科院考研推荐链接:
核酸与蛋白质相互作用
1965-1969和1978-1981两次中国科学院上海生物化学研究所研究生毕业
1986年任生化所副研究员
1993年任生化所研究员,博士生导师
1984-1987年在美国加州大学戴维斯分校医学院访问
1992年10-12月, 1994年10-12月,1998年1-4月在法国斯特拉丝堡法国国家科学研究中心分子与细胞研究所合作研究
1996年9月-1997年2月在香港科学技术大学生物化学系进行研究工作
2000年6-8月,2003年9-10月2006年7-9在加拿大Laval大学生物化学系进行合作研究
2005年当选中国科学院院士,2006年当选为第三世界科学院院士。
1. Tyynismaa H Editing activity for eliminating mischarged tRNAs is essential in mammalian mitochondria, Taru Hilander, Xiao-Long Zhou, Svetlana Konovalova, Fu-Ping Zhang, Liliya Euro, Dmitri Chilov, Matti Poutanen , Joseph Chihade, En-Duo Wang*, Nucleic Acids Res., 2018, 46(2), 849-860.
2. A natural non-Watson-Crick base pair in human mitochondrial tRNAThr causes structural and functional susceptibility to local mutations, Yong Wang, Qi-Yu Zeng, Wen-Qiang Zheng, Quan-Quan Ji, Xiao-Long Zhou*, En-Duo Wang*, Nucleic Acids Res., 2018, 46(9), 4662-4676.
3. A threonyl-tRNA synthetase-like protein has tRNA aminoacylation and editing activities, Yun Chen, Zhi-Rong Ruan, Yong Wang, Qian Huang, Mei-Qin Xue, Xiao-Long Zhou , En-Duo Wang*, Nucleic Acids Res., 2018, 46,(7), 3643–3656.
4. Acetylation of lysine ε-amino groups regulates aminoacyl-tRNA synthetase activity in Escherichia coli, Qing Ye, Quan-Quan Ji, Wei Yan, Fang Yang, En-Duo Wang*, J. Biol. Chem., 2017, 292 (25),10709-10722.
5. Structural basis for substrate binding and catalytic mechanism of a human RNA: m5C methyltransferase NSun6, Ru-Juan Liu, Tao Long, Jing Li, Hao Li, En-Duo Wang*, Nucleic Acids Res., 2017,45(11), 6684–6697.
6. Self-protective responses to norvaline-induced stress in a leucyl-tRNA synthetase editing-deficient yeast strain, Quan-Quan Ji, Zhi-Peng Fang, Qing Ye, Cheng-Wu Chi, En-Duo Wang*, Nucleic Acids Res., 2017,45(12), 7367-7381.
7. Translational quality control by bacterial threonyl-tRNA synthetases, Xiao-Long Zhou, Yong Wang, Ru-Juan Liu, Mei-Qin Xue, En-Duo Wang*, J. Biol. Chem., 2016, 291(40), 21208-21221.
8. A human disease-causing point mutation in mitochondrial threonyl-tRNA synthetase induces both structural andfunctional defects, Yong Wang, Xiao-Long Zhou, Zhi-Rong Ruan, Ru-Juan Liu, Gilbert Eriani, En-Duo Wang*, J. Biol. Chem., 2016, 291(12), 6507-6520.
9. C-terminal domain of leucyl-tRNA synthetase from pathogenic Candida albicans recognizes both tRNASer and tRNALeu, Quan-Quan Ji, Zhi-Peng Fang, Qing Ye, Zhi-Rong Ruan, Xiao-Long Zhou, En-Duo Wang*, J. Biol. Chem., 2016, 291 (7) , 3613-3625.
10. A Newly Identified Missense Mutation in FARS2 Causes Autosomal-Recessive Spastic Paraplegia, Ying Yang, Wei Liu, Zhi-Peng Fang, Juan Shi,, Feng-Yu Che,, Chun-Xia He,, Li-Bo Yao, En-Duo Wang*, Yuan-Ming Wu*, Human Mutation, 2016, 37 (2),165-169.
11. Identification of lethal mutations in yeast threonyl-tRNA synthetase which reveals critical residues in its human homolog, Zhi-Rong Ruan, Zhi-Peng Fang, Qing Ye, Hui-Yan Lei, Gilbert Eriani, Xiao-Long Zhou, En-Duo Wang*, J. Biol. Chem., 2015, 290(3), 1664-78.
12. Modulation of aminoacylation and editing properties of leucyl-tRNA synthetase by a conserved structural module, Wei Yan, Qing Ye, Min Tan, Xin Chen, Gilbert Eriani , En-Duo Wang*, J. Biol. Chem., 2015,290(19), 12256-67.
