DR5 disulfide bonding as a sensor and effector of protein folding stress

Insights

Disulfide bond disrupting agents (DDAs) activate the cancer-targeting DR5 receptor by altering its disulfide bonds, triggering apoptosis. This mechanism bypasses limitations of protein drugs and offers a new strategy for cancer therapy.

Area of Science:

  • Molecular biology
  • Cancer biology
  • Drug discovery

Background:

  • Targeting cancer cells selectively is crucial for effective therapy.
  • TRAIL receptor agonists show promise but face limitations.
  • Small molecules offer an alternative to protein-based drugs for receptor activation.

Conclusions:

  • DDAs can activate DR5-mediated apoptosis independent of extracellular ligands.
  • DR5 disulfide bonding is a critical regulator of cancer cell death.
  • Targeting DR5 disulfide bonds represents a novel therapeutic strategy for cancer.

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