Abstract / Summary
The association of cytoplasmic localization of VDR in TNBC tumors and disease aggressivity prompted investigation of its regulation by XPO1. In TNBC cell lines, the XPO1 inhibitors selinexor and eltanexor increased nuclear VDR localization. Their effects were particularly strong when combined with vitamin D treatment. Similarly, XPO1 knockdown increased nuclear VDR levels, both alone and in combination with vitamin D. These results identify XPO1 as an important regulator of VDR subcellular distribution. XPO1 inhibition also enhanced vitamin D-dependent VDR transcriptional activity. Indeed, selinexor, eltanexor, and XPO1 silencing increased vitamin D-dependent CYP24A1 reporter activity and the expression of genes such as CYP24A1 or CDH1. RNA sequencing showed that XPO1 modulation markedly reshaped the vitamin D transcriptional response. The affected genes were mainly involved in metabolism, cell-cycle regulation, protein localization, and cellular organization. Functional analyses demonstrated that cytoplasmic VDR promoted TNBC cell proliferation. Conversely, nuclear VDR was required for the antiproliferative effects of vitamin D. Accordingly, XPO1 inhibition or depletion potentiated vitamin D-mediated growth suppression. This finding suggested functional cooperation between XPO1-dependent export and VDR activity. Finally, high VDR expression was associated with poor disease-free or overall survival only in tumors with high XPO1 expression. Overall, XPO1 negatively regulates VDR nuclear localization and vitamin D responsiveness in TNBC. Targeting XPO1 may therefore enhance the therapeutic potential of vitamin D-based strategies in TNBC.