Intercellular contractile force attenuates chemosensitivity through Notch- MVP- mediated nuclear drug export
成果类型:
Article
署名作者:
Du, Pengyu; Tang, Kai; Chen, Xi; Xin, Ying; Hu, Bin; Meng, Jianfeng; Hu, Guanshuo; Zhang, Cunyu; Li, Keming; Tan, Youhua
署名单位:
Hong Kong Polytechnic University; Hong Kong Polytechnic University; Hong Kong Polytechnic University; Guizhou University of Traditional Chinese Medicine
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-14539
DOI:
10.1073/pnas.2417626122
发表日期:
2025-05-13
关键词:
resistance
mechanotransduction
activation
mechanics
cells
stiffness
emt
摘要:
Resistance to chemotherapeutics is one major challenge to clinical effectiveness of cancer treatment and is primarily interpreted by various biochemical mechanisms. This study establishes an inverse correlation between tumor cell contractility and chemosensitivity. In both clinical biopsies and cancer cell lines, high/low actomyosin- mediated contractile force attenuates/enhances the vulnerability to chemotherapy, which depends on intercellular force propagation. Cell-cell interaction force activates the mechanosensitive Notch signaling that upregulates the downstream effector major vault protein, which facilitates the export of chemotherapy drugs from nuclei, leading to the reduction of chemosensitivity. Cellular contractility promotes the tolerance of tumor xenografts to chemotherapy and sustains tumor growth in vivo, which can be reversed by the inhibition of contractile force, Notch signaling, or major vault protein. Further, the actomyosin- Notch signaling is associated with drug resistance and cancer recurrence of patients. These findings unveil a regulatory role of intercellular force in chemosensitivity, which could be harnessed as a promising target for cancer mechanotherapeutics.