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Immunostaining for DNA Modifications: Computational Analysis of Confocal Images
Published on: September 7, 2017
A single DNA methylation site regulates cell fate during Clostridioides difficile sporulation
Pola Kuhn1,2, John W Ribis1,2, Mi Ni3
1Department of Molecular Biology and Microbiology, Tufts University School of Medicine, Boston, Massachusetts, United States of America.
None:
DNA methylation is a widespread phenomenon in bacteria that can regulate gene expression, although the mechanisms underlying this epigenetic regulation are often poorly understood. In Clostridioides difficile, the orphan DNA methyltransferase CamA promotes sporulation, a process critical for the persistence and transmission of this nosocomial pathogen. However, the specific CamA target genes that drive this increased sporulation phenotype were unknown. Here, we show that methylation of a single CamA motif in the promoter region of spoIIE, which encodes a factor critical for activating the early-acting sporulation sigma factor, σF, is sufficient to promote spoIIE transcription, σF activation, and spore formation. Surprisingly, the CamA-dependent increase in spoIIE expression also increases the frequency with which cells prematurely activate σF prior to asymmetric division, resulting in miscompartmentalized σF activity. While this premature activation event triggers cell lysis in the well-studied spore-former Bacillus subtilis, we show that C. difficile cells retain developmental plasticity: predivisional cells that have prematurely activated σF can abort sporulation and resume vegetative growth, whereas cells that activate σF in the forespore after asymmetric division remain committed to sporulation. Thus, DNA methylation controls a critical cell fate decision in C. difficile without compromising its capacity to adapt to fluctuating environmental conditions. Finally, we show that CamA confers a significant fitness advantage during murine infection through mechanisms largely independent of its ability to promote sporulation. Since CamA is specific to C. difficile and epigenetically regulates multiple pathways critical for pathogen persistence, these analyses imply that CamA could be a promising antimicrobial target.
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