Document Type
Article
Publication Date
8-10-2026
Abstract
MALT1 protease is an intracellular signaling molecule that promotes tumor progression via cancer cell-intrinsic and cancer cell-extrinsic mechanisms. MALT1 has been mostly studied in lymphocytes, and little is known about its role in tumor-associated macrophages. We show that MALT1 is expressed in glioblastoma (GBM)-associated macrophages. Mechanistically, GBM tumor cells induce a MALT1-NF-κB signaling axis in macrophages, leading to enhanced macrophage migration and polarization toward an immunosuppressive ('M2-like') phenotype. Inactivation of MALT1 protease promotes transcriptional reprogramming that reduces migration and restores a macrophage anti-tumor 'M1-like' phenotype. Preclinical in vivo analysis shows that MALT1 inhibitor treatment results in immuno-reactivity of GBM-associated macrophages and reduced GBM tumor growth. The addition of MALT1 inhibitor to temozolomide reduces immunosuppression in the tumor microenvironment, indicating that pharmacological inhibition of MALT1 protease may enhance the efficacy of chemotherapeutic. Thus, our findings suggest that MALT1 protease inhibition represents a promising macrophage-targeted immunotherapeutic strategy for the treatment of GBM.
Recommended Citation
Hofstätter Azambuja, Juliana; Yerneni, Saigopalakrishna; Maurer, Lisa; Crentsil, Hannah; Debom, Gabriela; Klei, Linda; Smyers, Mei; Sneiderman, Chaim; Schwab, Kristina; Acharya, Rajesh; Nguyen, Aivi; Emery, Josie; Little, John; Meridew, Jeffrey; Wu, Yijen Lin; Ekambaram, Prasanna; Hu, Dong; Gough, Pete; Bertin, John; Melnick, Ari; Kohanbash, Gary; Bao, Riyue; Lucas, Peter; and McAllister-Lucas, Linda, "MALT1 Protease Inhibition Restrains Glioblastoma Progression by Reversing Tumor-Associated Macrophage-Dependent Immunosuppression in Mice" (2026). College of Life Sciences Faculty Papers. Paper 36.
https://jdc.jefferson.edu/jclsfp/36
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Language
English

Comments
This article is the author’s final published version in Nature Communications, Volume 17, Issue 1, 2026, Article number 9577.
The published version is available at https://doi.org/10.1038/s41467-026-76572-7. Copyright © The Author(s) 2026.