Aug 2026· Journal of immunotherapy· 0 citations· 112 references
Medicine
TL;DR
Locoregional delivery consistently outperforms systemic administration, demonstrating that physical barriers are as critical as cellular engineering in GBM, and antigen heterogeneity, metabolic limitations, and the need for combinatorial targeting remain the principal unresolved challenges.
Abstract
Glioblastoma (GBM) is the most lethal primary brain tumor, with a median survival of 15 months despite intensive treatment. Chimeric antigen receptor (CAR) T-cell therapy, while transformative in hematological malignancies, consistently fails in GBM because the immunosuppressive tumor microenvironment (TME) drives T-cell exhaustion. We examined transcriptional programs, microenvironmental factors, and metabolic competition that collectively drive exhaustion in this context. Then we reviewed 5 convergent engineering strategies: localized cytokine delivery to bypass autocrine deficits; adjunctive antibody therapies to remodel the TME; oncolytic viruses armed with chemoattractants or cytokines as immunomodulators; coexpression of cytokine or chemokine receptors to provide survival signals; and multiplexed CRISPR-Cas9 editing to disrupt exhaustion checkpoints and enable site-specific CAR integration. Locoregional delivery consistently outperforms systemic administration, demonstrating that physical barriers are as critical as cellular engineering. Despite this progress, antigen heterogeneity, metabolic limitations, and the need for combinatorial targeting remain the principal unresolved challenges. An overview of the key concepts discussed in this review is presented in the graphical abstract.
The major obstacles limiting CAR-T therapy in GBM are summarized and emerging strategies to overcome these challenges are discussed, paving the way for future CAR-T-based therapies in glioblastoma.
Lin Chen, Z. Zou· Critical reviews in oncology...· 0 citations
Glioblastoma (GBM) remains the most aggressive primary malignant brain tumor in adults and is characterized by poor prognosis, profound intratumoral heterogeneity, and a highly immunosuppressive tumor microenvironment (TME). Although chimeric antigen receptor (CAR)-T cell therapy has shown remarkable efficacy in hemato...
Aleksandra Królikowska, Katarzyna Białkowska· International Immunopharmaco...· 0 citations
The biological mechanisms underlying resistance to CAR-T therapy in solid tumors are examined and emerging combination strategies designed to enhance tumor recognition, trafficking, persistence, and antitumor activity are critically evaluated.
Wei Cheng, Mei-Lan Liu, Yu-Hua Diao et al.· Cancer Biome and Targeted Th...· 0 citations
This review synthesizes the mechanistic insights, engineering strategies, clinical evidence, and emerging platforms, including in vivo lentiviral CAR-T generation, that define the current landscape, and proposes a tiered framework for next-generation solid tumor CAR-T development, while explicitly acknowledging the lim...
Samuel Obiosa Onyekweli, Gloria Osayamen Omoruyi, C. O. Akintayo et al.· Oncoscience· 0 citations
A complementary therapeutic strategy is discussed: engineering T cells for greater durability in the TME through knockout of exhaustion-associated transcription factors, and reprogramming tumour cells with DNA methyltransferase (DNMTi) and histone deacetylase (HDACi) inhibitors to restore immunogenicity.
L. Saltis, Liew Jun Mun· Pathology, Research and Prac...· 0 citations
Next-generation engineering strategies are being designed to overcome the obstacles that constrain CAR-T-cell efficacy in solid tumors and to guide the development of safer and more effective therapeutic platforms.
Zi-Yan Kong, Jin-Ke Wang· Frontiers in Immunology· 0 citations
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