KU Leuven, Department of Mechanical Engineering, Biomechanics section, Leuven, Belgium.
CeMM The Research Center for Molecular Medicine of the Austrian Academy of Sciences, Vienna, Austria.
Nat Commun. 2024 Oct 6;15(1):8660. doi: 10.1038/s41467-024-52866-6.
Force-driven cellular interactions are crucial for cancer cell invasion but remain underexplored in vascular abnormalities. Cerebral cavernous malformations (CCM), a vascular abnormality characterized by leaky vessels, involves CCM mutant cells recruiting wild-type endothelial cells to form and expand mosaic lesions. The mechanisms behind this recruitment remain poorly understood. Here, we use an in-vitro model of angiogenic invasion with traction force microscopy to reveal that hyper-angiogenic Ccm2-silenced endothelial cells enhance angiogenic invasion of neighboring wild-type cells through force and extracellular matrix-guided mechanisms. We demonstrate that mechanically hyperactive CCM2-silenced tips guide wild-type cells by transmitting pulling forces and by creating paths in the matrix, in a ROCKs-dependent manner. This is associated with reinforcement of β1 integrin and actin cytoskeleton in wild-type cells. Further, wild-type cells are reprogrammed into stalk cells and activate matrisome and DNA replication programs, thereby initiating proliferation. Our findings reveal how CCM2 mutants hijack wild-type cell functions to fuel lesion growth, providing insight into the etiology of vascular malformations. By integrating biophysical and molecular techniques, we offer tools for studying cell mechanics in tissue heterogeneity and disease progression.
力驱动的细胞相互作用对于癌细胞的侵袭至关重要,但在血管异常中仍未得到充分探索。脑动静脉畸形(CAVM)是一种以血管渗漏为特征的血管异常,涉及 CCM 突变细胞招募野生型内皮细胞形成和扩展镶嵌病变。这种招募的机制仍知之甚少。在这里,我们使用血管生成侵袭的体外模型,通过牵引力显微镜揭示了高血管生成 Ccm2 沉默的内皮细胞通过力和细胞外基质引导的机制增强了邻近野生型细胞的血管生成侵袭。我们证明,机械上过度活跃的 CCM2 沉默尖端通过传递拉力并以 ROCKs 依赖性的方式在基质中创建路径来指导野生型细胞。这与野生型细胞中β1 整合素和肌动蛋白细胞骨架的增强有关。此外,野生型细胞被重新编程为柄细胞,并激活基质组和 DNA 复制程序,从而启动增殖。我们的发现揭示了 CCM2 突变体如何劫持野生型细胞的功能来为病变生长提供燃料,为血管畸形的病因提供了深入了解。通过整合生物物理和分子技术,我们提供了用于研究组织异质性和疾病进展中细胞力学的工具。