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Keywords = glioma cell invasion

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22 pages, 2125 KB  
Article
1-Piperidine Propionic Acid Inhibits PAR2/SerpinB3 Signaling and Reduces Glioblastoma Tumor Aggressiveness
by Mariagrazia Ruvoletto, Santina Quarta, Elena Rampazzo, Lorena Lucatello, Roberto Luisetto, Gianmarco Villano, Veronica Di Paolo, Alessandra Biasiolo, Marco Di Pascoli, Luigi Quintieri, Francesca Capolongo, Luca Persano and Patrizia Pontisso
Int. J. Mol. Sci. 2026, 27(16), 7240; https://doi.org/10.3390/ijms27167240 - 13 Aug 2026
Viewed by 284
Abstract
Glioblastoma multiforme is the most aggressive primary brain tumor in adults, which displays extremely poor prognosis. Protease-activated receptor 2 (PAR2) and its downstream effector SerpinB3 are overexpressed in aggressive glioblastomas. In this study we evaluated the antitumor activity of 1-piperidine propionic acid (1-PPA), [...] Read more.
Glioblastoma multiforme is the most aggressive primary brain tumor in adults, which displays extremely poor prognosis. Protease-activated receptor 2 (PAR2) and its downstream effector SerpinB3 are overexpressed in aggressive glioblastomas. In this study we evaluated the antitumor activity of 1-piperidine propionic acid (1-PPA), an allosteric PAR2 inhibitor, in in vitro preclinical models of glioblastoma. PAR2 and SerpinB3 were analyzed at the transcriptional and protein level in glioblastoma cell lines and primary cultures. These were treated with 1-PPA alone or in association with temozolomide (TMZ) and the effects evaluated by Incucyte® technology. Pharmacokinetics and tissue distribution of 1-PPA were assessed in mice by LC-MS/MS. 1-PPA significantly reduced glioma cell proliferation, migration, and invasion, thus promoting apoptotic cell death, in a concentration-dependent manner. The combined treatment with TMZ led to a concentration-dependent decrease in cell proliferation (12–20%) compared to TMZ alone. Molecularly, 1-PPA downregulated PAR2 and SerpinB3 expression. Pharmacokinetic studies in healthy mice showed that 1-PPA is systemically bioavailable and distributes to several organs, including the brain. These data indicate that 1-PPA shows brain exposure and capability to affect different hallmarks of aggressiveness in glioblastoma cells, including hyperproliferation and invasion, supporting its further development as a novel therapeutic strategy in these tumors. Full article
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34 pages, 34679 KB  
Review
Construction Strategies, Microenvironmental Modelling and Precision-Therapy Applications of Glioma Organoid Models
by Songming Chen, Wei Zhang, Luohuan Dai, Yubin Kuang, Haodi Yang, Jia Gu, Kang Peng, Nian Jiang, Hongwei Liu and Xuejun Li
Cancers 2026, 18(16), 2601; https://doi.org/10.3390/cancers18162601 - 12 Aug 2026
Viewed by 250
Abstract
Gliomas, and glioblastoma in particular, remain difficult to model because molecular heterogeneity, diffuse invasion, blood–brain and blood–tumour barrier effects, immune suppression and repeated therapeutic escape converge in the same disease. Two-dimensional cultures, glioma stem cell (GSC) systems, acute tumour slices and animal models [...] Read more.
Gliomas, and glioblastoma in particular, remain difficult to model because molecular heterogeneity, diffuse invasion, blood–brain and blood–tumour barrier effects, immune suppression and repeated therapeutic escape converge in the same disease. Two-dimensional cultures, glioma stem cell (GSC) systems, acute tumour slices and animal models remain indispensable for mechanistic research, pharmacology and in vivo validation. Glioma organoids are complementary research platforms, not components of routine diagnostic or treatment procedures. This review links model construction, microenvironmental validation, treatment perturbation and evidence-graded interpretation. We compare patient-derived glioma organoids, GSC-derived organoids, brain organoid–glioma co-cultures, genetically engineered brain tumour organoids, and vascular-associated, immune-cell-containing and chip-based platforms. We distinguish phenotypic resemblance from physiological fidelity, tumour-intrinsic drug sensitivity from delivery competence, and proof-of-concept activity from demonstrated clinical utility. We also examine temozolomide resistance, radiotherapy, targeted and combination therapy, antiangiogenic treatment, tumour-treating fields, immune-cell therapy, oncolytic viruses, multi-omic quality control and prospective validation. Organoids should not substitute for animal models or clinical trials. Their most defensible role is to provide a patient-derived functional layer between mechanism, regimen ranking and molecular tumour-board interpretation, with claims limited by assay reproducibility, clinically achievable exposure and outcome linkage. Full article
(This article belongs to the Special Issue Glioma: From Pathology to Clinical Management)
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17 pages, 8785 KB  
Article
COPS7B Drives Malignant Progression of Glioblastoma Through Translational Upregulation of the Downstream Functional Effector CLU
by Jiarui Li, Meiling Zhang, Fan Xu, Xi Liu, Yunting Le, Zhaozhan Fan, Chen Chen, Liyuan Guo and Shuoshuo Wang
Int. J. Mol. Sci. 2026, 27(15), 6976; https://doi.org/10.3390/ijms27156976 - 3 Aug 2026
Viewed by 290
Abstract
Glioblastoma (GBM) is a highly aggressive primary malignant brain tumor, featuring diffuse infiltrative growth and poor clinical outcomes, which underscores the need to delineate the molecular mechanisms driving its malignant progression. COP9 signalosome subunit 7B (COPS7B), a core component of the conserved COP9 [...] Read more.
