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Dur Karasayar, A. H.

Publications and source records attributed to Dur Karasayar, A. H..

2 recordsLinked to original sources

DDRKOL: A Focused CRISPR Library for Systematic Identification of DNA Damage Response Dependencies in Glioblastoma

Background: DNA damage response (DDR) pathways are central regulators of genome maintenance and major determinants of cancer cell survival. The extensive genomic instability and high replicative stress that characterize glioblastoma render tumor cells highly dependent on DDR pathways to preserve genome integrity and sustain proliferation. This reliance creates potential therapeutic vulnerabilities, making the systematic identification of essential DDR genes a promising strategy for uncovering novel therapeutic targets. Methods: We developed DNA Damage Response KnockOut Library (DDRKOL), a custom CRISPR/Cas9 sgRNA library targeting 819 DDR genes with approximately 10 sgRNAs per gene, together with positive (essential), negative (non-essential) and non-targeting controls. Parallel depletion screens were performed in Cas9-expressing U87-MG and A172 cells cultured for 15 population doublings. Hits were prioritized utilizing TCGA and DepMap databases and validated by viability, clonogenic, apoptosis and GFP competition assays. Clinically relevant patient-derived glioblastoma spheroids and an orthotopic xenograft model was employed to characterize the effects of hit genes. Results: Sequencing confirmed near-complete recovery of the designed sgRNAs from the plasmid pool, with uniform representation across the library and complexity preserved through transduction and selection. Essential-gene controls depleted strongly while non-targeting controls remained neutral, confirming screen performance in both cell lines. The screens identified DDR dependencies in each line and defined a shared core composed of 20 genes belonging to homologous recombination, nucleotide excision repair and ATM/DSB signaling pathways. This shared dependency landscape highlighted four high-confidence candidate genes (TOP2A, CDK1, XRCC6, and RAD21), which were successfully validated across multiple orthogonal assays. These genes displayed grade-associated expression and their expressions were positively correlated with proliferation markers in TCGA. Individual knockouts reduced viability, colony formation and competitive fitness, induced apoptosis, and impaired growth of patient-derived glioblastoma spheroids. Both genetic depletion and pharmacological inhibition of TOP2A induced S/G2-M cell cycle arrest. In orthotopic xenografts, TOP2A depletion prevented tumor progression, and led to significantly prolonged survival. Conclusion: DDRKOL represents a robust and versatile focused CRISPR platform for systematic functional interrogation of the DDR associated genes. Using glioblastoma, we demonstrate that the library reliably identifies biologically significant and clinically relevant genetic dependencies through multiple orthogonal validation approaches. As a reusable platform rather than a disease-specific tool, DDRKOL can be broadly applied across diverse biological contexts to discover context-dependent DDR vulnerabilities, therapeutic targets, and mechanisms of treatment resistance.

cancer biology↗

Functional Genomic Screens Reveal RBBP4 as a Key Regulator of Cell Cycle Progression in TMZ-Resistant Glioblastoma

Temozolomide (TMZ) remains the standard of care for glioblastoma; however, its efficacy is frequently influenced by epigenetic mechanisms, notably the methylation status of the O6-methylguanine-DNA methyltransferase (MGMT) promoter. While MGMT promoter hypermethylation is associated with enhanced responsiveness to TMZ, additional epigenetic determinants of TMZ resistance remain largely undefined. In this study, we established TMZ-resistant glioblastoma cell lines that consistently maintained their resistant phenotype both in vitro and in vivo. Transcriptomic analyses revealed a marked upregulation of MGMT expression in these models. To systematically investigate the epigenetic regulators governing TMZ resistance and cell survival, we conducted CRISPR/Cas9-based functional genomic screens using our focused Epigenetic Knock-Out Library (EPIKOL), which targets 800 chromatin regulators alongside selected positive and negative controls. These unbiased screens validated MGMT as a primary mediator of TMZ resistance, confirming the robustness of our approach. Moreover, dropout screens across multiple resistant cell line models identified Retinoblastoma Binding Protein 4 (RBBP4) as a critical vulnerability. Notably, RBBP4 knockout significantly impaired cell proliferation without affecting MGMT expression, suggesting a distinct mechanism supporting the survival of TMZ-resistant glioblastoma cells. Subsequent transcriptomic profiling following RBBP4 loss demonstrated significant downregulation of cell cycle pathways, particularly the G2/M checkpoint. Live-cell imaging and immunofluorescence analyses further revealed increased cell size and multinucleation in RBBP4-deficient cells, indicative of disrupted mitotic progression. Collectively, our results identify RBBP4 as a key regulator of cell cycle progression and survival in TMZ-resistant glioblastoma and highlight its potential as a novel epigenetic target for therapeutic intervention in recurrent disease.

cancer biology↗