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Published on: March 10, 2021
Correlation of Conservation of Sequence and Structures of Mycobacterial Hemerythrin-like Proteins with Evolutionary
Zhongxin Ma1, Maria Luiza Caldas Nogueira1, Daniela Priscila Marchi-Salvador2
1Burnett School of Biomedical Sciences, College of Medicine, University of Central Florida, 6900 Lake Nona Blvd., Orlando, Florida 32827, United States.
Abstract:
The Rv2633c gene of Mycobacterium tuberculosis, which plays a role in infection, encodes a hemerythrin-like protein (HLP). The crystal structure of an orthologue of Rv2633c, the HLP from Mycobacterium kansasii, revealed that it possessed structural features that were distinct from other hemerythrins and HLPs. These and other orthologous proteins comprise a distinct class of non-heme di-iron HLPs that are only found in mycobacteria. This study presents an analysis and comparison of protein sequences, putative structures, and evolutionary relationship of HLPs from 20 mycobacterial species that are known to cause tuberculosis or pulmonary disorders in humans. The results of this analysis allowed correlation of the physicochemical characteristics of amino acid residues that are substituted in these highly conserved sequences with their position in structures, possible effects on function, and evolutionary relationships. The sequences of the proteins from M. tuberculosis, Mycobacterium bovis, and other members of the M. tuberculosis complex, which cause tuberculosis, have substitutions not seen in the other non-tuberculous mycobacteria. Furthermore, groups of species that are closely related, based on phylogenetic analysis, possess substitutions of otherwise conserved residues not seen in other species that are less related. This information is correlated with the occurrence and clinical presentations of these groups of mycobacterial species. The results of this study provide a framework for structure-function studies to determine how subtle differences in the primary sequences of members of this family of proteins correlate with their structures and activities and how this may influence the infectious properties of the host species.
Insights
Mycobacterium tuberculosis hemerythrin-like proteins (HLPs) form a unique class. Sequence and structure analysis reveals distinct substitutions in tuberculosis-causing species, offering insights into infectious properties.
Area of Science:
- Biochemistry
- Structural Biology
- Evolutionary Biology
Background:
- * The Rv2633c gene in *Mycobacterium tuberculosis* encodes a hemerythrin-like protein (HLP) involved in infection.
- * Structural analysis of a *Mycobacterium kansasii* HLP revealed unique features distinct from other hemerythrins.
- * These HLPs represent a distinct class of non-heme di-iron proteins exclusively found in mycobacteria.
Purpose of the Study:
- * To analyze and compare protein sequences, structures, and evolutionary relationships of HLPs from 20 mycobacterial species.
- * To correlate physicochemical characteristics of amino acid substitutions with structural positions, function, and evolution.
- * To understand how sequence variations influence the infectious properties of mycobacteria.
Main Methods:
- * Comparative analysis of HLP protein sequences from 20 mycobacterial species.
- * Prediction and comparison of putative protein structures.
- * Phylogenetic analysis to determine evolutionary relationships.
- * Correlation of sequence variations with clinical presentations of mycobacterial species.
Main Results:
- * HLPs from *M. tuberculosis* complex species exhibit unique amino acid substitutions compared to non-tuberculous mycobacteria.
- * Closely related mycobacterial species share specific substitutions in conserved residues.
- * Identified sequence variations correlate with the occurrence and clinical presentations of these species.
Conclusions:
- * The study defines a distinct class of mycobacterial HLPs with unique evolutionary trajectories.
- * Sequence differences in HLPs are linked to specific mycobacterial species and their clinical impact.
- * Findings provide a basis for structure-function studies to elucidate HLP roles in mycobacterial infections.
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