{"database":"GEO","file_versions":[{"headers":{"Content-Type":["application/json"]},"body":{"files":{"Other":["ftp://ftp.ncbi.nlm.nih.gov/geo/series/GSE345nnn/GSE345168/"]},"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=GSE345168"],"repository":["GEO"],"entry_type":["GSE"],"additional_accession":[]},"is_claimable":false,"name":"Retinal Organoid–Based Evaluation of Icariin-Loaded Extracellular Vesicles for Hypoxia-Induced Retinal Injury via Mitochondrial Modulation","description":"Background: Hypoxic injury is a critical pathological factor in various retinal degenerative diseases, leading to mitochondrial dysfunction and irreversible loss of retinal neurons. This study investigated the neuroprotective potential of Icariin-loaded extracellular vesicles (EV_ICA) using both R28 retinal progenitor cells and human embryonic stem cell (hESC)-derived retinal organoids. Methods: EV_ICA were isolated and characterized by morphology, EV marker expression, and zeta potential analysis. A CoCl₂-induced hypoxic injury model was established in R28 cells and hESC-derived retinal organoids to evaluate the therapeutic effects of EV_ICA. Gene and protein expression analyses, bulk RNA sequencing (RNA-seq), gene set enrichment analysis (GSEA), mitochondrial ROS measurements, and intracellular ATP assays were performed to assess neuroprotective efficacy and mitochondrial function. Results: EV_ICA exhibited typical spherical morphology, expressed standard EV markers, and showed a shift toward a less negative zeta potential compared to Naïve EV. In hypoxia-injured retinal models, EV_ICA significantly restored the expression of key retinal and neuroprotective markers, including Syntaxin12, NeuN, Vegf, Rbpms, Brn-3a, and Bdnf, while suppressing Hif-1α accumulation. Transcriptomic and GSEA analyses revealed that EV_ICA reactivated biological pathways associated with phototransduction, visual perception, and retinal development that were impaired under hypoxic conditions. Furthermore, EV_ICA improved mitochondrial homeostasis by up-regulating mitochondrial-related genes, reducing mitochondrial ROS accumulation, and recovering intracellular ATP production. Conclusion: These findings demonstrate that EV_ICA exerts neuroprotective effects by preserving mitochondrial quality control and restoring functional retinal gene programs under hypoxic stress. EV_ICA may therefore serve as a promising therapeutic candidate for hypoxia-related retinal degeneration and provide potential applications for cell-free regenerative medicine","dates":{"publication":"2026/08/31"},"accession":"GSE345168","cross_references":{"GSM":["GSM9998526","GSM9998525","GSM9998527","GSM9998524"],"GPL":["24676"],"GSE":["345168"],"taxon":["Homo sapiens"]}}