13. Identification of determinants for tRNA substrate recognition by Escherichia coli C/U34 2'-O-methyltransferase, Mi Zhou, Tao Long , Zhi-Peng Fang, Xiao-Long Zhou, Ru-Juan Liu , En-Duo Wang*, RNA Biol., 2015,12(8), 900-11.
14. tRNA recognition by a bacterial tRNA Xm32 modification enzyme from the SPOUT methyltransferase superfamily, Ru-Juan Liu, Tao Long, Mi Zhou, Xiao-Long Zhou, En-Duo Wang*, Nucleic Acids Res.,2015, 43(15), 7489-503.
15. Degenerate CP1 domain From Human Mitochondrial Leucyl-tRNA Synthetase, Qing Ye, Meng Wang, Zhi-Peng Fang, Zhi-Rong Ruan, Quan-Quan Ji, Xiao-Long Zhou, En-Duo Wang*, J. Biol. Chem., 2015, 290(40),24391-402.
16. Calpain cleaves most components in the multiple aminoacyl-tRNA synthetase complex and affects their functions, Hui-Yan Lei, Xiao-Long Zhou, Zhi-Rong Ruan, Wei-Chen Sun , Gilbert Eriani,En-Duo Wang*, J. Biol. Chem., 2015, 290(43),26314-27.
17. A bridge between the aminoacylation and editing domains of leucyl-tRNA synthetase is crucial for its synthetic activity., Qian Huang, Xiao-Long Zhou, Zhi-Peng Fang, Lei HY, Qing-Hua Hu, Peng Yao, En-Duo Wang*, RNA, 2015,20, 1440-50.
18. Pachytene piRNAs instruct massive mRNA elimination during late spermiogenesis. Lan-Tao Gou, Peng Dai, Jian-Hua Yang, Yuanchao Xue, Yun-Ping Hu, Yu Zhou, Jun-Yan Kang, Xin Wang,Hairi Li, Min-Min Hua, Shuang Zhao, Si-Da Hu, Li-Gang Wu, Hui-Juan Shi, Yong Li, Xiang-Dong Fu, Liang-Hu Qu, En-Duo Wang*, Mo-Fang Liu*, Cell Res., 2015,25(2), 266.
19. Coexistence of bacterial leucyl-tRNA synthetases with archaeal tRNA binding domains that distinguish tRNALeu in the archaeal mode, Zhi-Peng Fang, Meng Wang, Zhi-Rong Ruan, Min Tan, Ru-Juan Liu, Mi Zhou, Xiao-Long Zhou, En-Duo Wang*, Nucleic Acids Res., 2014, 42(8), 5109–24.
20. The mRNA of Human Cytoplasmic Arginyl-tRNA Synthetase Recruits Prokaryotic Ribosomes Independently, Fang Yang, Quan-Quan Ji, Liang-Liang Ruan, Qing Ye, En-Duo Wang*, J. Biol. Chem., 2014,289(30), 20953-59.
21. A minimalist mitochondrial threonyl-tRNA synthetase exhibits tRNA-isoacceptor specificity during proofreading, Xiao-Long Zhou, Zhi-Rong Ruan, Meng Wang, Zhi-Peng Fang, Yong Wang, Yun Chen, Ru-Juan Liu, Gilbert Eriani, En-Duo Wang* ,Nucleic Acids Res.,2014, 42(22), 13873-86.
22. Aminoacylation and translational quality control strategy employed by leucyl-tRNA synthetase from a human pathogen with genetic code ambiguity, Xiao-Long Zhou, Zhi-Peng Fang, Zhi-Rong Ruan, Meng Wang, Ru-Juan Liu, Min Tan, Anella FM, En-Duo Wang*, Nucleic Acids Res., 2014,41(21) 9825-38.
23. Discovery of a potent benzoxaborole-based anti-pneumococcal agent targeting leucyl-tRNA synthetase. Qing-Hua Hu, Ru-Juan Liu, Zhi-Peng Fang, Jiong Zhang , Ying-Ying Ding , Min Tan, Meng Wang, Wei Pan , Hu-Chen Zhou , En-Duo Wang*, Scientific Report,2013, 3,2475.
24. Translational fidelity maintenance preventing Ser mis-incorporation at Thr codon in protein from eukaryote, Xiao-Long Zhou, Zhi-Rong Ruan, Qian Huang, Min Tan, En-Duo Wang* , Nucleic Acids Res., 2013, 41(1), 302-14.
