Deciphering the molecular and functional basis of TMexCD1: the plasmid-encoded efflux pump of resistance-nodulation-division superfamily

Author:

Shang Yan12,Zhang Ye1,Wang Ruimin1,Peng Yishu1,Ding Bo34,Liu Yuanxiang1,Li Chongzhou1,Feng Luhua1,Liu Honglei1,Yang Chunyu1ORCID,Tang Yajie1ORCID

Affiliation:

1. State Key Laboratory of Microbial Technology, Institute of Microbial Technology, Shandong University, Qingdao, China

2. Poultry Institute, Shandong Academy of Agricultural Sciences, Jinan, China

3. Shandong Institute for Food and Drug Control, Jinan, China

4. School of Pharmaceutical Sciences, Shandong University, Jinan, China

Abstract

ABSTRACT Horizontal gene transfer has been demonstrated to be an important driver for the emergency of multidrug-resistant pathogens. Recently, a transferable gene cluster tmexCD1-toprJ1 of the resistance-nodulation-division (RND) superfamily was identified in the plasmids of animal-derived Klebsiella pneumoniae strains, with a higher efflux capacity for various drugs than the Escherichia coli AcrAB-TolC homolog system. In this study, we focused on the differences in the inner membrane pump of these two systems and identified some key residues that contribute to the robust efflux activity of the TMexCD1 system. With the aid of homologous modeling and molecular docking, eight residues from the proximal binding pocket (PBP) and nine from the distal binding pocket (DBP) were selected and subjected to site-directed mutagenesis. Several of them, such as S134, I139, D181, and A290, were shown to be important for substrate binding in the DBP region, and all residues in PBP and DBP showed certain substrate preferences. Apart from the conservative switch loop (L613–623 TMexD1 ) previously identified in the E. coli AcrB (EcAcrB), a relatively unconservative loop (L665–675 TMexD1 ) at the bottom of PBP was proposed as a critical element for the robust activity of TMexD1, due to variations at sites E669, G670, N673, and S674 compared to EcAcrAB, and the significantly altered efflux activity due to their mutations. The conservation and flexibility of these key factors can contribute to the evolution of the RND efflux pumps and thus serve as potential targets for developing inhibitors to block the widespread of the TMexCD1 system.

Funder

National Key Research and Development Program of China

MOST | National Natural Science Foundation of China

Publisher

American Society for Microbiology

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