Bacterial 2′-Deoxyguanosine Riboswitch Classes as Potential Targets for Antibiotics: A Structure and Dynamics Study

被引:3
|
作者
Antunes, Deborah [1 ]
Santos, Lucianna H. S. [2 ]
Caffarena, Ernesto Raul [3 ]
Guimaraes, Ana Carolina Ramos [1 ]
机构
[1] Fundacao Oswaldo Cruz, Inst Oswaldo Cruz, Lab Genom Func & Bioinformat, BR-21040900 Rio De Janeiro, Brazil
[2] Univ Fed Minas Gerais, Inst Ciencias Biol, Dept Bioquim & Imunol, Lab Modelagem Mol & Planejamento Farmacos, BR-31270901 Belo Horizonte, MG, Brazil
[3] Fiocruz MS, Grp Biofis Computac & Modelagem Mol, Programa Computacao Cient, BR-21040360 Rio De Janeiro, Brazil
关键词
2 '-deoxyguanosine riboswitch; purine riboswitch; molecular dynamics simulation; network analysis; ligand binding mechanism; MOLECULAR-DYNAMICS; GUANINE RIBOSWITCH; SELECTIVITY; MECHANISM; SYSTEM; MODEL;
D O I
10.3390/ijms23041925
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The spread of antibiotic-resistant bacteria represents a substantial health threat. Current antibiotics act on a few metabolic pathways, facilitating resistance. Consequently, novel regulatory inhibition mechanisms are necessary. Riboswitches represent promising targets for antibacterial drugs. Purine riboswitches are interesting, since they play essential roles in the genetic regulation of bacterial metabolism. Among these, class I (2 & PRIME;-dG-I) and class II (2 & PRIME;-dG-II) are two different 2 & PRIME;-deoxyguanosine (2 & PRIME;-dG) riboswitches involved in the control of deoxyguanosine metabolism. However, high affinity for nucleosides involves local or distal modifications around the ligand-binding pocket, depending on the class. Therefore, it is crucial to understand these riboswitches' recognition mechanisms as antibiotic targets. In this work, we used a combination of computational biophysics approaches to investigate the structure, dynamics, and energy landscape of both 2 & PRIME;-dG classes bound to the nucleoside ligands, 2 & PRIME;-deoxyguanosine, and riboguanosine. Our results suggest that the stability and increased interactions in the three-way junction of 2 & PRIME;-dG riboswitches were associated with a higher nucleoside ligand affinity. Also, structural changes in the 2 & PRIME;-dG-II aptamers enable enhanced intramolecular communication. Overall, the 2 & PRIME;-dG-II riboswitch might be a promising drug design target due to its ability to recognize both cognate and noncognate ligands.
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页数:18
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