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The majority of inducible DNA repair genes in Mycobacterium tuberculosis are induced independently of RecA
Author(s) -
Rand Lucinda,
Hinds Jason,
Springer Burkhard,
Sander Peter,
Buxton Roger S.,
Davis Elaine O.
Publication year - 2003
Publication title -
molecular microbiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.857
H-Index - 247
eISSN - 1365-2958
pISSN - 0950-382X
DOI - 10.1046/j.1365-2958.2003.03765.x
Subject(s) - repressor lexa , biology , dna repair , sos response , gene , nucleotide excision repair , genetics , dna damage , dna , mycobacterium tuberculosis , dna mismatch repair , microbiology and biotechnology , repressor , gene expression , tuberculosis , pathology , medicine
Summary In many species of bacteria most inducible DNA repair genes are regulated by LexA homologues and are dependent on RecA for induction. We have shown previously by analysing the induction of recA that two mechanisms for the induction of gene expression following DNA damage exist in Mycobacterium tuberculosis . Whereas one of these depends on RecA and LexA in the classical way, the other mechanism is independent of both of these proteins and induction occurs in the absence of RecA. Here we investigate the generality of each of these mechanisms by analysing the global response to DNA damage in both wild‐type M. tuberculosis and a recA deletion strain of M. tuberculosis using microarrays. This revealed that the majority of the genes that were induced remained inducible in the recA mutant stain. Of particular note most of the inducible genes with known or predicted functions in DNA repair did not depend on recA for induction. Amongst these are genes involved in nucleotide excision repair, base excision repair, damage reversal and recombination. Thus, it appears that this novel mechanism of gene regulation is important for DNA repair in M. tuberculosis .
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