{"database":"GEO","file_versions":[{"headers":{"Content-Type":["application/json"]},"body":{"files":{"Other":["ftp://ftp.ncbi.nlm.nih.gov/geo/series/GSE339nnn/GSE339482/"]},"type":"primary"},"statusCode":"OK","statusCodeValue":200}],"scores":null,"additional":{"omics_type":["Transcriptomics"],"species":["Homo sapiens"],"gds_type":["Expression profiling by high throughput sequencing"],"full_dataset_link":["https://www.ncbi.nlm.nih.gov/geo/query/acc.cgi?acc=GSE339482"],"repository":["GEO"],"entry_type":["GSE"],"additional_accession":[]},"is_claimable":false,"name":"Decoding Plasticity Regulators and Transition Trajectories in Glioblastoma with Single-cell Multiomics [scRNA-Seq]","description":"Glioblastoma (GB) is incurable and resistant to therapy despite genomic stability under treatment, implicating non-genetic cellular plasticity as a central driver of progression. Whether such plasticity reflects stochastic state switching or is governed by predictable gene regulation has remained unresolved. We applied scDORI, a deep-learning framework that infers enhancer-driven gene regulatory networks at single cell resolution, to single-nucleus multi-ome profiles of over one million cells from primary GBs. Integrating computational inference with systematic gain-of-function screens across patient-derived models, we show that GB cellular plasticity is governed by a structured regulatory program with an asymmetric interplay of activators and repressors. The resulting transition landscape is hierarchical and predictable, yet permits cross-lineage trajectories absent from normal neurodevelopment. Within this landscape, low-plasticity states such as the Neuronal-like state are not stable differentiation endpoints but actively maintained configurations, stabilized by a network of safeguard repressors that silence alternate fates. MYT1L emerged as the dominant member of this network, binding and repressing master regulators of every alternative state to consolidate Neuronal-like identity. MYT1L restricted plasticity even under standard-of-care therapy and suppressed tumor growth and invasion in vivo. Conversely, MYT1L loss reactivated plasticity and accelerated malignant features, demonstrating that low-plasticity identity requires continuous repression. These findings reframe malignant cell state stability as a balance between activation and continuous repression, and nominate safeguard repressors as candidate therapeutic targets distinct from differentiation-inducing activators, with potential relevance across cancers in which phenotypic switching drives therapy resistance.","dates":{"publication":"2026/08/24"},"accession":"GSE339482","cross_references":{"GSM":["GSM9896268","GSM9896267","GSM9896266","GSM9896265","GSM9896264","GSM9896274","GSM9896263","GSM9896273","GSM9896262","GSM9896261","GSM9896272","GSM9896269","GSM9896271","GSM9896260","GSM9896270"],"GPL":["34284"],"GSE":["339482"],"taxon":["Homo sapiens"]}}