Glioblastoma (GBM) is a highly aggressive primary malignant brain tumor, featuring diffuse infiltrative growth and poor clinical outcomes, which underscores the need to delineate the molecular mechanisms driving its malignant progression. COP9 signalosome subunit 7B (COPS7B), a core component of the conserved COP9 signalosome complex, is significantly upregulated in GBM tissues; however, its biological function and regulatory mechanism in GBM remain largely elusive. Here, we found that elevated COPS7B expression was positively correlated with glioma pathological grade and adverse prognosis in histologically and molecularly confirmed GBM patients. Functional assays demonstrated that COPS7B markedly promoted the proliferation, migration, and invasion of GBM cells in vitro, while COPS7B knockdown exerted the opposite suppressive effects. Mechanistically, we identified clusterin (CLU) as a key downstream functional effector of COPS7B in GBM. COPS7B upregulated CLU protein abundance by enhancing the translation efficiency of CLU mRNA, without altering its transcriptional level or protein stability. Functional rescue experiments further confirmed that CLU is indispensable for COPS7B-mediated malignancy-driving phenotypes in GBM, and transcriptomic analysis revealed that the progression-promoting effect of CLU was tightly associated with the activation of tumor-related signaling cascades, including the ERK and MAPK pathways, as well as the regulation of cell growth, invasion, and migration. Collectively, this study not only reveals a critical role of COPS7B in driving GBM malignant progression but also delineates a novel COPS7B-CLU regulatory axis that drives GBM aggressive phenotypes via activation of mitogenic signaling, suggesting candidate targets for further translational investigation. Full article
(This article belongs to the Section Molecular Oncology)
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23 pages, 15381 KB  
Article
Neuroimmune Organoid Models Early Glioblastoma Establishment and the Invasive Niche
by Nina Y. Yuan, William D. Richards, Kailyn T. Parham, Kaylie Greuel, Joshua A. Zimmermann, Jack Shireman, Lei Zhao, Mahua Dey and Connie S. Lebakken
Organoids 2026, 5(3), 23; https://doi.org/10.3390/organoids5030023 - 2 Aug 2026
Viewed by 843
Abstract
Glioblastoma (GBM) is a highly aggressive malignant brain tumor accounting for 15% of all brain tumors and 50% of all gliomas. The exact cause of GBM is not fully understood but risk factors include age, genetic mutations, exposure to ionizing radiation, and certain [...] Read more.
Glioblastoma (GBM) is a highly aggressive malignant brain tumor accounting for 15% of all brain tumors and 50% of all gliomas. The exact cause of GBM is not fully understood but risk factors include age, genetic mutations, exposure to ionizing radiation, and certain genetic disorders. Symptoms of GBM include headaches, seizures, cognitive impairment, and weaknesses on one side of the body. Myeloid cells account for 30–50% of the tumor mass and are instrumental in shaping the complex tumor microenvironment (TME). Inflammation in the TME is an important driver of tumor growth and invasion; however, as the environment evolves, the immunosuppressive TME poses a significant hurdle as it hinders the immune-mediated killing of tumor cells. Our work utilizes neuroimmune organoids containing neurons, astrocytes, microglia, and vascular-like cells, to which we add patient-derived GBM cells and/or iPSC-derived macrophages to model the GBM TME. Model characterization was performed using single-cell RNA sequencing and supernatant proteomics to determine cell-specific changes during coculturing. Our findings are consistent with this 7-day coculture model recapitulating key aspects of GBM early tumor establishment and immune activation, with transcriptomic and secretome signatures suggestive of an emerging immune evasion phenotype. Full article
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39 pages, 16587 KB  
Review
Rewiring the Glioma Ecosystem: Glial–Tumor Crosstalk, Immune Evasion, and Therapeutic Opportunities
by Anass Oukhdouch, Maria Dref, Youssef Nadir, Hayat Bouighajd, Wijdane Ait Marzouka, Imane Elbah, Basma Zinbi, Souad Sellami, Fatima Ezzahra Hazmiri and Hanane Rais
Neuroglia 2026, 7(3), 25; https://doi.org/10.3390/neuroglia7030025 - 26 Jul 2026
Viewed by 823
Abstract
Glioblastoma (GBM), classified as grade 4 of high-grade glioma (HGG) under the 2021 World Health Organization (WHO) Classification of Central Nervous System Tumors (WHO CNS-2021), is the most aggressive primary brain tumor in adults. However, with maximal surgical resection, concurrent radiotherapy, and temozolomide [...] Read more.
