{"doi":"10.1093/neuonc/noaf191","title":"Astrocytes in the glioblastoma tumor microenvironment","abstract":"Therapeutic interventions in glioblastoma (GBM) show little efficacy for multiple reasons, one of which is the highly immunosuppressive nature of the tumor microenvironment (TME). GBM cells interact with neurons and other cells in theTME, such as macrophages, promoting local immunosuppression, tumor invasion, and growth. However, little is known about the relevance of GBM-astrocyte interactions, which exist at the invasive borders of GBM.1 Bidirectional functional interactions between astrocytes and other cells in the central nervous system (CNS) control the local immune response, as well as astrocyte heterogeneity.2,3 In recent studies, we identified astrocyte subsets that limit the immune response to GBM through their interactions with either T cells or tumor cells. These findings identify novel mechanisms of immunosuppression in GBM, as well as candidate therapeutic targets to remodel the TME and boost protective immunity to GBM. In our first study,4 we used single-cell RNA sequencing to identify in GBM clinical specimens an expanded subset of astrocytes expressing the TNF-related apoptosis-inducing ligand (TRAIL, encoded by Tnfsf10). High TRAIL expression was associated with earlier recurrence and shorter patient survival, prompting further investigations in multiple mouse GBM models. In mechanistic studies, we established that astrocyte-specific genetic inactivation of Tnfsf10 boosted the antitumor immune response and extended the survival of glioma-bearing mouse in a T-cell-dependent manner. Further, we found that TRAIL + astrocytes induce T-cell apoptosis, recapitulating previous observations we made in the context of CNS autoimmunity.5 In additional studies, we identified the IL-6 family cytokine IL-11 produced by GBM cells as an inducer of TRAIL expression in astrocytes via the activation of STAT3 signaling. Indeed, high IL-11 expression is associated with worse GBM prognosis and has previously been described to potentiate tumor growth by modulating the TME. The inactivation of IL-11R on astrocytes or IL-11 overexpression in GBM cells extended or shortened survival, respectively, by controlling the number of TRAIL + astrocytes in theTME. Lastly, we therapeutically targeted TRAIL + astrocytes using an oncolytic herpes simplex virus-1 (oHSV) virus designed to infect and lyse GBM cells while also producing aTRAIL-blocking antibody in the TME. TRAIL blockade improved the therapeutic activity of oHSV, enhancing the response of T cells and myeloid cells to GBM. In summary, this study identifies a novel role of astrocytes in the TME, identifying a subset of TRAIL + astrocytes induced by IL-11 that suppresses T-cell responses. In a second study,6 we investigated immunosuppressive astrocyte functions in GBM using a virus-based molecular barcoding technology adapted to detect cell-cell interactions in human tissue (RABID-seq7). RABID-seq combines viral interaction tracing with scRNA-seq, enabling the unbiased investigation of cell-cell interactions in the TME of clinical samples at single-cell resolution. Annexin-A1 (ANXA1) expression was highly enriched in scRNA-seq of GBM-associated astrocytes, suggesting a role in the control of the immune response in the TME because ANXA1 is reported to mediate immunosuppressive mechanisms downstream of glucocorticoid signaling. RABID-seq analyses of freshly resected GBM specimens and preclinical models established that ANXA1 + astrocytes mainly interact with GBM cells, in which expression of the ANXA1 receptor formyl peptide receptor (FPR1) is associated with worse clinical outcomes. Indeed, we detected immunosuppressive signaling in ANXA1 + astrocytes that interacted with FPR1 + GBM cells. Conversely, necroptosis signaling in astrocyte-interacting GBM cells was reduced. In follow-up studies, we established that bidirectional astro- cyte-GBM ANXA1-FPR1 communication limits the immune response to the tumor. First, FPR1 activation by ANXA1 in GBM cells inhibits necroptosis, a highly immunoge","journal":"Neuro-Oncology","year":2025,"id":587867,"datarank":0.0,"base_score":0.0,"endowment":0.0,"self_citation_contribution":0.0,"citation_network_contribution":0.0,"self_endowment_contribution":0.0,"citer_contribution":0.0,"corpus_percentile":null,"corpus_rank":null,"citation_count":0,"citer_count":0,"citers_with_citation_signal":0,"citers_with_endowment":0,"datacite_reuse_total":0,"is_dataset":false,"is_dataset_confidence":0.951,"is_data_producer":false,"deposit_databanks":null,"is_oa":true,"file_count":0,"downloads":0,"has_version_chain":false,"published_date":"2025-01-01","fair_score":null,"fair_percentile":null,"algorithm_id":"datarank_citation_only_1hop_v6","ranking_scope":"data_only","authors":[{"id":1018703,"name":"Brian M. Andersen","orcid":"0000-0002-1162-9061","position":1,"is_corresponding":false},{"id":18937,"name":"Francisco J. Quintana","orcid":"0000-0001-8156-0736","position":2,"is_corresponding":false},{"id":1016492,"name":"Camilo Faust Akl","orcid":"0000-0002-5883-4441","position":0,"is_corresponding":true}],"reference_count":9,"raw_metadata":{"citation_network_status":"fetched"},"created_at":"2026-07-19T02:59:39.958043Z","pmid":"41697355","pmcid":null,"fwci":null,"citation_percentile":null,"influential_citations":0,"oa_status":null,"license":null,"views":0,"total_file_size_bytes":0,"version_count":0,"fair_f":null,"fair_a":null,"fair_i":null,"fair_r":null,"fair_zscore":null,"fair_rationale":null,"fair_model":null,"fair_agent_version":null,"fair_fulltext_source":null,"fair_has_llm":null,"fair_computed_at":null,"clinical_trials":[],"software_tools":[],"db_accessions":[],"linked_datasets":[],"topics":[]}