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Published on: October 1, 2012
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.
Abstract:
Monobodies are small engineered binding proteins that, upon expression in cells, can inhibit signaling of cytosolic oncoproteins with outstanding selectivity. Efficacy may be further increased by inducing degradation of monobody targets through fusion to the von Hippel-Lindau (VHL) substrate receptor of the Cullin2-E3 ubiquitin ligase complex. However, potential therapeutic use is currently limited, because of the inability of monobody proteins to cross cellular membranes. Here, we use a chimeric bacterial toxin, composed of the Shiga-like toxin B (Stx2B) subunit and the translocation domain of Pseudomonas aeruginosa exotoxin A (ETA-II) for delivery of VHL-monobody protein fusions to target endogenous tyrosine kinases in cancer cells. Depending on the expression of the Stx2B receptor Gb3 on the cell surface, we show that monobodies are taken up by an endocytic route, but are not degraded in lysosomes. Delivery of monobodies fused to a nuclear localization signal resulted in accumulation in the nucleus, thereby indirectly, but unequivocally, demonstrating cytosolic delivery. Delivery of VHL fused to monobodies targeting the Lck tyrosine kinase in T-cells resulted in reduced Lck protein levels, which was dependent on the expression of Gb3. This led to the inhibition of proximal signaling events downstream of the T-cell receptor complex. This work provides a prime example of the delivery of a stoichiometric protein inhibitor of an endogenous target protein to cells and inducing its degradation without the need of genetic manipulation of target cells. It lays the foundation for further in vivo exploitation of this delivery system.
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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