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Updated: Aug 14, 2026

Mapping Dysfunctional Protein-Protein Interactions in Disease
Published on: October 24, 2025
From probe to prodrug: immunoproteasome activity as a trigger for disease-selective therapeutics
Cody A Loy1,2, Yijun Gu1, Samuel C Kim3,4,5,6
1Department of Pharmaceutical Sciences, University of California, Irvine, CA, USA.
Abstract:
Developing novel strategies that can exploit a cell's endogenous machinery to selectively release toxic compounds in diseased cells, while leaving healthy cells unaffected, is a challenging task to accomplish. An established approach involves antigen recognition on tumor cells, enabling targeted delivery of prodrugs in which a cytotoxic compound is appended to an antibody by a cleavable linker. However, this strategy depends on the presence of highly expressed surface markers for which antibodies can be developed, limiting its applicability to cancers that display these markers. A new approach that could rely on disease-specific expression of an intracellular enzyme, which can be more broadly targeted, could expand the therapeutic potential of prodrugs clinically. Here, we demonstrate that the immunoproteasome, an isoform of the standard proteasome that is upregulated under conditions of inflammation, has the potential to be harnessed as a prodrug release enzyme. We conjugate the highly toxic and widely used therapeutic cargo MMAE onto an immunoproteasome-selective peptide and demonstrate its selective release in cancerous cells at low nM to pM concentrations, while healthy cells remain viable. We also establish the first translational validation that using immunoproteasome prodrugs in vivo leads to a significant reduction in tumor volume without significant toxicities in small cell lung cancer. We anticipate this approach to be broadly applicable, as the immunoproteasome is upregulated in a variety of cancers and does not require antibody recognition to be effective.
Insights
Researchers developed a novel prodrug strategy targeting the immunoproteasome, an enzyme upregulated in cancer. This approach selectively releases toxic compounds in diseased cells, showing promise for effective cancer therapy with reduced toxicity.
Area of Science:
- Biochemistry
- Oncology
- Drug Development
Background:
- Current antibody-drug conjugates for cancer therapy rely on specific surface markers, limiting their application.
- A broader therapeutic strategy could target intracellular enzymes with disease-specific expression.
Purpose of the Study:
- To investigate the immunoproteasome as a target for prodrug activation.
- To develop and validate a novel prodrug strategy for cancer treatment.
Main Methods:
- Conjugating the cytotoxic payload MMAE to an immunoproteasome-selective peptide.
- Testing selective release and efficacy in cancerous cells and in vivo models.
- Evaluating toxicity in healthy cells and animal models.
Main Results:
- Selective release of MMAE in cancerous cells at low nM to pM concentrations.
- Demonstrated significant tumor volume reduction in small cell lung cancer models in vivo.
- Observed no significant toxicities in healthy cells or animal models.
Conclusions:
- The immunoproteasome can be effectively harnessed as a prodrug release enzyme.
- This novel prodrug strategy shows broad applicability and therapeutic potential for various cancers.
- The approach bypasses the need for antibody recognition, expanding targeted cancer therapy options.
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