Cyclic mechanical stretch suppresses intrinsic apoptosis in high metastatic melanoma

  • Mater Today Bio. 2026 Apr 22:38:103132. doi: 10.1016/j.mtbio.2026.103132.
Taehoon Lee  1 WonJun Jang  2  3 Geonwoo Kim  1 Giheon Ha  1 Minseok Kim  2 Soojin Park  2  3 Geonho Lee  1 Hyun-Jong Cho  4 Yu Shrike Zhang  5 Han-Jun Kim  2  3  6 Junmin Lee  1
Affiliations
  • 1. Department of Materials Science and Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 790-784, Republic of Korea.
  • 2. College of Pharmacy, Korea University, Sejong, 30019, Republic of Korea.
  • 3. Interdisciplinary Major Program in Innovative Pharmaceutical Sciences, Korea University, Sejong, 30019, Republic of Korea.
  • 4. College of Pharmacy, Kangwon National University, Chuncheon, 24341, Republic of Korea.
  • 5. Division of Engineering in Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Cambridge, MA, 02139, USA.
  • 6. Department of Plastic and Reconstructive Surgery, College of Medicine, Korea University, Seoul, 02841, Republic of Korea.
Abstract

Mechanical forces within the tumor microenvironment are increasingly recognized as important regulators of Cancer progression, yet their influence on apoptotic regulation in melanoma remains insufficiently defined. Here, we developed a customized stretchable culture platform capable of delivering physiologically relevant cyclic mechanical strain and investigated its effects on intrinsic Apoptosis in melanoma cells with different metastatic potentials. Cyclic stretch significantly reduced Apoptosis in high metastatic melanoma cells, while low-metastatic counterparts exhibited minimal or differential responses. Mechanistically, mechanical stimulation suppressed intrinsic mitochondrial apoptotic signaling along the BAD-BCL-2 family-BAX axis, leading to reduced Caspase-3/7 activation. Pharmacological modulation of mechanosensitive channel activity and intracellular CA2+ signaling partially restored apoptotic responses under stretch, supporting the involvement of calcium-associated mechanotransduction in this process. Importantly, stretched high metastatic melanoma cells displayed reduced sensitivity to pharmacological Apoptosis induction, indicating altered apoptotic responsiveness under mechanical stimulation. In vivo models further demonstrated that prior mechanical conditioning enhanced survival and metastatic behavior in high metastatic melanoma. Together, these findings reveal that cyclic mechanical stress promotes Apoptosis resistance in a metastatic potential-dependent manner and highlight the importance of considering tissue mechanics in understanding melanoma progression and therapeutic response.

Keywords
Apoptosis suppression; Cancer therapy; Mechanobiology; Mechanosensitive channel; Metastatic melanoma.
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