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Current insights on transglutaminase 2: Exploring its functions, mechanisms, and therapeutic potential in
Katherine Lan1, Vincent April2, Fatemeh Jamali2
1Division of Clinical and Translational Research, McGill University, Montreal, QC H4A 3J1, Canada.
Abstract:
Glioblastoma (GBM) is the most aggressive and lethal primary brain tumor in adults, marked by diffuse infiltration, extensive heterogeneity, and resistance to standard therapies. Despite advances in surgery, radiation, and chemotherapy, GBM remains incurable, with a median survival of ∼15 months. Tumor recurrence, driven by therapy-resistant glioma stem cells and adaptive molecular mechanisms, presents a significant challenge to treatment. Identifying regulators of GBM progression and resistance is crucial for developing more effective interventions. Transglutaminase 2 (TGM2), a ubiquitously expressed enzyme with both Ca2+-dependent and -independent activities, has emerged as a pivotal yet underexplored context-specific contributor to various malignancies. Aberrant TGM2 expression has been linked to hallmark features of GBM, including stemness, invasion, epithelial-to-mesenchymal transition, and chemo-radioresistance. However, its multifunctionality, conformational flexibility, and widespread subcellular localization have complicated efforts to delineate precise oncogenic mechanisms. Conflicting data suggest TGM2 may promote both survival and apoptosis, underscoring the need for nuanced investigation. This review provides an overview of TGM2's structural features, biochemical functions, and regulatory mechanisms, with a focus on its role in GBM progression and resistance to chemo-radiotherapy. Emerging evidence implicates TGM2 in enhancing DNA repair, promoting cellular plasticity, and evading apoptosis, all of which contribute to tumor survival. Targeting TGM2 has shown promise in preclinical studies, especially inhibitors that exhibit the potential to cross the blood-brain barrier, addressing a major challenge in effective GBM therapy. By integrating molecular and translational insights, this review highlights TGM2 as a promising therapeutic target for overcoming resistance and advancing combined precision strategies for GBM treatment.
Insights
Transglutaminase 2 (TGM2) is a key enzyme in glioblastoma (GBM) progression and therapy resistance. Targeting TGM2 shows promise for new glioblastoma treatments, potentially overcoming drug resistance.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Glioblastoma (GBM) is a highly aggressive brain tumor with poor prognosis.
- Current treatments for GBM face challenges due to tumor recurrence, heterogeneity, and therapy resistance.
- Transglutaminase 2 (TGM2) is an enzyme implicated in various cancers, but its role in GBM requires further elucidation.
Purpose of the Study:
- To review the structural features, biochemical functions, and regulatory mechanisms of TGM2.
- To focus on TGM2's specific role in glioblastoma progression and resistance to chemo-radiotherapy.
- To highlight TGM2 as a potential therapeutic target for GBM.
Main Methods:
- Literature review integrating molecular and translational insights.
- Analysis of TGM2's involvement in GBM hallmarks like stemness, invasion, and epithelial-to-mesenchymal transition.
- Examination of TGM2's contribution to chemo-radiotherapy resistance mechanisms.
Main Results:
- TGM2 expression is linked to GBM stemness, invasion, and treatment resistance.
- TGM2 appears to enhance DNA repair, cellular plasticity, and apoptosis evasion in GBM cells.
- Preclinical studies show TGM2 inhibitors can overcome GBM resistance, with some crossing the blood-brain barrier.
Conclusions:
- TGM2 plays a multifaceted role in promoting glioblastoma progression and therapeutic resistance.
- Targeting TGM2 offers a promising strategy for developing novel GBM therapies.
- Further research into TGM2 inhibitors could lead to improved treatment outcomes for glioblastoma patients.
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