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Published on: July 9, 2013
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.
Abstract:
New agents are needed that selectively kill cancer cells without harming normal tissues. The TRAIL ligand and its receptors, DR5 and DR4, exhibit cancer-selective toxicity. TRAIL analogs or agonistic antibodies targeting these receptors are available but have not yet received FDA approval for cancer therapy. Small molecules for activating DR5 or DR4 independently of protein ligands may activate TRAIL receptors as a monotherapy or potentiate the efficacy of TRAIL analogs and agonistic antibodies. Previously described disulfide bond-disrupting agents activate DR5 by altering its disulfide bonding through inhibition of protein disulfide isomerases ERp44, AGR2, and PDIA1. Work presented in this article extends these findings by showing that disruption of single DR5 disulfide bonds causes high-level DR5 expression, disulfide-mediated clustering, and activation of caspase 8/caspase 3-mediated proapoptotic signaling. Recognition of the extracellular domain of DR5 by various antibodies is strongly influenced by the pattern of DR5 disulfide bonding, which has important implications for the use of agonistic DR5 antibodies for cancer therapy and as research tools. Importantly, other endoplasmic reticulum (ER) stressors, including thapsigargin and tunicamycin, also alter DR5 disulfide bonding in various cancer cell lines, and in some instances, DR5 mis-disulfide bonding is potentiated by overriding the integrated stress response (ISR) with inhibitors of the PERK kinase or the ISR inhibitor ISRIB. These observations indicate that the pattern of DR5 disulfide bonding functions as a sensor of ER stress and serves as an effector of proteotoxic stress by driving extrinsic apoptosis independently of extracellular ligands.
Implications:
Extreme ER stress triggers triage of transmembrane receptor production, whereby mitogenic receptors are downregulated and death receptors are simultaneously elevated.
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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