Glioblastoma (GBM), classified as grade 4 of high-grade glioma (HGG) under the 2021 World Health Organization (WHO) Classification of Central Nervous System Tumors (WHO CNS-2021), is the most aggressive primary brain tumor in adults. However, with maximal surgical resection, concurrent radiotherapy, and temozolomide (TMZ) chemotherapy, a median patient survival is still between 14 and 16 months. The persistent failure of current treatments is not only traceable to the molecular complexity of tumor cells but is fundamentally shaped by the tumor microenvironment (TME), in which non-neoplastic cells collectively constitute up to half of the total tumor mass. Reactive astrocytes, microglia, tumor-associated macrophages (TAMs), and oligodendrocyte precursor cells (OPCs) are no longer regarded as passive bystanders but as active architects of tumor progression, immune evasion, and therapy resistance. In this comprehensive review, we systematically describe the molecular mechanisms of glial–tumor crosstalk across all three major glial cells. Reactive astrocytes sustain tumor invasion and chemoresistance through connexin-43 gap junctions, bidirectional IL-6/JAK-STAT3 paracrine signaling, and extracellular vesicle-mediated oncogenic reprogramming. Microglia and TAMs undergo profound transcriptional reprogramming via PI3K/Akt/mTOR and CSF-1R signaling, adopting immunosuppressive states that exclude cytotoxic T cells, maintain glioma stem cell (GSC) niches, and drive angiogenesis. OPCs are now underexplored, accumulate at the tumor border, and cooperate with macrophages via Notch and Wnt/β-catenin pathways to establish a therapy-resistant GSC niche at the precise site of post-surgical recurrence. We further address glial–glial interactions as an independent regulatory layer and integrate recent spatial transcriptomic (ST) results revealing a structured, multi-glial niche that governs drug penetration. Finally, we critically evaluate emerging therapeutic strategies targeting these glial–tumor interfaces, including CSF-1R inhibitors, STAT3 modulators, CD47/SIRPα blockades, and engineered extracellular vesicle-based delivery systems. Understanding and targeting the glial ecosystem is an inseparable new field to explore. Full article
(This article belongs to the Special Issue Glial Regulation in Neurooncology)
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33 pages, 31645 KB  
Article
Cannabidiol- and Celecoxib-Loaded Liposomes as a Strategy to Modulate Redox and Inflammatory Signaling in High-Grade Glioma: A Preliminary In Vivo Study
by Anna Rybarczyk, Aleksandra Majchrzak-Celińska, Ludwika Piwowarczyk, Szymon Tomczak, Dorota Wronka, Anna Karlik, Łukasz Przybył and Violetta Krajka-Kuźniak
Int. J. Mol. Sci. 2026, 27(14), 6220; https://doi.org/10.3390/ijms27146220 - 12 Jul 2026
Viewed by 436
Abstract
Inflammation contributes to the rapid progression of high-grade gliomas, indicating that anti-inflammatory strategies targeting NF-κB signaling may offer therapeutic benefit. Cannabidiol (CBD) and celecoxib (CELE) are hydrophobic pharmacological agents whose formulation in lipid carriers may support their combined biological evaluation. In this proof-of-concept [...] Read more.
Inflammation contributes to the rapid progression of high-grade gliomas, indicating that anti-inflammatory strategies targeting NF-κB signaling may offer therapeutic benefit. Cannabidiol (CBD) and celecoxib (CELE) are hydrophobic pharmacological agents whose formulation in lipid carriers may support their combined biological evaluation. In this proof-of-concept study, we investigated liposomal formulations containing CBD, CELE, or both compounds in U-87 MG high-grade glioma cells and in a subcutaneous xenograft model. We assessed cytotoxicity, apoptosis, oxidative stress, Nrf2-dependent responses, NF-κB-centered inflammatory networks, tumor cell invasive properties, and Wnt/β-catenin pathway activity. The nanoformulations induced reactive oxygen species generation by 1.8-fold, which was accompanied by Nrf2 activation. Cationic formulations loaded with the compounds produced more pronounced pro-apoptotic effects (up to 39%) than POPC liposomes, although both types reduced the nuclear translocation of the NF-κB p65 subunit. The CBD + CELE-containing formulation showed a trend toward reduced tumor progression in mice. It is important to note that the in vitro and in vivo nanoformulations were physicochemically related, but not identical, and the in vivo experiment should be interpreted as a preliminary assessment after intratumoral administration. Overall, cationic liposomes co-loaded with CBD + CELE represent a promising platform for further optimization aimed at coordinated modulation of inflammatory, oxidative, and proliferative pathways in glioma. However, additional studies, including tissue distribution, release kinetics, and efficacy in orthotopic glioma models, are needed to fully verify their translational potential. Full article
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31 pages, 32849 KB  
Article
Loss of Neuropeptide Y Signaling Accompanies the Neural-to-Mesenchymal Transcriptional Transition in Glioblastoma: A Multi-Scale Transcriptomic Analysis
by Fareeha Arshad, Nouran Abualsaud, Arshiya Akbar, Mohammed Imran Khan, Bushra Rasheed, Adnan Hussain, Fahad Ali Alghamdi, Faisal Abdulhameed Farrash, Edwin N. Aroke, Khalid Walid Freij, Itika Arora and Ahmed Yaqinuddin
Int. J. Mol. Sci. 2026, 27(13), 6068; https://doi.org/10.3390/ijms27136068 - 6 Jul 2026
Viewed by 718
Abstract
Neuropeptide Y [NPY; encoded by the NPY gene] is a widely expressed 36-amino-acid neuropeptide that regulates neuronal function, vascular regulation, and immune regulation; its role in glioblastoma [GBM] remains incompletely characterized. We performed an integrative in silico multi-scale transcriptomic analysis combining bulk RNA-sequencing [...] Read more.
