Molecular Genetics of para -Aminosalicylic Acid Resistance in Clinical Isolates and Spontaneous Mutants of Mycobacterium tuberculosis

Author:

Mathys Vanessa12,Wintjens René32,Lefevre Philippe1,Bertout Julie4,Singhal Amit1,Kiass Mehdi1,Kurepina Natalia5,Wang Xiao-Ming1,Mathema Barun5,Baulard Alain4,Kreiswirth Barry N.5,Bifani Pablo1

Affiliation:

1. Laboratory of Molecular Pathology of Tuberculosis, Pasteur Institute, Scientific Institute of Public Health, Brussels, Belgium

2. Fond National de la Recherche Scientifique (FNRS), Brussels, Belgium

3. Laboratoire de Chimie Générale, Institute of Pharmacy, Université Libre de Bruxelles, Brussels, Belgium

4. Inserm U629, Pasteur Institute, Lille, France

5. Tuberculosis Center, Public Health Research Institute, University of Medicine and Dentistry, Newark, New Jersey, 07103

Abstract

ABSTRACT The emergence of Mycobacterium tuberculosis resistant to first-line antibiotics has renewed interest in second-line antitubercular agents. Here, we aimed to extend our understanding of the mechanisms underlying para-aminosalicylic acid (PAS) resistance by analysis of six genes of the folate metabolic pathway and biosynthesis of thymine nucleotides ( thyA, dfrA, folC, folP1, folP2 , and thyX ) and three N -acetyltransferase genes [ nhoA, aac(1) , and aac(2) ] among PAS-resistant clinical isolates and spontaneous mutants. Mutations in thyA were identified in only 37% of the clinical isolates and spontaneous mutants. Overall, 24 distinct mutations were identified in the thyA gene and 3 in the dfrA coding region. Based on structural bioinformatics techniques, the altered ThyA proteins were predicted to generate an unfolded or dysfunctional polypeptide. The MIC was determined by Bactec/Alert and dilution assay. Sixty-three percent of the PAS-resistant isolates had no mutations in the nine genes considered in this study, revealing that PAS resistance in M. tuberculosis involves mechanisms or targets other than those pertaining to the biosynthesis of thymine nucleotides. The alternative mechanism(s) or pathway(s) associated with PAS resistance appears to be PAS concentration dependent, in marked contrast to thyA -mutated PAS-resistant isolates.

Publisher

American Society for Microbiology

Subject

Infectious Diseases,Pharmacology (medical),Pharmacology

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