scholarly journals Multidrug Resistance of Neisseria gonorrhoeae: Antibiotic Stewardship and Prospective Treatment Alternatives

2021 ◽  
Vol In Press (In Press) ◽  
Author(s):  
Marvellous Oluebube Asika ◽  
Emmanuel Ebuka Elebesunu ◽  
Joel Kosisochukwu Edeh

mBio ◽  
2019 ◽  
Vol 10 (6) ◽  
Author(s):  
Mohsen Chitsaz ◽  
Lauren Booth ◽  
Mitchell T. Blyth ◽  
Megan L. O’Mara ◽  
Melissa H. Brown

ABSTRACT A key mechanism that Neisseria gonorrhoeae uses to achieve multidrug resistance is the expulsion of structurally different antimicrobials by the MtrD multidrug efflux protein. MtrD resembles the homologous Escherichia coli AcrB efflux protein with several common structural features, including an open cleft containing putative access and deep binding pockets proposed to interact with substrates. A highly discriminating N. gonorrhoeae strain, with the MtrD and NorM multidrug efflux pumps inactivated, was constructed and used to confirm and extend the substrate profile of MtrD to include 14 new compounds. The structural basis of substrate interactions with MtrD was interrogated by a combination of long-timescale molecular dynamics simulations and docking studies together with site-directed mutagenesis of selected residues. Of the MtrD mutants generated, only one (S611A) retained a wild-type (WT) resistance profile, while others (F136A, F176A, I605A, F610A, F612C, and F623C) showed reduced resistance to different antimicrobial compounds. Docking studies of eight MtrD substrates confirmed that many of the mutated residues play important nonspecific roles in binding to these substrates. Long-timescale molecular dynamics simulations of MtrD with its substrate progesterone showed the spontaneous binding of the substrate to the access pocket of the binding cleft and its subsequent penetration into the deep binding pocket, allowing the permeation pathway for a substrate through this important resistance mechanism to be identified. These findings provide a detailed picture of the interaction of MtrD with substrates that can be used as a basis for rational antibiotic and inhibitor design. IMPORTANCE With over 78 million new infections globally each year, gonorrhea remains a frustratingly common infection. Continuous development and spread of antimicrobial-resistant strains of Neisseria gonorrhoeae, the causative agent of gonorrhea, have posed a serious threat to public health. One of the mechanisms in N. gonorrhoeae involved in resistance to multiple drugs is performed by the MtrD multidrug resistance efflux pump. This study demonstrated that the MtrD pump has a broader substrate specificity than previously proposed and identified a cluster of residues important for drug binding and translocation. Additionally, a permeation pathway for the MtrD substrate progesterone actively moving through the protein was determined, revealing key interactions within the putative MtrD drug binding pockets. Identification of functionally important residues and substrate-protein interactions of the MtrD protein is crucial to develop future strategies for the treatment of multidrug-resistant gonorrhea.


2015 ◽  
Vol 42 (6) ◽  
pp. 337-341 ◽  
Author(s):  
Masatoshi Tanaka ◽  
Ryusaburo Furuya ◽  
Shinichiro Irie ◽  
Akiko Kanayama ◽  
Intetsu Kobayashi

2020 ◽  
Vol 9 (19) ◽  
Author(s):  
Thitima Cherdtrakulkiat ◽  
Thidathip Wongsurawat ◽  
Piroon Jenjaroenpun ◽  
Sawannee Sutheeworapong ◽  
Wanna Leelawiwat ◽  
...  

Multilocus sequence typing (MLST) sequence type 1903 (ST1903) is the most common ST of ceftriaxone-resistant Neisseria gonorrhoeae. Here, we report three completed genome sequences of MLST ST1903 N. gonorrhoeae isolates collected from patients at Faculty of Medicine Siriraj Hospital, a university hospital in Bangkok, Thailand, in 2009 to 2011.


2013 ◽  
Vol 51 (12) ◽  
pp. 4246-4248 ◽  
Author(s):  
T. Suzuki ◽  
Y. Kitagawa ◽  
Y. Maruyama ◽  
S. Yamaguchi ◽  
Y. Sakane ◽  
...  

2010 ◽  
Vol 34 (8) ◽  
pp. S47-S47
Author(s):  
Guopei Zheng ◽  
Sisi Yi ◽  
Yafei Li ◽  
Fangren Kong ◽  
Yanhui Yu ◽  
...  

2001 ◽  
Vol 120 (5) ◽  
pp. A93-A93
Author(s):  
D ROST ◽  
J KONIG ◽  
G WEISS ◽  
E KLAR ◽  
W STREMMEL ◽  
...  

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