Coibamide A Targets Sec61 to Prevent Biogenesis of Secretory and Membrane Proteins

Dale Tranter1, Anja O Paatero1, Shinsaku Kawaguchi2

  • 1Institute of Biotechnology, University of Helsinki, Helsinki, 00014, Finland.

Insights

Coibamide A, a marine compound, targets the Sec61 translocon to inhibit protein import and kill cancer cells. This discovery reveals a new mechanism for developing targeted cancer therapies.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Coibamide A (CbA) is a marine natural product with demonstrated antiproliferative effects on cancer cells.
  • The precise mechanism of CbA's cytotoxicity and its specific cellular target have remained elusive.
  • Understanding CbA's molecular interactions is crucial for developing novel cancer therapeutics.

Purpose of the Study:

  • To identify the direct cellular target of Coibamide A.
  • To elucidate the mechanism by which CbA exerts its cytotoxic effects.
  • To explore the potential of CbA as a pharmacophore for new cancer drugs.

Main Methods:

  • Development of a synthetic Coibamide A photoaffinity probe (photo-CbA).
  • Utilizing photo-CbA to identify direct binding partners through affinity labeling.
  • Characterization of CbA's effect on ER protein import and cytotoxicity in cancer cell lines.
  • Profiling CbA activity against cancer cells harboring specific Sec61α mutations.

Main Results:

  • Coibamide A directly targets the Sec61α subunit of the Sec61 protein translocon.
  • CbA binding inhibits ER protein import in a broad, substrate-nonselective manner, leading to cytotoxicity.
  • Analysis of resistance mutations suggests a distinct binding mode for CbA compared to other Sec61 inhibitors.
  • CbA exhibits differential potency and selectivity across various human cancer cell lines.

Conclusions:

  • Coibamide A inhibits secretory and membrane protein biogenesis by targeting the Sec61 translocon.
  • The findings provide a mechanistic basis for CbA's anticancer activity.
  • CbA represents a promising pharmacophore for the development of novel Sec61 inhibitors with improved therapeutic properties.

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