Angeli Stella, Neophytou Constantina, Kalli Maria, Stylianopoulos Triantafyllos, Mpekris Fotios
Cancer Biophysics Laboratory, Department of Mechanical and Manufacturing Engineering, University of Cyprus, Nicosia, Cyprus.
Front Cell Dev Biol. 2025 Mar 18;13:1564626. doi: 10.3389/fcell.2025.1564626. eCollection 2025.
The mechanical properties of the tumor microenvironment (TME) undergo significant changes during tumor growth, primarily driven by alterations in extracellular (ECM) stiffness and tumor viscoelasticity. These mechanical changes not only promote tumor progression but also hinder therapeutic efficacy by impairing drug delivery and activating mechanotransduction pathways that regulate crucial cellular processes such as migration, proliferation, and resistance to therapy. In this review, we examine the mechanisms through which tumor cells sense and transmit mechanical signals to maintain homeostasis in the biomechanically altered TME. We explore current computational modelling strategies for mechanotransduction pathways, highlighting the need for developing models that incorporate additional components of the mechanosignaling machinery. Furthermore, we review available methods for measuring the mechanical properties of tumors in clinical settings and strategies aiming at restoring the TME and blocking deregulated mechanotransduction pathways. Finally, we propose that proper characterization and a deeper understanding of the mechanical landscape of the TME, both at the tissue and cellular levels, are essential for developing therapeutic strategies that account for the influence of mechanical forces on treatment efficacy.
肿瘤微环境(TME)的力学特性在肿瘤生长过程中会发生显著变化,主要由细胞外基质(ECM)硬度和肿瘤粘弹性的改变所驱动。这些力学变化不仅促进肿瘤进展,还会通过损害药物递送和激活调节关键细胞过程(如迁移、增殖和治疗抗性)的机械转导途径来阻碍治疗效果。在本综述中,我们研究了肿瘤细胞感知和传递机械信号以在生物力学改变的TME中维持稳态的机制。我们探讨了当前用于机械转导途径的计算建模策略,强调了开发纳入机械信号传导机制其他组件的模型的必要性。此外,我们回顾了临床环境中测量肿瘤力学特性的可用方法以及旨在恢复TME和阻断失调的机械转导途径的策略。最后,我们提出,在组织和细胞水平上对TME的力学格局进行适当表征和更深入的理解,对于制定考虑机械力对治疗效果影响的治疗策略至关重要。