Abstract:
Objective To investigate the role of SLC7A11-mediated disulfidptosis in regulating the functional heterogeneity of cancer-associated fibroblasts (CAFs) and remodeling the immune microenvironment in ovarian cancer (OC).
Methods Utilizing an integrative multi-omics framework, we synchronized transcriptomic data from TCGA and GEO with high-resolution single-cell RNA sequencing (scRNA-seq) and spatial transcriptomics. We employed CellChat interactome algorithms to map disulfidptosis-related gene expression profiles across various cellular hierarchies. The mechanistic link between SLC7A11 and SPP1 was further examined via qPCR assays under glucose-deprived, disulfidptosis-inducing conditions.
Results SLC7A11 was identified as a crucial regulator of disulfidptosis, exhibiting significant overexpression in OC tissues. Elevated SLC7A11 levels were positively correlated with advanced FIGO stages, increased tumor burden, and resistance to immune checkpoint blockade. scRNA-seq profiling identified a distinct CAF lineage (CAF1/CAF5) characterized by a robust disulfidptosis signature. This subpopulation was found to orchestrate the epithelial-mesenchymal transition and establish an immunosuppressive niche via the SPP1-CD44 signaling axis. In situ spatial mapping confirmed the localized amplification of SPP1-mediated signaling at the CAF-tumor cell interface, forming high-intensity interactomes with ITGAV, ITGB1, and CD44. Metabolic stress induced by glucose starvation significantly altered the transcriptional profiles of SLC7A11 and SPP1. Notably, the glucose starvation-induced upregulation of NRF2 mRNA in CAFs was effectively mitigated by NRF2 knockdown or treatment with the disulfidptosis inhibitor 2-mercaptoethanol.
Conclusion SLC7A11-mediated disulfidptosis activates a subset of CAFs, which modify the tumor microenvironment and inhibit anti-tumor immunity through the secretion of SPP1.