Clostridium perfringens phospholipase C impairs innate immune response by inducing integrated stress response and

Neha Bunkar1, Jahnavi Sharma1, Anju Chouksey1

  • 1Department of Molecular Biology, ICMR-National Institute for Research in Environmental Health, Bhopal, India.

Cellular Signalling
|September 11, 2020
PubMed

Insights

Clostridium perfringens phospholipase C (CpPLC) induces host cell survival mechanisms by altering mitochondrial function and epigenetic modifications. This bacterial enzyme triggers reactive oxygen species generation, impacting DNA methylation and gene expression for pathogen persistence.

Area of Science:

  • Microbiology and Immunology
  • Molecular Biology
  • Cellular Biology

Background:

  • Clostridium perfringens is a common bacterial pathogen causing various human diseases.
  • Clostridium perfringens phospholipase C (CpPLC) is a key virulence factor.
  • Understanding CpPLC's role in host cell survival and epigenetic changes is crucial.

Purpose of the Study:

  • To investigate the role of CpPLC in inducing survival mechanisms in human lymphocytes.
  • To explore CpPLC-mediated epigenetic modifications, particularly in mitochondria.
  • To elucidate the signaling pathways involved in CpPLC-induced cellular responses.

Main Methods:

  • Exposure of human lymphocyte cell cultures to purified CpPLC.
  • Measurement of mitochondrial reactive oxygen species (ROS) generation.
  • Analysis of MAP/ERK/RTK signaling cascade components.
  • Assessment of mitochondrial fission/fusion gene expression (Drp1, Fis1, Mff, MFN1, MFN2, OPA1).
  • Evaluation of integrated stress response (ISR) genes (OMA1, DELE1, HRI).
  • Analysis of mitochondrial DNA (mtDNA) repair, methylation, and gene expression (MT-CO1, MT-ND6, MT-ATPase 6/8).
  • Assay of mitochondrial electron transport chain complex activities.
  • Quantification of mitomiRs (miR24, miR34a, miR150, miR155) and their target gene expression (K-Ras, MYC, EGFR, NF-kβ).

Main Results:

  • CpPLC exposure significantly increased mitochondrial ROS production.
  • Alterations in MAP/ERK/RTK signaling and mitochondrial dynamics (fission/fusion genes) were observed.
  • CpPLC induced the integrated stress response (ISR), suggesting a pro-survival mechanism.
  • CpPLC impaired mtDNA repair, leading to altered mtDNA methylation and deregulation of key metabolic genes.
  • Changes in mitochondrial electron transport chain complex activities were confirmed.
  • CpPLC modulated mitomiR expression (upregulation of miR24, downregulation of miR34a, miR150, miR155) and their targets.

Conclusions:

  • CpPLC induces pro-survival mechanisms in lymphocytes via mitochondrial ROS and ISR activation.
  • CpPLC triggers mitochondrial-induced epigenetic modifications, including mtDNA methylation changes.
  • These alterations impact mitochondrial bioenergetics, gene expression, and cellular signaling pathways, facilitating pathogen survival.

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