FoxO3a Inhibits Tamoxifen-Resistant Breast Cancer Progression by Inducing Integrin α5 Expression.
Elena RicciMariarosa FavaPietro RizzaMichele PellegrinoDaniela BonofiglioIvan CasaburiMarilena LanzinoCinzia GiordanoRosalinda BrunoRosa SirianniInes BaroneDiego SisciCatia MorelliPublished in: Cancers (2022)
Resistance to endocrine therapy is still a major clinical challenge in the management of estrogen receptor α-positive (ERα+) breast cancer (BC). Here, the role of the Forkhead box class O (FoxO)3a transcription factor in tumor progression has been evaluated in tamoxifen-resistant BC cells (TamR), expressing lower levels of FoxO3a compared to sensitive ones. FoxO3a re-expression reduces TamR motility (wound-healing and transmigration assays) and invasiveness (matrigel transwell invasion assays) through the mRNA (qRT-PCR) and protein (Western blot) induction of the integrin α5 subunit of the α5β1 fibronectin receptor, a well-known membrane heterodimer controlling cell adhesion and signaling. The induction occurs through FoxO3a binding to a specific Forkhead responsive core sequence located on the integrin α5 promoter (cloning, luciferase, and ChIP assays). Moreover, FoxO3a failed to inhibit migration and invasion in integrin α5 silenced (siRNA) cells, demonstrating integrin α5 involvement in both processes. Finally, using large-scale gene expression data sets, a strong positive correlation between FoxO3a and integrin α5 in ERα+, but not in ER-negative (ERα-), BC patients emerged. Altogether, our data show how the oncosuppressor FoxO3a, by increasing the expression of its novel transcriptional target integrin α5, reverts the phenotype of endocrine-resistant BC toward a lower aggressiveness.
Keyphrases
- transcription factor
- estrogen receptor
- cell adhesion
- poor prognosis
- gene expression
- cell migration
- dna binding
- binding protein
- breast cancer cells
- pi k akt
- signaling pathway
- induced apoptosis
- high throughput
- cell cycle arrest
- genome wide identification
- electronic health record
- ejection fraction
- endoplasmic reticulum
- dna methylation
- wound healing
- oxidative stress
- big data
- cystic fibrosis
- young adults
- drug delivery
- circulating tumor cells
- endoplasmic reticulum stress
- pseudomonas aeruginosa
- deep learning