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Updated: Jun 6, 2025

Reconstitution Of β-catenin Degradation In Xenopus Egg Extract
Published on: June 17, 2014
Programmable protein degraders enable selective knockdown of pathogenic β-catenin subpopulations in vitro and in vivo
Tianzheng Ye1, Azmain Alamgir1, Cara M Robertus2
1Robert F. Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, NY 14853 USA.
Abstract:
Aberrant activation of Wnt signaling results in unregulated accumulation of cytosolic β-catenin, which subsequently enters the nucleus and promotes transcription of genes that contribute to cellular proliferation and malignancy. Here, we sought to eliminate pathogenic β-catenin from the cytosol using designer ubiquibodies (uAbs), chimeric proteins composed of an E3 ubiquitin ligase and a target-binding domain that redirect intracellular proteins to the proteasome for degradation. To accelerate uAb development, we leveraged a protein language model (pLM)-driven algorithm called SaLT&PepPr to computationally design "guide" peptides with affinity for β-catenin, which were subsequently fused to the catalytic domain of a human E3 called C-terminus of Hsp70-interacting protein (CHIP). Expression of the resulting peptide-guided uAbs in colorectal cancer cells led to the identification of several designs that significantly reduced the abnormally stable pool of free β-catenin in the cytosol and nucleus while preserving the normal membrane-associated subpopulation. This selective knockdown of pathogenic β-catenin suppressed Wnt/β-catenin signaling and impaired tumor cell survival and proliferation. Furthermore, one of the best degraders selectively decreased cytosolic but not membrane-associated β-catenin levels in livers of BALB/c mice following delivery as a lipid nanoparticle (LNP)-encapsulated mRNA. Collectively, these findings reveal the unique ability of uAbs to selectively eradicate abnormal proteins in vitro and in vivo and open the door to peptide-programmable biologic modulators of other disease-causing proteins.
Insights
Designer ubiquibodies (uAbs) selectively degrade harmful β-catenin in cancer cells and mouse livers. This targeted protein degradation suppresses Wnt signaling, inhibiting tumor growth and offering a new therapeutic strategy.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Aberrant Wnt signaling drives cancer by increasing cytosolic β-catenin.
- Accumulated β-catenin promotes gene transcription, leading to cellular proliferation and malignancy.
Purpose of the Study:
- To develop designer ubiquibodies (uAbs) for selective degradation of pathogenic β-catenin.
- To leverage a protein language model (pLM) for efficient uAb design.
Main Methods:
- Utilized a pLM-driven algorithm (SaLT&PepPr) to design β-catenin-targeting peptides.
- Fused peptides to the C-terminus of Hsp70-interacting protein (CHIP) E3 ligase to create uAbs.
- Expressed uAbs in colorectal cancer cells and delivered via lipid nanoparticles (LNPs) in mice.
Main Results:
- Identified uAb designs that significantly reduced cytosolic and nuclear β-catenin while sparing membrane-associated β-catenin.
- Demonstrated suppression of Wnt/β-catenin signaling, impairing tumor cell survival and proliferation.
- Showcased selective reduction of cytosolic β-catenin in mouse liver following LNP-mRNA delivery.
Conclusions:
- uAbs can selectively eliminate abnormal proteins both in vitro and in vivo.
- Peptide-guided uAbs represent a novel approach for targeting disease-causing proteins.
- This technology opens avenues for peptide-programmable biologic modulators.
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