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Dual-targeting pharmacological UFMylation inhibition reprograms tumor and immune microenvironments to achieve
Pengcheng Tan1, Zhimin Liu1, Xiaodan Hu1
1New Cornerstone Science Laboratory, School of Pharmaceutical Sciences, Tsinghua University, Beijing, China.
Abstract:
UFMylation, a recently identified ubiquitin-like modification, is essential for cellular stress homeostasis, particularly endoplasmic reticulum (ER) stress regulation. However, its biological and therapeutic exploration has been hindered by the absence of potent small-molecule inhibitors. Here, we report the first discovery of two compounds targeting the UFMylation E3 ligase complex core protein DDRGK1: Osimertinib, originally designed as an EGFR T790M selective inhibitor, acting through a previously unrecognized covalent mechanism, and CP-24, a novel non-covalent inhibitor. Both compounds disrupt the DDRGK1-UFL1 interaction, globally suppress UFMylation, inhibit ER-phagy, and induce ER stress. In glioblastoma (GBM), pharmacological UFMylation inhibition markedly reduces tumor cell viability and sensitizes cells to Temozolomide and radiotherapy. Both compounds also exert strong immunomodulatory activity, promoting macrophage polarization toward an anti-tumor M1 state. In vivo, Osimertinib, benefiting from superior pharmacokinetics, significantly suppresses tumor growth in immunodeficient models and achieves tumor-free outcomes in 65% of immunocompetent mice. These tumor-free mice develop durable anti-GBM immune memory, rapidly clearing tumors upon rechallenge, an outcome unattainable by previous GBM treatments. Mechanistically, Osimertinib enhances anti-tumor immunity by promoting macrophage M1 polarization, T cell expansion, and reducing PD-1 protein levels. Collectively, our study introduces Osimertinib and CP-24 as valuable chemical probes for dissecting UFMylation biology and highlights Osimertinib's potential for off-label use in EGFR-wildtype GBM. More broadly, we establish UFMylation inhibition as a dual-targeting therapeutic strategy that disrupts tumor survival pathways and reprograms the immune microenvironment, offering a promising avenue for durable GBM control.
Insights
Scientists discovered two inhibitors, Osimertinib and CP-24, targeting the UFMylation pathway crucial for cell stress. These compounds show promise in glioblastoma treatment by reducing tumor growth and enhancing anti-tumor immunity.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- UFMylation is a vital ubiquitin-like modification for cellular stress homeostasis, especially endoplasmic reticulum (ER) stress.
- Lack of potent small-molecule inhibitors has limited UFMylation's biological and therapeutic exploration.
- DDRGK1 is a core protein within the UFMylation E3 ligase complex.
Purpose of the Study:
- To discover and characterize novel small-molecule inhibitors of the UFMylation pathway.
- To investigate the therapeutic potential of UFMylation inhibition in glioblastoma (GBM).
- To explore the immunomodulatory effects of UFMylation inhibitors.
Main Methods:
- Screening for inhibitors targeting the DDRGK1 protein.
- Assessing compound effects on UFMylation, ER-phagy, and ER stress.
- Evaluating anti-cancer efficacy in GBM cell lines and in vivo models.
- Analyzing immunomodulatory effects on macrophage polarization and T cell responses.
Main Results:
- Identified Osimertinib (covalent) and CP-24 (non-covalent) as DDRGK1 inhibitors, disrupting DDRGK1-UFL1 interaction and suppressing UFMylation.
- Demonstrated that UFMylation inhibition reduces GBM cell viability, sensitizes cells to standard therapies, and induces anti-tumor immunity.
- Osimertinib achieved tumor-free outcomes in 65% of immunocompetent mice, inducing durable anti-GBM immune memory.
- Mechanistically, Osimertinib promotes macrophage M1 polarization, T cell expansion, and reduces PD-1 levels.
Conclusions:
- Osimertinib and CP-24 are valuable chemical probes for UFMylation biology research.
- UFMylation inhibition presents a dual-targeting strategy for GBM, impacting tumor survival and the immune microenvironment.
- Osimertinib shows significant potential for treating EGFR-wildtype GBM and offers a novel approach for durable cancer control through immune reprogramming.
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