Iterative optimization yields Mcl-1-targeting stapled peptides with selective cytotoxicity to Mcl-1-dependent cancer

Raheleh Rezaei Araghi1, Gregory H Bird2,3, Jeremy A Ryan4

  • 1Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139.

Insights

Researchers developed stapled peptides to inhibit Mcl-1, a protein promoting cancer survival. These cell-penetrating peptides selectively kill Mcl-1-dependent cancer cells, offering a promising new cancer therapy strategy.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cancer Research

Background:

  • Bcl-2 family proteins, including Mcl-1, regulate apoptosis.
  • Overexpressed antiapoptotic proteins like Mcl-1 contribute to cancer cell survival and chemotherapy resistance.
  • Targeting Mcl-1 is crucial for overcoming apoptotic blockades in cancer therapy.

Purpose of the Study:

  • To design and validate potent and selective Mcl-1 inhibitors.
  • To develop cell-penetrating stapled peptides that target and disable Mcl-1.
  • To explore a novel therapeutic strategy for Mcl-1-dependent cancers.

Main Methods:

  • Designer peptides were engineered to mimic BH3-only proteins and bind Mcl-1.
  • An all-hydrocarbon cross-link (staple) was introduced to stabilize α-helical structure and enhance specificity.
  • Crystal structures were determined to elucidate the binding mechanism.
  • Peptide sequences and staple positions were systematically optimized.

Main Results:

  • Stapled peptides were successfully transformed into cell-penetrating constructs.
  • These peptides demonstrated selective cytotoxicity towards Mcl-1-dependent cancer cells.
  • The hydrophobic staple enhanced binding affinity and specificity for Mcl-1 over related proteins.
  • Crystal structures revealed an unanticipated structural rearrangement of Mcl-1 upon binding.

Conclusions:

  • This work provides proof of concept for stapled peptides as potent, selective, and cell-permeable Mcl-1 inhibitors.
  • The developed peptides effectively target intracellular Mcl-1.
  • This design and validation workflow is applicable to other challenging biomedical targets.

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