Structural analysis of the housecleaning nucleoside triphosphate pyrophosphohydrolase MazG from Mycobacterium tuberculosis. 2023

Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
State Key Laboratory of Genetic Engineering, School of Life Sciences and Huashan Hospital, MOE Engineering Research Center of Gene Technology, Shanghai Engineering Research Center of Industrial Microorganisms, Fudan University, Shanghai, China.

The housecleaning enzyme of Mycobacterium tuberculosis (Mtb), MazG, is a nucleoside triphosphate pyrophosphohydrolase (NTP-PPase) and can hydrolyze all canonical or non-canonical NTPs into NMPs and pyrophosphate. The Mycobacterium tuberculosis MazG (Mtb-MazG) contributes to antibiotic resistance in response to oxidative or nitrosative stress under dormancy, making it a promising target for treating TB in latent infection patients. However, the structural basis of Mtb-MazG is not clear. Here we describe the crystal structure of Mtb-MazG (1-185) at 2.7 Å resolution, composed of two similar folded spherical domains in tandem. Unlike other all-α NTP pyrophosphatases, Mtb-MazG has an N-terminal extra region composed of three α-helices and five β-strands. The second domain is global, with five α-helices located in the N-terminal domain. Gel-filtration assay and SAXS analysis show that Mtb-MazG forms an enzyme-active dimer in solution. In addition, the metal ion Mg2+ is bound with four negative-charged residues Glu119, Glu122, Glu138, and Asp141. Different truncations and site-directed mutagenesis revealed that the full-length dimeric form and the metal ion Mg2+ are indispensable for the catalytic activity of Mtb-MazG. Thus, our work provides new insights into understanding the molecular basis of Mtb-MazG.

UI MeSH Term Description Entries

Related Publications

Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
September 2011, The Journal of biological chemistry,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
June 2015, Journal of structural and functional genomics,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
June 2003, The Journal of biological chemistry,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
October 2002, Journal of bacteriology,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
January 1978, Methods in enzymology,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
July 1983, The Journal of biological chemistry,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
November 1995, Biochemistry,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
February 1967, The Journal of biological chemistry,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
October 1969, The Journal of biological chemistry,
Sen Wang, and Baocai Gao, and Anke Chen, and Zhifei Zhang, and Sheng Wang, and Liangdong Lv, and Guoping Zhao, and Jixi Li
January 2013, PLoS pathogens,
Copied contents to your clipboard!