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◆ Frontiers in Pharmacology2026-08-27· Concordance

DepPrior: integrating CRISPR dependency predictability with multi-omics reproducibility to prioritize candidate LUAD therapeutic targets

Feng Zhou, Cheng Wang, Lizhi Mo, Xuan Sun, Ji Zhang

原始摘要(英文原文)· Original abstract
Lung adenocarcinoma (LUAD) remains molecularly heterogeneous, and many tumors lack clearly tractable vulnerabilities. We developed DepPrior, a computational framework that ranks candidate LUAD therapeutic targets by requiring concordant evidence of CRISPR dependency separability, molecular predictability, and cross-cohort expression/protein reproducibility. DepMap dependency scores were modeled from matched expression and copy-number features using linear and non-linear learners, and gene-level AUROC and R 2 were combined into a heuristic DepScore. The final candidate set included FERMT2, CRKL, MYC, CHMP4B and related genes. The set formed a coherent tumor expression module in TCGA-LUAD, was strongly associated with proliferation-linked features, and showed rank-based concordance across GEO transcriptomic cohorts and CPTAC transcriptomic/proteomic resources. Five-fold cross-validation supported the ranking of non-linear models, although performance gains were moderate and should be interpreted as model-ranking evidence rather than as large effect-size proof. Orthogonal experiments in HCC827 cells showed modest but reproducible protein-level reductions after FERMT2 and CRKL knockdown, accompanied by a directionally stronger apoptosis-associated protein shift after combined suppression than after single perturbation. These findings support DepPrior as a reproducibility-oriented, hypothesis-generating approach for target nomination. Because cross-cohort expression concordance does not prove patient-tumor dependency conservation, and experimental validation was restricted to selected genes and cell-line systems without rescue or proliferation/clonogenic assays, the prioritized genes should be considered candidates for further perturbation, rescue, patient-derived model, and therapeutic tractability studies.
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