DDRKOL represents a robust and versatile focused CRISPR platform for systematic functional interrogation of the DDR associated genes and can be broadly applied across diverse biological contexts to discover context-dependent DDR vulnerabilities, therapeutic targets, and mechanisms of treatment resistance.
Abstract
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.
Glioblastoma (GBM) is an aggressive brain tumor characterized by therapy resistance and recurrence. Glioblastoma stem cells (GSCs) are key drivers of tumor maintenance, therapeutic resistance, and relapse, but targeting them remains clinically elusive due to their overlap with normal neural stem cells (NSCs) and a lack...
Benjamin A. Brakel, D. McKenna, Anish Puri et al.· Cancer Research Communicatio...· 0 citations
The DNA damage response (DDR) is a sophisticated network of cellular pathways whose perturbation leads to genome instability and is a key hallmark of oncogenesis. Here, we present data from 32 genome-scale loss-of-function CRISPR interference chemical-genetic screens with inhibitors targeting core constituents of the D...
T. O'Loughlin, A. Arab, Sara Misiukiewicz et al.· Nature Chemical Biology· 0 citations
It is demonstrated that integrated Perturb-seq experiments spanning diverse contexts enable hypotheses about gene function specific to tissue types or cancer subtypes – suggesting large-scale, genome-wide datasets would offer invaluable insight into the highly context-dependent nature of cancer biology.
Samuel Maffa, Isabella A. Boyle, Lie Ward et al.· bioRxiv· 0 citations
Background Adenine deaminase (ADAR) is a key RNA editing enzyme that plays an important role in the initiation and progression of cancer. However, the mechanisms regulating its protein stability and its function in glioblastoma (GBM) remain unclear. Methods This study systematically investigated the expression patterns...
Qin Fei, Jue-Ru Huang, Yufeng Zhang et al.· Frontiers in Oncology· 0 citations
A genome-wide CRISPR screen to identify factors regulating sensitivity of cells to aclarubicin and identified p53 as a critical factor for cellular sensitivity suggests p53 could be an important factor to stratify patients for treatment with Aclarubicin.
Sabina Y. van der Zanden, Koen Schipper, Merle A. van Gelder et al.· Cell Death & Disease· 0 citations
ABSTRACT The DNA damage response (DDR) is increasingly recognized not only as a genome‐maintenance network and source of synthetic‐lethal vulnerabilities, but also as a regulator of tumor immunity. DDR defects and pharmacologic inhibition can increase neoantigen formation, generate micronuclei and cytosolic nucleic aci...
Yi-Huan Qiao, B. Kang, Jian Zhang et al.· MedComm· 0 citations
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