Substrate DNA Promoting Binding of Mycobacterium tuberculosis MtrA by Facilitating Dimerization and Interpretation of Affinity by Minor Groove Width

Author:

Memon Aadil Ahmed1ORCID,Fu Xiang1,Fan Xiao-Yong2ORCID,Xu Lingyun3,Xiao Jihua3,Rahman Mueed Ur1,Yang Xiaoqi3,Yao Yu-Feng4,Deng Zixin1,Ma Wei1

Affiliation:

1. State Key Laboratory of Microbial Metabolism, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China

2. Shanghai Institute of Infectious Diseases and Biosecurity, Shanghai Public Health Clinical Center, Fudan University, Shanghai 200032, China

3. Shanghai Huaxin Biotechnology Co., Ltd., Room 604, Building 1, Tongji Chuangyuan, No. 99 South Changjiang Road, Baoshan District, Shanghai 200441, China

4. Laboratory of Bacterial Pathogenesis, Institutes of Medical Sciences, School of Medicine, Shanghai Jiao Tong University, Shanghai 200025, China

Abstract

In order to deepen the understanding of the role and regulation mechanisms of prokaryotic global transcription regulators in complex processes, including virulence, the associations between the affinity and binding sequences of Mycobacterium tuberculosis MtrA have been explored extensively. Analysis of MtrA 294 diversified 26 bp binding sequences revealed that the sequence similarity of fragments was not simply associated with affinity. The unique variation patterns of GC content and periodical and sequential fluctuation of affinity contribution curves were observed along the sequence in this study. Furthermore, docking analysis demonstrated that the structure of the dimer MtrA-DNA (high affinity) was generally consistent with other OmpR family members, while Arg 219 and Gly 220 of the wing domain interacted with the minor groove. The results of the binding box replacement experiment proved that box 2 was essential for binding, which implied the differential roles of the two boxes in the binding process. Furthermore, the results of the substitution of the nucleotide at the 20th and/or 21st positions indicated that the affinity was negatively associated with the value of minor groove width precisely at the 21st position. The dimerization of the unphosphorylated MtrA facilitated by a low-affinity DNA fragment was observed for the first time. However, the proportion of the dimer was associated with the affinity of substrate DNA, which further suggested that the affinity was actually one characteristic of the stability of dimers. Based on the finding of 17 inter-molecule hydrogen bonds identified in the interface of the MtrA dimer, including 8 symmetric complementary ones in the conserved α4-β5-α5 face, we propose that hydrogen bonds should be considered just as important as salt bridges and the hydrophobic patch in the dimerization. Our comprehensive study on a large number of binding fragments with quantitative affinity values provided new insight into the molecular mechanism of dimerization, binding specificity and affinity determination of MtrA and clues for solving the puzzle of how global transcription factors regulate a large quantity of target genes.

Funder

National Key R&D Program of China

the State Key Laboratory of Microbial Metabolism

the Shanghai Science and Technology Development Foundation

Publisher

MDPI AG

Subject

Virology,Microbiology (medical),Microbiology

Reference61 articles.

1. World Health Organization (2023, May 23). World Health Organization Global Tuberculosis Report 2022. Available online: https://www.who.int/publications/i/item/9789240061729.

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3. Centers for Disease Control and Prevention (2007). Extensively drug-resistant tuberculosis—United States, 1993–2006. MMWR Morb. Mortal Wkly. Rep., 56, 250–253.

4. A Perspective on the Success and Failure of BCG;Kumar;Front. Immunol.,2021

5. Bacterial pathogen gene regulation: A DNA-structure-centred view of a protein-dominated domain;Dorman;Clin. Sci.,2016

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