Issue 15, 2024

Matrix stiffness influences response to chemo and targeted therapy in brain metastatic breast cancer cells

Abstract

Breast cancer is the most common malignancy accounting for 12.5% of all newly diagnosed cancer cases across the globe. Breast cancer cells are known to metastasize to distant organs (i.e., brain), wherein they can exhibit a dormant phenotype for extended time periods. These dormant cancer cells exhibit reduced proliferation and therapeutic resistance. However, the mechanisms by which dormant cancer cells exhibit resistance to therapy, in the context of brain metastatic breast cancer (BMBC), is not well understood. Herein, we utilized hyaluronic acid (HA) hydrogels with varying stiffnesses to study drug responsiveness in dormant vs. proliferative BMBC cells. It was found that cells cultured on soft HA hydrogels (∼0.4 kPa) that showed a non-proliferative (dormant) phenotype exhibited resistance to Paclitaxel or Lapatinib. In contrast, cells cultured on stiff HA hydrogels (∼4.5 kPa) that showed a proliferative phenotype exhibited responsiveness to Paclitaxel or Lapatinib. Moreover, dormancy-associated resistance was found to be due to upregulation of the serum/glucocorticoid regulated kinase 1 (SGK1) gene which was mediated, in part, by the p38 signaling pathway. Accordingly, SGK1 inhibition resulted in a dormant-to-proliferative switch and response to therapy. Overall, our study demonstrates that matrix stiffness influences dormancy-associated therapy response mediated, in part, via the p38/SGK1 axis.

Graphical abstract: Matrix stiffness influences response to chemo and targeted therapy in brain metastatic breast cancer cells

Supplementary files

Article information

Article type
Paper
Submitted
06 Mar 2024
Accepted
14 Jun 2024
First published
18 Jun 2024

Biomater. Sci., 2024,12, 3882-3895

Matrix stiffness influences response to chemo and targeted therapy in brain metastatic breast cancer cells

V. Yakati, L. A. Shevde and S. S. Rao, Biomater. Sci., 2024, 12, 3882 DOI: 10.1039/D4BM00342J

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