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Updated: Feb 17, 2026

Method for Novel Anti-Cancer Drug Development using Tumor Explants of Surgical Specimens
Published on: July 29, 2011
Glioma Cell-Derived Apoptotic Extracellular Vesicles Promote Tumorigenesis and Temozolomide Resistance by Delivering
1Department of Neurosurgery, The Second Affiliated Hospital, Xinjiang Medical University, Urumqi, Xinjiang Uygur Autonomous Region, China.
None:
Gliomas are characterized by high incidence, high recurrence rate, high malignancy, high aggressiveness, high therapeutic difficulty, poor clinical prognosis, and high mortality. Therefore, overcoming temozolomide (TMZ) resistance in glioma has become a research hotspot. This study will investigate the effects of glioma cell-derived apoptotic extracellular vesicles (apoEVs) on tumorigenesis and TMZ resistance in glioma. apoEVs derived from TMZ-induced apoptotic glioma cells were isolated, extracted, and characterized. The effects of apoEVs and the extracellular vesicle inhibitor GW4869 on the TMZ resistance, migratory, and invasive capacities of glioma cells were explored using CCK-8, plate cloning assays, flow cytometry, and Transwell assays. Ago2 and luciferase assays were used to confirm the lncRNA-XIST/miR-29c/SP1 axis. A subcutaneous tumor xenograft model was established in nude mice using LN229 cells to validate the in vivo function and related mechanisms of apoEVs. Apoptotic glioma cell-derived apoEVs had consistent exosomal characteristics. ApoEVs promoted glioma cell TMZ resistance and migratory and invasive capacities in vitro and in vivo, effects that were effectively reversed by GW4869. Mechanistically, glioma cell-derived apoEVs promoted glioma cell epithelial-mesenchymal transition (EMT) by delivering lncRNA-XIST, which regulated the miR-29c/SP1/MGMT axis. This study revealed a novel mechanism by which lncRNA-XIST promoted the malignant phenotype of glioma cells, which was found to be encapsulated inside apoptotic glioma cells rather than being released directly to the extracellular compartment. This finding revealed that it was possible to intervene in the function of lncRNA-XIST by inhibiting apoEV formation, thereby providing a new therapeutic avenue targeting lncRNA-XIST to modulate TMZ resistance in glioma.
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