Neuropeptide Y [NPY; encoded by the NPY gene] is a widely expressed 36-amino-acid neuropeptide that regulates neuronal function, vascular regulation, and immune regulation; its role in glioblastoma [GBM] remains incompletely characterized. We performed an integrative in silico multi-scale transcriptomic analysis combining bulk RNA-sequencing of IDH-wildtype GBM [n = 169] and lower-grade glioma [n = 510] surgical resections from TCGA, normal cortical tissue from GTEx [n = 207], and four independent GEO validation cohorts of surgical GBM and non-tumor brain specimens [GSE4290, GSE50161, GSE131928 scRNA-seq of ~20,426 cells from 28 patients, and GSE194329 10X Visium spatial transcriptomics from five patients], along with survival modeling, pathway enrichment, single-cell RNA sequencing, spatial transcriptomics, and cell–cell communication analysis. NPY and its principal receptor, NPY1R, were significantly downregulated in GBM, while genes associated with hypoxia, angiogenesis, invasion, and immune suppression were upregulated. Single-cell analysis showed that NPY-axis transcript expression was elevated in neural progenitor-like populations. In contrast, hypoxia and metabolic programs were concentrated in mesenchymal tumors and stromal compartments, indicating distinct cellular contexts. Spatial analysis revealed a weak and heterogeneous relationship between NPY and hypoxia signatures, with substantial inter-patient variability and no significant global spatial cross-correlation. These findings indicate that loss of NPY signaling is a consistent feature of GBM and is associated with hypoxia-driven tumor states, while the spatial relationship between NPY and hypoxia appears weak, heterogeneous, and patient-specific. Full article
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35 pages, 40681 KB  
Article
The Role of ULK3 in Cancer Progression: A Pan-Cancer Bioinformatics Analysis Integrated with Experimental Validation in Prostate Cancer
by Yangyang Han, Mengqi Zhang, Mannizire Rehemujiang, Xintong Li, Yimin Liu, Niuniu Zhang, Meng Sun, Yunbo Zhang, Ayshamgul Hasim and Mengjia Li
Int. J. Mol. Sci. 2026, 27(13), 6040; https://doi.org/10.3390/ijms27136040 - 5 Jul 2026
Viewed by 735
Abstract
Unc-51-like kinase 3 (ULK3) is a key member of the ULK serine/threonine kinase family. Aberrant ULK3 expression has been increasingly linked to tumorigenesis and malignant progression in multiple cancer types. However, the precise role of ULK3 in tumor initiation and progression remains incompletely [...] Read more.
