Targeted Protein Degradation through Cytosolic Delivery of Monobody Binders Using Bacterial Toxins

Nadine Eliane Schmit1, Katyayanee Neopane1, Oliver Hantschel1

  • 1Swiss Institute for Experimental Cancer Research (ISREC), School of Life Sciences , École Polytechnique Fédérale de Lausanne (EPFL) , 1015 Lausanne , Switzerland.

ACS Chemical Biology
|April 27, 2019
PubMed

Insights

Engineered monobodies fused to VHL can degrade target proteins within cells. A novel toxin-based delivery system enables cytosolic entry, inhibiting T-cell receptor signaling without genetic modification.

Area of Science:

  • Biotechnology
  • Molecular Biology
  • Cancer Research

Background:

  • Monobodies are engineered proteins that selectively inhibit cytosolic oncoproteins.
  • Fusion to VHL enhances monobody efficacy by inducing target protein degradation.
  • Current limitations in therapeutic use stem from the inability of proteins to cross cell membranes.

Purpose of the Study:

  • To develop a novel delivery system for intracellular protein therapeutics.
  • To demonstrate the targeted delivery and degradation of monobody-VHL fusions in cancer cells.
  • To assess the therapeutic potential of this system for inhibiting signaling pathways.

Main Methods:

  • Utilized a chimeric bacterial toxin (Stx2B-ETA-II) for protein delivery.
  • Engineered VHL-monobody fusions targeting Lck tyrosine kinase.
  • Assessed cellular uptake, intracellular trafficking, and target degradation via endocytosis and Gb3 receptor expression.
  • Evaluated inhibition of T-cell receptor signaling.

Main Results:

  • Monobodies were delivered intracellularly via an endocytic route dependent on Gb3 expression.
  • Delivered monobodies accumulated in the nucleus, confirming cytosolic access.
  • VHL-monobody fusion targeting Lck reduced Lck protein levels and inhibited downstream signaling.
  • Demonstrated protein degradation without genetic manipulation of target cells.

Conclusions:

  • A novel toxin-based system effectively delivers protein therapeutics into cells for targeted degradation.
  • This approach bypasses cellular membrane barriers, enabling inhibition of intracellular targets.
  • The system holds promise for in vivo applications in cancer therapy and beyond.

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