<HashMap><database>GEO</database><file_versions><headers><Content-Type>application/xml</Content-Type></headers><body><files><Other>ftp://ftp.ncbi.nlm.nih.gov/geo/series/GSE303nnn/GSE303470/</Other></files><type>primary</type></body><statusCode>OK</statusCode><statusCodeValue>200</statusCodeValue></file_versions><scores/><additional><omics_type>Transcriptomics</omics_type><species>Mus musculus</species><gds_type>Expression profiling by high throughput sequencing</gds_type><full_dataset_link>https://www.ncbi.nlm.nih.gov/geo/query/acc.cgi?acc=GSE303470</full_dataset_link><repository>GEO</repository><entry_type>GSE</entry_type></additional><is_claimable>false</is_claimable><name>Sex-biased single-cell genetic landscape in mice hippocampus with sub-chronic variable stress</name><description>Background: Major depressive disorder (MDD) exhibits a pronounced female bias, yet the underlying cellular mechanisms remain poorly understood. We investigated sex-specific molecular responses to stress in the mouse hippocampus at single-cell resolution to elucidate mechanisms driving female vulnerability. Methods: Male and female C57BL/6N mice were exposed to sub-chronic variable stress (SCVS). Behavioral phenotyping (sucrose preference, novelty-suppressed feeding) assessed anhedonia. Hippocampal single-cell RNA sequencing (scRNA-seq; 10x Genomics Chromium) was performed on four cohorts: Male-Control, Male-SCVS, Female-Control, Female-SCVS. Sex-stratified differential gene expression, pathway enrichment (GO, KEGG), and mitochondrial gene analysis were conducted. Results: Female mice displayed significantly exacerbated anhedonia (reduced sucrose preference and novelty-suppressed feeding) and selective depletion of plasma serotonin (5-HT) following SCVS exposure, contrasting with minimal behavioral changes in males. Single-cell RNA sequencing of 31,256 hippocampal cells revealed profound sex-dimorphic transcriptional reprogramming: females exhibited a 3-fold greater number of differentially expressed genes (DEGs) than males with minimal overlap (9 shared DEGs). Key mechanistic findings included: (1) Female-biased dysregulation of maternally inherited mitochondrial genes (mt-Atp6 and mt-Co3 upregulated) specifically within oligodendrocytes, linking heightened oxidative stress susceptibility to female vulnerability; (2) Pan-cellular upregulation of the transcription factor Mef2c in females, contrasting with male-specific signatures (NRG-1 upregulated in astrocytes/cholinergic neurons; Slc6a11 downregulated in astrocytes). (3) Divergent pathway alterations, including suppressed oxytocin signaling (social reward) in females versus dysregulated kinase/phosphatase activity (synaptic plasticity) in males, with females further exhibiting coordinated suppression of glutamatergic transmission, astrocytic K⁺ buffering, and cell adhesion; (4) Stress-induced depletion of a baseline oligodendrocyte predominance in females, potentially disrupting hippocampal network synchronization underlying anhedonic behaviors. Conclusion: This study provides the first single-cell atlas of hippocampal sexual dimorphism in stress response. It identifies oligodendrocyte mitochondrial dysfunction, pan-cellular Mef2c upregulation, and oxytocin signaling suppression as central mechanisms underlying female-specific vulnerability to depression-like phenotypes. These findings reveal fundamentally distinct adaptive strategies between sexes and highlight novel, sex-stratified therapeutic targets for MDD.</description><dates><publication>2026/09/16</publication></dates><accession>GSE303470</accession><cross_references><GSM>GSM9127562</GSM><GSM>GSM9127565</GSM><GSM>GSM9127564</GSM><GSM>GSM9127563</GSM><GPL>24247</GPL><GSE>303470</GSE><taxon>Mus musculus</taxon><PMID>[42342683]</PMID></cross_references></HashMap>