Unc-51-like kinase 3 (ULK3) is a key member of the ULK serine/threonine kinase family. Aberrant ULK3 expression has been increasingly linked to tumorigenesis and malignant progression in multiple cancer types. However, the precise role of ULK3 in tumor initiation and progression remains incompletely understood. Leveraging integrated multi-omics data from The Cancer Genome Atlas (TCGA), the Genotype-Tissue Expression (GTEx) project, and the Clinical Proteomic Tumor Analysis Consortium (CPTAC), we systematically characterized the expression of ULK3 at both the transcript and protein levels across 33 cancer types. We also evaluated genomic alterations, prognostic significance, alternative splicing, pathway enrichment, tumor stemness, immune infiltration, and immunotherapy-related biomarkers. In parallel, we investigated the function of ULK3 in prostate cancer PC-3 cells using cellular localization analysis, wound-healing assays, and MTT assays. We further applied Connectivity Map (CMap) screening and molecular docking to identify candidate ULK3 activators. ULK3 was significantly upregulated in 13 cancer types, including Bladder Urothelial Carcinoma, Breast Invasive Carcinoma, and Lung Adenocarcinoma. In contrast, ULK3 was downregulated in Cholangiocarcinoma and Head and Neck Squamous Cell Carcinoma. High ULK3 expression was associated with poor overall survival in Adrenocortical Carcinoma, Kidney Renal Clear Cell Carcinoma, and Skin Cutaneous Melanoma. Copy number amplification contributed to ULK3 overexpression. A recurrent A206V missense mutation was detected in the protein kinase (Pkinase) domain. Genes co-expressed with ULK3 were enriched in RNA splicing, methylation, oxidative phosphorylation, and energy metabolism. ULK3 expression showed positive correlations with tumor stemness indices and m1A/m5C/m6A RNA modification regulators. From an immunological perspective, high ULK3 expression was associated with lower Immune Score, increased M2 macrophage infiltration, and co-expression of PD-L1, CTLA4, and LAG3 in most cancers. ULK3 expression was also correlated with Tumor Mutational Burden in Kidney Renal Clear Cell Carcinoma and Rectum Adenocarcinoma. In addition, ULK3 expression was associated with Microsatellite Instability in Brain Lower Grade Glioma, Lung Adenocarcinoma, and Uterine Corpus Endometrial Carcinoma. ULK3 overexpression promoted proliferation and migration in PC-3 cells. Cephaeline was screened as a putative ULK3 activator. Overall, ULK3 expression and amplification were associated with poor clinical outcomes, tumor stemness, immunosuppression, and RNA dysregulation. These findings highlight the potential value of ULK3 as a pan-cancer diagnostic and prognostic biomarker and as a predictor of immunotherapy response, particularly in prostate cancer. Full article
(This article belongs to the Special Issue Genetic and Molecular Markers in Prostate Cancer)
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20 pages, 8122 KB  
Article
Potent Anti-Glioblastoma Effects of Next-Generation MNK Inhibitors
by Candice Mazewski, Ricardo E. Perez, Purav P. Vagadia, Masha Kocherginsky, Gary E. Schiltz, Frank Eckerdt and Leonidas C. Platanias
Cancers 2026, 18(13), 2086; https://doi.org/10.3390/cancers18132086 - 27 Jun 2026
Viewed by 566
Abstract
Background/Objectives: Glioblastoma (GBM) remains one of the most aggressive and treatment-resistant malignancies, driven in part by heterogeneous, therapy-resistant glioma stem cells (GSCs). Improving clinical outcomes will require innovative therapeutic approaches that target unique molecular vulnerabilities. The mitogen-activated protein kinase (MAPK) pathway drives [...] Read more.
Background/Objectives: Glioblastoma (GBM) remains one of the most aggressive and treatment-resistant malignancies, driven in part by heterogeneous, therapy-resistant glioma stem cells (GSCs). Improving clinical outcomes will require innovative therapeutic approaches that target unique molecular vulnerabilities. The mitogen-activated protein kinase (MAPK) pathway drives tumor progression across multiple cancers, including GBM. MAPK-interacting kinases (MNK1/2) represent MAPK downstream effectors that phosphorylate eukaryotic translation initiation factor 4E (eIF4E), a regulator of oncogenic and anti-apoptotic mRNA translation. We previously identified pharmacological MNK inhibition as a promising therapeutic strategy for GBM, but most available MNK inhibitors lack specificity. Methods: Novel MNK inhibitor compounds were developed using medicinal chemistry optimization and evaluated through molecular docking and kinome profiling analyses. Antineoplastic activity was assessed in established GBM cell lines and patient-derived glioma stem cell models cultured as 3-D neurospheres under stem cell-permissive conditions. Effects on MNK signaling, cell viability, neurosphere growth, migration, invasion, and apoptosis were analyzed using immunoblotting, flow cytometry, viability assays, wound healing assays, and 3-D invasion assays. In addition, a compound screen was performed to identify therapeutic agents that enhance MNK-targeted therapy, followed by validation using pharmacological inhibition and siRNA-mediated knockdown approaches. Results: Our next-generation MNK inhibitor NUCC-201893 exhibited high target specificity and greater potency than the lead compound NU808, effectively suppressing eIF4E phosphorylation, GBM cell viability, neurosphere growth, migration, and invasion. Compound screening identified DNA methyltransferase (DNMT) inhibition as a potent enhancer of MNK blockade. Pharmacological DNMT inhibition enhanced the cytotoxic effects of siRNA-mediated MNK1 knockdown, while concurrent pharmacological inhibition of MNKs and DNMT resulted in greater suppression of neurosphere growth and robust induction of apoptotic responses in GSCs. Conclusions: These findings identify dual MNK and DNMT inhibition as a promising combinatorial strategy that effectively triggers antineoplastic effects in GBM cells and GSCs. Full article
(This article belongs to the Section Cancer Drug Development)
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14 pages, 920 KB  
Review
The Role of LRP1 in Glioma Progression and Therapeutic Targeting: A Narrative Review
by Muhanad Alhujaily
Cells 2026, 15(13), 1163; https://doi.org/10.3390/cells15131163 - 26 Jun 2026
Viewed by 724
Abstract
Gliomas are the most frequently encountered tumors in the central nervous system, with limited therapeutic effectiveness owing to their highly invasive nature, intratumoral heterogeneity, and presence of the blood–brain barrier (BBB). Low-Density Lipoprotein Receptor-Related Protein 1 (LRP1) is a large, multifunctional transmembrane endocytic [...] Read more.
