Chlamydia Pneumoniae CdsL Regulates CdsN ATPase Activity, and Disruption with a Peptide Mimetic Prevents Bacterial

Chris B Stone1, David C Bulir, Connor A Emdin

  • 1Michael G. DeGroote Institute for Infectious Disease Research, Faculty of Health Sciences, Department of Pathology and Molecular Medicine, McMaster University, Father Sean O'Sullivan Research Centre, St. Joseph's Healthcare Hamilton, ON, Canada.

Insights

Chlamydia pneumoniae uses type III secretion (T3S) to invade cells. Researchers found that CdsL protein regulates T3S by inhibiting the CdsN ATPase, and CdsN peptide mimetics block bacterial invasion.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Structural Biology

Background:

  • Chlamydiae are obligate intracellular bacteria requiring type III secretion (T3S) for host cell invasion and intracellular replication.
  • Chlamydia pneumoniae possesses CdsL, a YscL ortholog that interacts with the T3S ATPase CdsN.

Purpose of the Study:

  • To investigate the regulatory mechanism of CdsL on CdsN enzymatic activity.
  • To identify CdsL binding domains on CdsN.
  • To explore the potential of CdsN peptide mimetics as anti-virulence agents.

Main Methods:

  • Pepscan epitope mapping to identify CdsL binding sites on CdsN.
  • Pull-down assays to confirm protein-protein interactions.
  • Orthology modeling based on EscN crystal structure to map binding domains on CdsN 3D structure.
  • Invasion assays using CdsN peptide mimetics to treat Chlamydia pneumoniae elementary bodies.

Main Results:

  • CdsL down-regulates CdsN enzymatic activity in a dose-dependent manner.
  • Two CdsL binding domains on CdsN were identified: CdsN(221-229) and CdsN(265-270).
  • These binding domains map to the catalytic domain of the CdsN ATPase.
  • Treatment with a CdsN peptide mimetic significantly inhibited C. pneumoniae invasion into HeLa cells.

Conclusions:

  • CdsL negatively regulates the Chlamydia pneumoniae T3S ATPase, CdsN.
  • CdsL-CdsN interaction sites were mapped to the ATPase catalytic domain.
  • CdsN peptide mimetics represent a novel anti-virulence strategy to block bacterial invasion by disrupting T3S regulation.

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