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Gradilone, S. A.

Publications and source records attributed to Gradilone, S. A..

2 recordsLinked to original sources

Primary cilia promote resistance to EGFR tyrosine kinase inhibitor, osimertinib, in non-small cell lung cancer

Patients with advanced non-small cell lung cancer (NSCLC) and mutations in epidermal growth factor receptor (EGFR) benefit from EGFR tyrosine kinase inhibitors (TKIs). Osimertinib, a third-generation EGFR TKI, is standard first-line therapy for EGFR-mutated NSCLC, but most patients develop resistance to it. Here, we demonstrate that increased formation of primary cilia, microtubule-based sensory organelles, is associated with osimertinib-refractory NSCLC progression. EGFR-mutated, osimertinib-resistant human NSCLC cells had increased cilia formation and acetylation of -tubulin and reduced histone deacetylase 6 (HDAC6) activity compared to their osimertinib-sensitive counterparts. HDAC6 inhibition increases cilia formation in osimertinib-sensitive NSCLC cells, and overexpression of exogenous HDAC6 sensitized osimertinib-resistant NSCLC cells to osimertinibs anti-proliferative effects. Because intraflagellar transport (IFT) proteins are essential for primary cilium formation and function, we knocked down IFT88 in osimertinib-resistant NSCLC cells, which reversed osimertinib resistance in orthotopic and subcutaneous mouse models of lung cancer. Mechanistically, increased sodium influx during osimertinib-induced inhibition of EGFR signalling promotes cilia formation through sustained HDAC6 inactivity and greater -tubulin acetylation. Inhibition of sodium influx with dibutyryl-cAMP decreased cilium formation, increased sensitivity to osimertinib, and reduced tumor progression in mice bearing osimertinib-resistant lung tumors. Collectively, our findings suggest that enhanced primary cilium formation mediates EGFR TKI resistance and that targeted inhibition of ciliogenesis may prevent or overcome osimertinib resistance.

cancer biology↗

Cholangiocyte primary cilia transduce a fluid shear signal to increase KLF2 via the actin cytoskeleton

Cholangiocarcinoma is an aggressive solid tumor formed in the bile duct epithelium. Often this tumor obstructs bile flow, known as cholestasis. Normal cholangiocytes detect bile flow in the ductal lumen with an extension of the apical membrane called the primary cilium. However, these sensory organelles are often lost in malignant cells. Kruppel-like factor 2 (KLF2) is an important flow-sensitive transcription factor involved in shear stress response in endothelial cells, and has anti-proliferative, anti-inflammatory, and anti-angiogenic effects. The potential role of KLF2 in cholangiocyte flow detection and in cholangiocarcinoma is unknown. We hypothesized that reduced bile flow contributes to malignant features in cholangiocarcinoma through regulation of KLF2 signaling. We observed that primary cilia were expressed in normal cholangiocytes but were absent in malignant cells. KLF2 expression was higher in normal cells compared to malignant. Depletion of cilia in normal cells led to a decrease in KLF2 expression and increased cilia number was associated with increased KLF2. Enforced KLF2 expression inhibited cell proliferation, migration, and also decreased cell death induction in malignant cells. Applied media flow over cholangiocytes increased KLF2 and cilia depletion completely blocked flow-induced KLF2 expression. Disruption of filamentous actin decreased KLF2 expression, suggesting the cilium may communicate through a cytoskeletal mechanotransduction pathway. Our studies demonstrate that cilia positively regulated KLF2 protein levels and increased fluid flow induced KLF2 expression for the first time in cholangiocytes, emphasizing the importance of reestablishing bile flow in cholestatic cholangiocarcinoma.

cancer biology↗