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Ayanlaja, A. A.

Publications and source records attributed to Ayanlaja, A. A..

3 recordsLinked to original sources

DCX Enhances Glioblastoma Metabolism Through Synergistic Regulation of Glutamine Synthesis and Metabolism-Related Genes for Cellular Homeostasis

Gliomas are the most common primary intracranial tumors, comprising 81% of malignant brain tumors, and currently lack effective therapies. Recent advances in molecular biology have shown that cancer cells exploit microtubule-associated proteins (MAPs) under stress to activate various signaling pathways. This study investigates the role of Doublecortin (DCX) in glioma metabolism and its impact on tumor proliferation. In this study, CRISPR-engineered glioma models with DCX overexpression or knockdown were analyzed using integrated genomic, transcriptomic, and metabolomic approaches. Metabolic activity was assessed via RNA sequencing, Seahorse assays, and targeted mass spectrometry. Pharmacological inhibition of key pathways validated functional dependencies. We demonstrate that gliomas enriched with DCX exhibit elevated glycolytic activity while also relying on cellular respiration and oxidative phosphorylation (OXPHOS) for energy to support the abnormal proliferation of glioma cells. Upon integrative analysis of enriched genes and proteins, we observed genetic and metabolome-level signatures associated with differences in central carbon and energy metabolism in CRISPR-modified glioma cells expressing high DCX. Whole-genome transcriptome analysis revealed enriched metabolic entities promoting hydrolysis of glutamine and glutaminolysis in glioma cells and inhibition of selected differentially enriched genes with small molecule inhibitors abrogated metabolic enrichment and resulted in reduced energy levels and protein translation required for aberrant growth. Finally, we establish that DCX stimulates glutaminolysis to regulate homeostasis for energy supplements in glioma cells. Targeting DCX-mediated metabolic pathways may provide a novel therapeutic approach for glioblastoma, highlighting the potential for innovative treatments in this challenging disease.

cancer biology↗

Combined inhibition of SHP2 overcomes adaptive resistance to type 1 BRAF inhibitors in BRAF V600E-driven high-grade glioma

BRAF-mutant gliomas can be therapeutically targeted with BRAF mutant-selective inhibitors, yet responses are often transient due to short-term adaptive or long-term treatment-emergent resistance. We hypothesized that vertical inhibition of multiple signaling nodes could improve the durability of BRAF inhibition and prevent or overcome adaptive resistance. Using human tissue samples, we identified frequent RAS pathway reactivation in gliomas resistant to BRAF inhibitors, suggesting a common escape mechanism. Using patient-derived cell lines, we observed that upregulation of RAS activity was an adaptive response to BRAFi and that knockdown of SHP2, a central regulator of RAS activity, resulted in enhanced sensitivity to BRAF or MEK inhibition. Moreover, combined small molecule inhibition with SHP2 and BRAF or MEK inhibitors increased the depth and durability of ERK pathway inhibition, as well as prevented paradoxical upregulation of RAS activity. RNA sequencing analysis revealed deeper suppression of ERK transcriptional output with combined therapy, along with decreased reactivation of EGFR. Combined SHP2/BRAF small molecule inhibitors prevented growth and induced cell death in some cell line models. In cell lines with treatment-emergent resistance, moreover, combined SHP2 and BRAF inhibition overcame resistance to BRAF inhibitor monotherapy. In vivo orthotopic and patient-derived xenograft models confirmed enhanced tumor growth inhibition with combined therapy. Together, our findings demonstrate the critical role of RAS/ERK signaling reactivation in driving resistance to BRAF inhibition in glioma, and demonstrate the potential utility for adding SHP2 inhibitors to overcome resistance in BRAF V600E mutant glioma. SignificanceThe addition of a SHP2i to BRAFi in BRAF-V600E glioma cells prevents tumor growth and can overcome resistance to BRAFi in preclinical models in vitro and in vivo.

cancer biology↗

MEK inhibition enhances the antitumor effect of radiation therapy in NF1-deficient glioblastoma

Individuals with neurofibromatosis type 1 (NF-1), an autosomal dominant neurogenetic and tumor predisposition syndrome, are susceptible to developing low-grade glioma (LGG) and, less commonly, high-grade glioma (HGG). These gliomas exhibit loss of the neurofibromin gene (NF1), and 10-15% of sporadic HGG have somatic NF1 alterations. Loss of NF1 leads to hyperactive RAS signaling, creating opportunity given the established efficacy of MEK inhibitors (MEKi) in plexiform neurofibromas and some individuals with LGG. We observed that NF1-deficient glioblastoma neurospheres were sensitive to the combination of a MEKi (mirdametinib) with irradiation, as evidenced by synergistic inhibition of cell growth, colony formation, and increased cell death. In contrast, NF1-intact neurospheres were not sensitive to the combination, despite complete ERK pathway inhibition. No neurosphere lines exhibited enhanced sensitivity to temozolomide combined with mirdametinib. Mirdametinib decreased transcription of homologous recombination genes and RAD51 foci, associated with DNA damage repair, in sensitive models. Heterotopic xenograft models displayed synergistic growth inhibition to mirdametinib combined with irradiation in NF1-deficient glioma xenografts, but not those with intact NF1. In sensitive models, benefits were observed at least three weeks beyond the completion of treatment, including sustained phospho-ERK inhibition on immunoblot and decreased Ki-67 expression. These observations demonstrate synergistic activity between mirdametinib and irradiation in NF1-deficient glioma models and may have clinical implications for patients with gliomas that harbor germline or somatic NF1 alterations.

cancer biology↗