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.

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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