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Miri, A. K.

Publications and source records attributed to Miri, A. K..

2 recordsLinked to original sources

Insulin-Like Growth Factor 1 Receptor Regulates Breast Cancer Cell Adhesion through Beta-1 Integrin

IntroductionThe insulin-like growth factor (IGF-1/IGF1R) pathway has been implicated in breast cancer aggressiveness; however, inhibition of this pathway has not been successful in clinical trials, indicating a lack of understanding about its role in TNBC metastasis. Recent studies have explored IGF1R involvement in integrin function and cancer cell adhesion dynamics. The goal of this study was to test the hypothesis that IGF1R itself regulates cancer cell adhesion. MethodsWe use MDA-MB-231 and Hs578T TNBC cell lines, siRNA-mediated knockdown, and adhesion assays to assess how IGF1R and integrin knockdowns impact cancer cell adhesion. Using xCELLigence E-plates, we quantify the effect of IGF-1 ligand stimulation versus IGF1R knockdown on functional cell adhesion. We also use HUVEC human endothelial cells to determine how IGF1R regulates adhesion to the endothelium. ResultsWe found that IGF-1 stimulation increased MDA-MB-231 TNBC adhesion, which was reversed by the IGF1R tyrosine kinase inhibitor BMS-754807 and the ligand-dependent receptor internalization inhibitor dansylcadaverine. Unexpectedly, IGF1R knockdown also potently stimulated cell adhesion. Concomitant {beta}1 integrin knockdown reversed the increased cell adhesion after both IGF-1 stimulation or IGF1R knockdown, indicating that the increased adhesion is {beta}1 integrin dependent. This was also seen via immunocytochemistry when cells were seeded on fibronectin. Finally, inhibiting IGF1R signaling also reduced MDA-MB-231 cell adhesion to HUVEC endothelial cells. DiscussionBoth IGF-1 stimulation and IGF1R knockdown in TNBC cells promote cell adhesion, which seems paradoxical. However, the commonality of both interventions is removal of IGF1R from the cell surface, since IGF-1 stimulation causes IGF1R internalization and intracellular trafficking. Blocking IGF1R signaling using a tyrosine kinase IGF1R inhibitor preserves IGF1R on the cell surface. Thus, we propose a model whereby surface-bound IGF1R inhibits {beta}1 integrin function and blocks cell adhesion. This model is supported further by our finding that treatment of MDA-MB-231 cells with dansylcadaverine, which inhibits ligand-mediated receptor internalization, blocked the effect of IGF-1 on adhesion. These findings may explain why selective IGF1R receptor antagonists, which downregulate IGF1R protein upon chronic administration, were unsuccessful in the clinical setting.

cancer biology↗

Extracellular Matrix Physical Properties Regulate Cancer Cell Morphological Transitions in 3D Hydrogel Microtissues

Cancer cells can adopt a range of morphological states linked to distinct functional behaviors during tumor progression. Some remain in a proliferative state, forming tight clusters; others detach and elongate into an invasive state; and some retain a rounded amoeboid form with minimal matrix adhesion. However, factors that determine which morphological state a cell adopts remain poorly understood. Using a combined theoretical and experimental framework, we showed that extracellular matrix (ECM) mechanics regulate cancer cell morphology in three-dimensional (3D) environments. We developed a theoretical model based on the principle of minimum energy, which predicts that a cell will adopt the morphological state--rounded, elongated, or clustered-- that minimizes the total energy of the cell-ECM system. Using MDA-MB-231 breast cancer cells, we established a reliable protocol for encapsulating cells into 3D naturally-derived hydrogels with controlled stiffness and pore size. We validated the models predictions in vitro over an extended culture period. In soft ECMs, cells transitioned over time to an elongated morphology, while in stiff ECMs, cells favored clustered configurations. These transitions were governed by the physical-- not chemical--properties of the hydrogel-based ECM, as confirmed by using chemically distinct yet mechanically matched composite matrices. These new insights have implications for cancer invasion modeling and potential drug screening.

biophysics↗