Gliomas are the most frequently encountered tumors in the central nervous system, with limited therapeutic effectiveness owing to their highly invasive nature, intratumoral heterogeneity, and presence of the blood–brain barrier (BBB). Low-Density Lipoprotein Receptor-Related Protein 1 (LRP1) is a large, multifunctional transmembrane endocytic receptor that regulates lipid metabolism, cell signaling, and endocytosis in various body tissues, including the brain. LRP1 mediates tumor cell proliferation, invasion, and angiogenesis in gliomas through various cellular signaling mechanisms, including the SP1/PI3K/AKT pathway and MAPK/ERK. The occurrence of LRP1 in the BBB and the recent identification of its increased expression in gliomas have suggested it as a promising therapeutic target for receptor-mediated nanoparticle delivery and treatment of gliomas. LRP1-mediated transcytosis is now being used to enhance the BBB penetration of chemotherapy drugs and radiosensitizers in gliomas, which has resulted in increased overall survival of patients secondary to increased antitumor effectiveness of therapies. Despite the effective preclinical role of LRP1-targeted therapy in glioma models, clinical translation is challenging due to significant heterogeneity in the expression patterns of LRP1 across various subtypes of gliomas, which may affect the clinical responsiveness of drug therapy. Furthermore, concerns related to the pharmacokinetics of therapy and receptor saturation kinetics have rendered its clinical applicability challenging. Full article
(This article belongs to the Special Issue Molecular Mechanisms and Novel Therapeutics for Glioblastoma)
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30 pages, 7506 KB  
Review
Tumor Treating Fields and the Glioblastoma Microenvironment: Mechanistic Convergences with Radiotherapy
by Flavio Donnini, Giuseppe Battaglia, Salvatore Chibbaro, Francesco Marampon, Giuseppe Minniti and Paolo Tini
Cancers 2026, 18(13), 2069; https://doi.org/10.3390/cancers18132069 - 25 Jun 2026
Viewed by 593
Abstract
Glioblastoma (GBM) remains the most lethal primary brain tumor in adults, with a median overall survival of approximately 15–20 months despite multimodal treatment including surgery, chemoradiation, and Tumor Treating Fields (TTFields). While the survival benefit of TTFields was established by the EF-14 phase [...] Read more.
Glioblastoma (GBM) remains the most lethal primary brain tumor in adults, with a median overall survival of approximately 15–20 months despite multimodal treatment including surgery, chemoradiation, and Tumor Treating Fields (TTFields). While the survival benefit of TTFields was established by the EF-14 phase III trial, their biological effects extend well beyond the canonical anti-mitotic mechanism and encompass extensive interactions with the GBM tumor microenvironment (TME). This review provides an integrated mechanistic analysis of TTFields–TME interactions in GBM, with a distinctive focus on their convergence with radiotherapy. We examine how TTFields activate innate immune sensing through cGAS/STING and AIM2 inflammasome pathways, drive immunogenic cell death, reprogram tumor-associated macrophages, and prime adaptive T cell responses. We further address TTFields effects on glioma stem cells, blood–brain barrier permeability, and intracellular signaling governing invasion, angiogenesis, and autophagy. Critically, we develop the mechanistic and clinical case for TTFields-radiotherapy combinations, highlighting convergent mechanisms of DNA repair impairment, mitotic catastrophe, and innate immune activation. Practical considerations for concurrent clinical implementation are discussed alongside a research agenda centered on optimal timing, hypofractionation, and predictive biomarkers. Available evidence—largely preclinical—suggests that TTFields may act as a TME-remodeling platform whose potential is most likely to be realized through mechanistically informed combinations. Full article
(This article belongs to the Special Issue Radiosensitivity and Radiotoxicity in Cancer)
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23 pages, 5084 KB  
Review
FABP7: A Regulator of Neuro-Immune Metabolic Networks and Therapeutic Vulnerabilities in Glioma
by Yool Lee, Yeena Kee, Sukanya Bhoumik, Carlos C. Flores, Jorge Zepeda-Reyes, Dylan A. Nasinec, Peyton Burpee, Monte Schell, Yuji Owada and Jason R. Gerstner
Cancers 2026, 18(13), 2029; https://doi.org/10.3390/cancers18132029 - 23 Jun 2026
Cited by 1 | Viewed by 857
Abstract
Fatty acid-binding protein 7 (FABP7) is a multifunctional lipid chaperone that is enriched in radial glia and astrocytes within the central nervous system (CNS) and is frequently upregulated in glioma. Beyond its established roles in glial development, lipid homeostasis, and circadian regulation, growing [...] Read more.
