Authors
Rifat, D., Ioerger, T. R., Nuermberger, E. L.
Abstract
The pathogenicity of Mycobacterium tuberculosis relies on its ability to withstand hostile host environments. Coenzyme F420 is critical for redox metabolism in Mycobacterium tuberculosis an organism distinguished by its abundant use of this low-redox-potential cofactor and a repertoire of F420-dependent enzymes. While F420-dependent mechanisms are known to confer protection against antimicrobials and oxidative stress, the specific enzymes responsible remain largely unidentified. In this study, using the F420-dependent detoxification of malachite green as a phenotypic marker, we performed a genome-wide screen in Mycobacterium tuberculosis using transposon mutagenesis and whole genome sequencing. The results of transposon mutagenesis and whole genome sequencing revealed that, among the 28 genes encoding F420-dependent enzymes, only mutations in fgd (essential for F420H2 re-generation) and Rv2061c, a gene encoding a putative F420-dependent oxidoreductase, were highly susceptible to malachite green. Subsequent experiments confirmed that Rv2061c and its homolog MT2120 are required for detoxifying malachite green and crystal violet. Furthermore, the Rv2061c mutant exhibited increased susceptibility to isoniazid and pretomanid; as well as menadione-induced oxidative stress. We also identified mutations in the transcriptional repressor Rv0678 as a key determinant of resistance to malachite green and crystal violet. This study establishes Rv2061c as a pivotal F420-dependent oxidoreductase that protects Mycobacterium tuberculosis from malachite green and other antimicrobial compounds as well as oxidative stress and further supports Rv0678 as a master regulator of multidrug resistance. These findings expand our knowledge of Mycobacterium tuberculosis defense mechanisms and highlight F420-dependent pathways as a potential target for new drug development.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 09 Oct 2026.
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