25. Crucial role of the C-terminal domain of Mycobacterium tuberculosis leucyl-tRNA synthetase in aminoacylation and editing, Qing-Hua Hu, Qian Huang, En-Duo Wang* , Nucleic Acids Res., 2013,41(3), 1859-72.
26. Leucine-Specific Domain (LSD) Modulates the Aminoacylation and Proofreading Functional Cycle of Bacterial Leucyl-tRNA Synthetase, Wei Yan, Min Tan, Gilbert Eriani, En-Duo Wang*, Nucleic Acids Res., 2013,41(9), 4988–98.
27. The Yin and Yang of tRNA: proper binding of acceptor end determines the catalytic balance of editing and aminoacylation, Min Tan, Meng Wang, Xiao-Long Zhou, Wei Yan, Gilbert Eriani, En-Duo Wang* , Nucleic Acids Res.,2013,41(10), 5513–23.
28. The tRNA recognition mechanism of the minimalist SPOUT methyltransferase,TrmL. Ru-Juan Liu, Mi Zhou, Zhi-Peng Fang, Meng Wang, Xiao-Long Zhou, En-Duo Wang*, Nucleic Acids Res., 2013,41(16),7828-42.
29. Inter-domain communication modulates the tRNA-dependent pre-transfer editing of leucyl-tRNA synthetase, Min Tan,Bin Zhu, Ru-Juan Liu, Xin Chen, Xiao-Long Zhou, En-Duo Wang*, Biochem. J., 2013, 449,123-31.
30. Human cytoplasmic ProX edits mischarged tRNAPro with amino acid but not tRNA specificity. Liang-Liang Ruan, Xiao-Long Zhou, Min Tan, En-Duo Wang*, Biochem. J., 2013,450, 243-52.
31. Multilevel functional and structural defects induced by two pathogenic mitochondrial tRNA mutations, Meng Wang, Xiao-Long Zhou, Ru-Juan Liu,Zhi-Peng Fang, Mi Zhou, Gilbert Eriani, En-Duo Wang* , Biochem. J., 2013, 453(3), 455-65.
32. piRNA-Triggered MIWI Ubiquitination and Removal by APC/C in Late Spermatogenesis, Shuang Zhao, Lan-Tao Gou, Man Zhang, Li-Dong Zu, Min-Min Hua,Ye Hua,Hui-Juan Shi,Yong Li,Jinsong Li,Dangsheng Li, En-Duo Wang*, Mo-Fang Liu* , Dev. Cell, 2013, 24(1),13-25.
33. In vivo identification of essential nucleotides in tRNALeu to its functions by using a constructed yeast tRNALeu knockout strain, Qian Huang, Peng Yao, Gilbert Eriani, En-Duo Wang*, Nucleic Acids Res., 2012, 40, 10463-77.
34. A naturally occurring nonapeptide functionally compensates the CP1 domain of leucyl-tRNA synthetase to modulate aminoacylation activity, Min Tan, Wei Yan, Ru-Juan Liu, Meng Wang, Xin Chen, Xiao-Long Zhou and En-Duo Wang*, Biochem. J. 2011, 443,477-84.
35. Modular pathways for editing non-cognate amino acids by human cytoplasmic leucyl-tRNA synthetase, Xin Chen, Jing-Jing Ma, Min Tan, Peng Yao, Qing-Hua Hu, Gilbert Eriani, En-Duo Wang*, Nucleic Acids Res., 2011,39(1), 235–47.
36. Role of tRNA amino acid-accepting end in aminoacylation and its quality control, Xiao-Long Zhou, Dao-Hai Du, Min Tan, Hui-Yan Lei, Liang-Liang Ruan, Gilbert Eriani, En-Duo Wang, Nucleic Acids Res., 2011, 39, 8857-68.
37. Peripheral insertion modulates editing activity of the isolated CP1 domain of leucyl-tRNA synthetase, Ru-Juan Liu, Min Tan, Dao-Hai Du, Gilbert Eriani, En-Duo Wang*, Biochem. J., 2011, 440(2), 217-27.
38. Functional characterization of leucine-specific domain 1 from eukaryal and archaeal leucyl-tRNA synthetases, Xiao-Long Zhou, Meng Wang, Min Tan, Qian Huang, Gilbert Eriani, and En-Duo Wang, Biochem. J. , 2010, 429, 505-13 .
39. Post-transfer editing by a eukaryotic leucyl-tRNA synthetase resistant to the broad-spectrum drug AN2690. Xiao-Long Zhou, Min Tan, Meng Wang, Xin Chen, and En-Duo Wang*, Biochem. J. , 2010, 430(2), 325-33.
