DR5 Disulfide Bonding Functions as a Sensor and Effector of Protein Folding Stress

Mary E Law1, Zaafir M Dulloo2, Samantha R Eggleston2

  • 1Department of Pharmacology & Therapeutics, University of Florida, Gainesville, Florida.

PubMed

Insights

New research shows that disrupting disulfide bonds in the DR5 receptor triggers cancer cell death independently of external signals. This discovery offers a new therapeutic strategy for cancer treatment by targeting endoplasmic reticulum stress.

Area of Science:

  • Molecular Biology
  • Cancer Biology
  • Cellular Stress Response

Background:

  • Targeting cancer cells selectively while sparing normal tissues is a critical challenge in oncology.
  • The TRAIL ligand and its receptors (DR5, DR4) show cancer-selective toxicity, but therapies targeting them are not yet FDA-approved.
  • Small molecules activating DR5/DR4 could offer monotherapy or potentiate existing treatments.

Purpose of the Study:

  • To investigate how disrupting DR5 disulfide bonds affects its expression, clustering, and apoptotic signaling.
  • To explore the role of endoplasmic reticulum (ER) stress in modulating DR5 disulfide bonding and activation.
  • To assess the implications of DR5 disulfide bonding patterns for antibody-based therapies.

Main Methods:

  • Utilized Disulfide bond Disrupting Agents (DDAs) to inhibit Protein Disulfide Isomerases (PDIs) like ERp44, AGR2, and PDIA1.
  • Analyzed DR5 expression, disulfide bonding patterns, and clustering in cancer cell lines.
  • Investigated the impact of ER stressors (Thapsigargin, Tunicamycin) and ISR inhibitors (PERK kinase inhibitors, ISRIB) on DR5 disulfide bonding.

Main Results:

  • Disruption of single DR5 disulfide bonds led to increased DR5 expression and disulfide-mediated clustering.
  • This disruption activated Caspase 8-Caspase 3-mediated pro-apoptotic signaling.
  • ER stressors and ISR modulation altered DR5 disulfide bonding, indicating DR5's role as an ER stress sensor.

Conclusions:

  • DR5 disulfide bonding patterns are crucial for its function and can be modulated by ER stress.
  • DR5 acts as an effector of proteotoxic stress, driving extrinsic apoptosis independent of extracellular ligands.
  • Understanding DR5 disulfide bonding has significant implications for developing novel cancer therapies and research tools.

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