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Solubility based mechanistic profiling of combinatorial drug therapy

Elham Gholizadeh, Ehsan Zangene, Uladzislau Vadadokhau, Danilo Ritz, Juho J. Miettinen, Rabah Soliymani, Marc Baumann, Mathias Wilhelm, Esko Kankuri, Paul A. Haynes, Caroline A. Heckman, Amir A. Saei, Mohieddin Jafari*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

Acute myeloid leukemia (AML) remains challenging to treat due to extensive genetic heterogeneity, high relapse rates, and treatment-related toxicity. Although drug combinations offer therapeutic promise, their selection is often empirical. Here, we introduce Combinatorial Proteome Integral Solubility/Stability Alteration analysis (CoPISA), a high-throughput proteomics workflow that captures protein solubility/stability alterations uniquely induced by drug combinations. We applied CoPISA to two rationally designed AML drug pairs, LY3009120-sapanisertib (LS) and ruxolitinib-ulixertinib (RU), previously identified as the most effective and least toxic combinations among many candidates and validated in AML cell lines, patient-derived samples and zebrafish xenograft models. We uncovered an emergent mechanism termed “conjunctional targeting”, in which combinatorial drug action induces combination-exclusive protein targets consistent with an AND-gate logic model. LS-specific converged on SUMOylation, chromatin condensation, and VEGF-linked adhesion, while RU-specific targets disrupted DNA-damage checkpoints, mitochondrial bioenergetics, and RNA-splicing. Post-translational modification analysis revealed combination-induced acetylation, methylation, and phosphorylation of key AML proteins, including NPM1. Network analysis demonstrated that a substantial fraction of AML-associated proteins targeted by CoPISA are unique to combinations, including DNMT3A, NPM1, and TP53. By uncovering a mechanistic layer beyond classical synergy, CoPISA provides a robust framework for the precision-guided design of combinatorial therapies in heterogeneous cancers.

Original languageEnglish
Article number2744
Pages (from-to)1-20
Number of pages20
JournalNature Communications
Volume17
Issue number1
DOIs
Publication statusPublished - 25 Mar 2026

Bibliographical note

Copyright the Author(s) 2026. Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.

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