, Taipei 112, Taiwan
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Wei-Ting Wang;
Wei-Ting Wang
*Institute of Biochemistry and Molecular Biology, National Yang Ming University, Taipei 112, Taiwan
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Tsung-Yuan Tsai;
Tsung-Yuan Tsai
*Institute of Biochemistry and Molecular Biology, National Yang Ming University, Taipei 112, Taiwan
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Chu-Yun Kuo;
Chu-Yun Kuo
*Institute of Biochemistry and Molecular Biology, National Yang Ming University, Taipei 112, Taiwan
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Hao-Kang Li;
Hao-Kang Li
*Institute of Biochemistry and Molecular Biology, National Yang Ming University, Taipei 112, Taiwan
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Yan-Hwa Wu Lee
*Institute of Biochemistry and Molecular Biology, National Yang Ming University, Taipei 112, Taiwan
†Department of Biological Science and Technology, National Chiao Tung University, Hsinchu 300, Taiwan
1To whom correspondence should be addressed (email [email protected]).
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Publisher: Portland Press Ltd
Received:
April 26 2011
Revision Received:
August 22 2011
Accepted:
September 01 2011
Accepted Manuscript online:
September 01 2011
Online ISSN: 1470-8728
Print ISSN: 0264-6021
© The Authors Journal compilation © 2012 Biochemical Society
2012
Biochem J (2012) 441 (1): 119–129.
Article history
Received:
April 26 2011
Revision Received:
August 22 2011
Accepted:
September 01 2011
Accepted Manuscript online:
September 01 2011
Citation
Jing-Wen Shih, Wei-Ting Wang, Tsung-Yuan Tsai, Chu-Yun Kuo, Hao-Kang Li, Yan-Hwa Wu Lee; Critical roles of RNA helicase DDX3 and its interactions with eIF4E/PABP1 in stress granule assembly and stress response. Biochem J 1 January 2012; 441 (1): 119–129. doi: https://doi.org/10.1042/BJ20110739
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