Fatty acid-binding protein 7 (FABP7) is a multifunctional lipid chaperone that is enriched in radial glia and astrocytes within the central nervous system (CNS) and is frequently upregulated in glioma. Beyond its established roles in glial development, lipid homeostasis, and circadian regulation, growing evidence positions FABP7 at the intersection of tumor metabolism, neuronal activity, and immune modulation in the brain. In this review, we integrate the physiological functions of FABP7 in glial cells with its tumor-intrinsic and microenvironmental roles in glioma. We summarize how gliomas co-opt FABP7-dependent metabolic, transcriptional, and post-transcriptional programs to promote stemness, lipid remodeling (e.g., altered fatty acid composition, lipid droplet formation, and lipid peroxidation resistance), inflammatory signaling, and invasive growth, including nuclear FABP7-mediated transcriptional activation linked to oncogene status. Furthermore, we discuss the role of FABP7 in shaping the tumor–neuro–immune interface, including regulating immunosuppressive gene networks, pro-tumoral macrophage polarization, resistance to T-cell-induced ferroptosis and immunotherapy, and tumor microtube-mediated integration into neuronal circuits to support glioma progression. Finally, we highlight therapeutic opportunities and challenges, including small-molecule FABP7 inhibitors, brain-directed delivery strategies, chronotherapeutic considerations, and combination approaches with immunotherapy. Collectively, this work positions FABP7-centered metabolic, circadian, and neuro-immune networks as potential vulnerabilities in glioma, linking fundamental glial biology to glioma therapeutics. Full article
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28 pages, 2932 KB  
Review
Multitargeted Flavonoids in Glioblastoma Therapy
by María Jesús Ramírez-Expósito, Cristina Cueto-Ureña and José Manuel Martínez-Martos
Appl. Sci. 2026, 16(12), 6218; https://doi.org/10.3390/app16126218 - 19 Jun 2026
Viewed by 396
Abstract
Glioblastoma (GB) is the most aggressive primary central nervous system tumor in adults and the most common malignant primary brain tumor, representing approximately 50.9% of all malignant CNS tumors, with a median overall survival of approximately 14.6 months despite standard multimodal treatment, consisting [...] Read more.
Glioblastoma (GB) is the most aggressive primary central nervous system tumor in adults and the most common malignant primary brain tumor, representing approximately 50.9% of all malignant CNS tumors, with a median overall survival of approximately 14.6 months despite standard multimodal treatment, consisting of surgical resection, concurrent radiotherapy, and temozolomide (TMZ), followed by adjuvant TMZ (Stupp protocol). Tumor recurrence is inevitable and attributed to diffuse infiltration of neoplastic cells into the brain parenchyma, marked intratumoral heterogeneity, the presence of glioma stem cells, and the protection conferred by the BBB. Flavonoids are plant-derived polyphenolic compounds with more than 8000 identified. They have attracted growing interest as potential therapeutic agents because of their capacity to modulate multiple oncogenic signaling pathways and their favorable toxicity profile. Here we synthesize the preclinical evidence on the main flavonoids with documented activity in GB models, with emphasis on quercetin, apigenin, luteolin, and EGCG, while distinguishing glioblastoma-specific evidence from indirect findings derived from other experimental systems. We analyze their underlying molecular mechanisms, including induction of apoptosis through the intrinsic and extrinsic pathways, inhibition of cell proliferation and angiogenesis, suppression of migration and invasion, epigenetic modulation, and, particularly, the capacity to target the glioma stem cell population. We also examine the limited oral bioavailability and restricted penetration across the BBB, as these factors remain major barriers to translational development. We conclude with an analysis of emerging nanotechnological strategies, targeted delivery systems, and synergistic combinations with conventional chemotherapeutic agents, together with a cautious assessment of the current clinical evidence, which remains insufficient to support the use of flavonoids outside controlled clinical trials. Full article
(This article belongs to the Special Issue Recent Advances in Flavonoids and Health)
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34 pages, 43012 KB  
Article
Pharmacological Ascorbate Restrains Epithelial–Mesenchymal Transition and Invasion in Glioblastoma Cells via Extracellular H2O2 Generation
by Onsurang Wattanathamsan, Naphat Chantaravisoot, Rungnapa Bootsri, Nuttiya Kalpongnukul, Napatsakon Youngsanbhu, Claudia R. Oliva, Corinne E. Griguer and Visarut Buranasudja
Int. J. Mol. Sci. 2026, 27(11), 4964; https://doi.org/10.3390/ijms27114964 - 30 May 2026
Viewed by 698
Abstract
Glioblastoma (GBM) is highly invasive, and diffuse tumor cell migration into surrounding brain tissue remains a major obstacle to durable therapeutic control. Pharmacological ascorbate (P-AscH) exhibits anticancer activity through pro-oxidant mechanisms; however, its effects on GBM motility and invasion remain incompletely [...] Read more.
