<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/GSE302nnn/GSE302682/</Other></files><type>primary</type></body><statusCodeValue>200</statusCodeValue><statusCode>OK</statusCode></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=GSE302682</full_dataset_link><repository>GEO</repository><entry_type>GSE</entry_type></additional><is_claimable>false</is_claimable><name>Sleeping Beauty mutagenesis identifies BACH2 and other regulators promoting CD8+ T cell persistence and effector function under tumor-associated chronic antigen stimulation - RNAseq</name><description>● Background: Genes that enhance T cell function could represent promising targets for improving engineered T cell therapies for cancer. While extensive CRISPR knockout screens have identified key genes that enhance T cell persistence, employing Sleeping Beauty (SB) insertional mutagenesis, which induces both gain- (GOF) and loss-of-function (LOF) mutations via the generation of fusion transcripts with endogenous genes, may uncover additional critical factors that previous approaches have overlooked. ● Methods: We developed transgenic mouse models carrying Doxycycline (Dox)-inducible SB engineered system (DiSBey) in primary T cells. Using DiSBey, we conducted screens to identify genes that enhance T cell persistence under chronic antigen exposure. Specifically, CD8⁺ T cells from Dox-fed DiSBey mice were subjected to repeated anti-CD3 stimulation over 18 days to mimic chronic antigenic stimulation. We then identified SB transposon genomic insertion sites and corresponding fusion transcripts from the persistent DiSBey CD8⁺ T cells using enhanced-specificity tagmentation sequencing (esTag-seq) and RNA-seq, respectively. ● Results: Under chronic stimulation, SB-mutagenized CD8⁺ T cells exhibited improved persistence and reduced terminal exhaustion phenotype. Across six independent screens, we identified 38 genes that were recurrently targeted by the SB transposon T2/Onc2 and differentially expressed under chronic anti-CD3 stimulation stress. Among these, T2/Onc2 insertions into Bach2 and Elmo1 were repeatedly found at the genomic level and were associated with altered nascent transcript expression. Bach2, previously recognized as a key regulator of T cell memory formation and resistance to chronic viral infection but less characterized in engineered T cells for cancer therapy, was found to enhance in vivo persistence in the B16-Ova tumor model. We further demonstrated that ectopic Bach2 expression levels influence engineered T cell differentiation lineage. A Bach2low signature allowed differentiation into both KLRG1⁺ and CD62L⁺ phenotypes, whereas Bach2high restricted differentiation predominantly to the CD62L⁺ subset. Finally, in human CART19-28ζ cells, BACH2 overexpression enhanced cytotoxicity and improved tumor control following chronic cancer stimulation in vivo. ● Conclusions: Controllable SB mutagenesis using DiSBey mice provides a novel platform for functional screening of genes that improve T cell therapeutic phenotypes. Our findings highlight a dose-dependent role of BACH2 in enhancing the function of engineered T cells under conditions of chronic antigenic stimulation.</description><dates><publication>2026/07/22</publication></dates><accession>GSE302682</accession><cross_references><GSM>GSM9108790</GSM><GSM>GSM9108791</GSM><GSM>GSM9108792</GSM><GSM>GSM9108757</GSM><GSM>GSM9108758</GSM><GSM>GSM9108759</GSM><GSM>GSM9108793</GSM><GSM>GSM9108794</GSM><GSM>GSM9108795</GSM><GSM>GSM9108796</GSM><GSM>GSM9108752</GSM><GSM>GSM9108797</GSM><GSM>GSM9108753</GSM><GSM>GSM9108754</GSM><GSM>GSM9108798</GSM><GSM>GSM9108799</GSM><GSM>GSM9108755</GSM><GSM>GSM9108756</GSM><GSM>GSM9108780</GSM><GSM>GSM9108781</GSM><GSM>GSM9108782</GSM><GSM>GSM9108783</GSM><GSM>GSM9108784</GSM><GSM>GSM9108785</GSM><GSM>GSM9108786</GSM><GSM>GSM9108787</GSM><GSM>GSM9108788</GSM><GSM>GSM9108789</GSM><GSM>GSM9108770</GSM><GSM>GSM9108809</GSM><GSM>GSM9108779</GSM><GSM>GSM9108812</GSM><GSM>GSM9108813</GSM><GSM>GSM9108814</GSM><GSM>GSM9108815</GSM><GSM>GSM9108816</GSM><GSM>GSM9108817</GSM><GSM>GSM9108771</GSM><GSM>GSM9108772</GSM><GSM>GSM9108773</GSM><GSM>GSM9108774</GSM><GSM>GSM9108775</GSM><GSM>GSM9108776</GSM><GSM>GSM9108777</GSM><GSM>GSM9108810</GSM><GSM>GSM9108811</GSM><GSM>GSM9108778</GSM><GSM>GSM9108768</GSM><GSM>GSM9108801</GSM><GSM>GSM9108802</GSM><GSM>GSM9108769</GSM><GSM>GSM9108803</GSM><GSM>GSM9108804</GSM><GSM>GSM9108805</GSM><GSM>GSM9108806</GSM><GSM>GSM9108807</GSM><GSM>GSM9108808</GSM><GSM>GSM9108760</GSM><GSM>GSM9108761</GSM><GSM>GSM9108762</GSM><GSM>GSM9108763</GSM><GSM>GSM9108764</GSM><GSM>GSM9108765</GSM><GSM>GSM9108766</GSM><GSM>GSM9108800</GSM><GSM>GSM9108767</GSM><GPL>30172</GPL><GPL>23479</GPL><GSE>302682</GSE><taxon>Mus musculus</taxon><PMID>[42457339]</PMID></cross_references></HashMap>