40. tRNA-dependent pre-transfer editing by prokaryotic leucyl-tRNA synthetase, Min Tan, Bin Zhu, Xiao-Long Zhou, Ran He, Xin Chen, Gilbert Eriani and En-Duo Wang, J. Biol. Chem. , 2010, 285(5), 3235-44.
41. Functional characterization of leucine-specific domain 1 from eukaryal and archaeal leucyl-tRNA synthetases, Xiao-Long Zhou, Meng Wang, Min Tan, Qian Huang, Gilbert Eriani, and En-Duo Wang*, Biochem. J. , 2010, 429, 505-13.
42. MicroRNA-155 functions as an oncomiR in breast cancer by targeting the suppressor of cytokine signaling-1 gene. Shuai Jiang, Hong-Wei Zhang, Ming-Hua Lu, Xiao-Hong He, Yong Li, Hua Gu, Mo-Fang Liu, En-Duo Wang*, Cancer Res., 2010, 70(8), 3119-27.
43. tRNA-independent pre-transfer editing by class I leucyl-tRNA synthetase, Bin Zhu, Peng Yao, Min Tan, Gilbert Eriani, En-Duo Wang*, J. Biol. Chem. , 2009, 284,3418-24.
44. Two Non-redundant fragments in the N-terminal peptide of human cytosolic methionyl-tRNA synthetase were indispensable for the multi-synthetase complex incorporation and enzyme activity,Ran He, Li-Dong Zu, Peng Yao, Xin Chen , En-Duo Wang*, BBA-Protein and Proteomics, 2009, 1794, 347–54.
45. Leucyl-tRNA synthetase from the early diverging eukaryote Giardia lamblia, Xiao-Long Zhou, Peng Yao, Liang-Liang Ruan, Bin Zhu, Jun Luo, Liang-Hu Qu , En-Duo Wang*, Biochemistry (US), 2009, 48, 1340–47.
46. Two tyrosine residues outside the editing active site in Giardia lamblia leucyl-tRNA synthetase are essential for the post-transfer editing, Xiao-Long Zhou, En-Duo Wang*, Biochem. Biophys. Res. Commun, 2009, 386, 510-15.
47. The CP2 domain of leucyl-tRNA synthetase is crucial for amino acid activation and post-transfer editing, Xiao-Long Zhou, Bin Zhu, En-Duo Wang*, J. Biol. Chem., 2008, 283, 36608-16.
48. Unique residues crucial for optimal editing in yeast cytoplasmic Leucyl-tRNA synthetase are revealed by using a novel knockout yeast strain,Peng Yao, Xiao-Long Zhou, Ran He, Mei-Qin Xue, Yong-Gang Zheng, Yue-Fei Wang, En-Duo Wang*, J. Biol. Chem., 2008,283, 22591-600.
49. Recognition of tRNALeu by Aquifex aeolicus leucyl-tRNA synthetase during the aminoacylation and editing steps, Peng Yao, Bin Zhu, Sophie Jaeger, Gilbert Eriani , En-Duo Wang*, Nucleic Acids Res., 2008, 36(8), 2728-38.
50. A present-day aminoacyl-tRNA synthetase with ancestral editing properties, Bin Zhu, Ming-Wei Zhao, Gilbert Eriani and En-Duo Wang,RNA, 2007, 13,15-20.
51. The split leucine-specific domain of leucyl-tRNA synthetase from Aquifex aeolicus,Jing-Jing Ma, Ming-Wei Zhao, En-Duo Wang*, Biochemistry (US), 2006, 45, 14809-16.
52. Two forms of human cytoplasmic arginyl-tRNA synthetase produced from two translation initiations by a single mRNA, Yong-Gang Zheng, Hui Wei, Chen Ling, Min-Gang Xu, En-Duo Wang*, Biochemistry (US), 2006, 45, 1338-44.
53. Leucyl-tRNA synthetase editing site of the ancestral bacteria Aquifex aeolicus contains relics of synthetase evolution, Ming-Wei Zhao, Bin Zhu, Rui Hao, Min-Gang Xu, Gilbert Eriani, En-Duo Wang, EMBO J. 2005, 24, 1430–39.
54. A T-stem slip in human mitochondrial tRNALeu(CUN) regulates its charging capacity, Rui Hao, Ming-Wei Zhao, Zhan-Xi Hao, Yong-Neng Yao, En-Duo Wang*, Nucleic Acids Res.,2005, 33(11), 3606–13.