Glioblastoma (GBM) is highly invasive, and diffuse tumor cell migration into surrounding brain tissue remains a major obstacle to durable therapeutic control. Pharmacological ascorbate (P-AscH) exhibits anticancer activity through pro-oxidant mechanisms; however, its effects on GBM motility and invasion remain incompletely defined. Transcriptomic analyses revealed a strong association between glioma aggressiveness and gene programs governing migration and invasion. Here, we demonstrate that P-AscH markedly suppresses migration and invasion of GBM cells. These phenotypic effects are accompanied by coordinated repression of epithelial–mesenchymal transition (EMT) programs, characterized by reduced expression of mesenchymal markers (ZEB1, N-cadherin, Vimentin, Slug, and Twist1) and induction of the epithelial marker Claudin-1 at both transcriptional and protein levels. In parallel, P-AscH significantly downregulates invasion-associated matrix metalloproteinases MMP2 and MMP9 at the mRNA level. Mechanistically, catalase rescue experiments establish extracellular hydrogen peroxide as an essential mediator of P-AscH-induced inhibition of GBM motility and EMT-associated gene and protein expression. In addition, P-AscH attenuates mTOR signaling, and combination with a dual mTORC1/2 inhibitor further reinforces suppression of migratory behavior and mesenchymal programs. Importantly, these phenotypic and molecular effects are conserved in a patient-derived glioblastoma model, underscoring translational relevance. Collectively, these findings identify extracellular hydrogen peroxide-driven redox signaling as a key mechanism by which pharmacological ascorbate suppresses EMT and invasive programs in GBM, providing mechanistic support for ongoing clinical evaluation and highlighting its potential utility as an invasion-targeted therapeutic strategy in GBM and other highly plastic malignancies. Full article
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34 pages, 14644 KB  
Article
High Regnase-1 Expression Is Associated with an Immunosuppressive Tumor Microenvironment and Aggressive Features in Glioma Patients
by Kenza Miyara, Hamza Benthami, Hayat Miftah, Saadia Ait Ssi, Chaimae Boulhen, Abdelhakim Lakhdar and Abdallah Badou
Cancers 2026, 18(10), 1658; https://doi.org/10.3390/cancers18101658 - 20 May 2026
Viewed by 857
Abstract
Background/Objectives: Gliomas are among the most aggressive primary brain tumors in adults, characterized by profound molecular heterogeneity and poor response to conventional therapies. Immunotherapy has transformed outcomes in several cancers, yet glioma remains largely refractory, due in part to an immunosuppressive tumor [...] Read more.
Background/Objectives: Gliomas are among the most aggressive primary brain tumors in adults, characterized by profound molecular heterogeneity and poor response to conventional therapies. Immunotherapy has transformed outcomes in several cancers, yet glioma remains largely refractory, due in part to an immunosuppressive tumor microenvironment. Post-transcriptional regulation of gene expression is increasingly recognized as a key mechanism controlling immune cell function in tumors. Regnase-1, an endoribonuclease regulating the stability of inflammation- and immunity-related mRNAs, is a central modulator of immune responses; however, its role in glioma progression and immune modulation remains poorly understood. This study aimed to evaluate Regnase-1 expression in glioma and investigate its association with tumor grade, prognosis, and immune microenvironment characteristics. Methods: Regnase-1 transcript levels were evaluated by RT-PCR in tumor samples from 40 Moroccan glioma patients and validated using transcriptomic data from The Cancer Genome Atlas (TCGA, n = 672) and the Chinese Glioma Genome Atlas (CGGA, n = 959). Bioinformatic analyses and statistical assessments were performed using established pipelines. Results: Regnase-1 expression was significantly elevated in glioblastoma, IDH-wildtype tumors, and higher tumor grades, correlating with poorer overall survival, and emerging as an independent prognostic factor in the CGGA cohort. High Regnase-1 expression was associated with enrichment of pathways related to angiogenesis, hypoxia, invasion, and immune evasion. Tumors with elevated Regnase-1 showed reduced infiltration of effector immune cells (CD8+ T cells, Th1 cells) and increased presence of immunosuppressive populations, including regulatory T cells, myeloid-derived suppressor cells, and M2 macrophages. Single-cell analyses further highlighted exhausted CD8+ T cells and regulatory T cells as major populations linked to Regnase-1 expression. Notably, Regnase-1 expression also exhibited strong positive correlations with multiple inhibitory immune checkpoint pathways. Conclusions: Elevated Regnase-1 expression defines an aggressive, immunosuppressive glioma phenotype and is associated with poor prognosis, supporting its potential as a prognostic biomarker and a target for immunomodulatory strategies. Full article
(This article belongs to the Special Issue Immune Microenvironment and Immunotherapy in Malignant Brain Tumors)
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