INSERM UMR_S1109, Strasbourg 67200, France; Université de Strasbourg, Strasbourg 67000, France; LabEx Medalis, Université de Strasbourg, Strasbourg 67000, France; Fédération de Médecine Translationnelle de Strasbourg (FMTS), Strasbourg 67000, France.
Cell Biology and Biophysics Unit, European Molecular Biology Laboratory, Heidelberg 69117, Germany.
Dev Cell. 2018 Apr 9;45(1):33-52.e12. doi: 10.1016/j.devcel.2018.02.015.
Metastatic seeding is driven by cell-intrinsic and environmental cues, yet the contribution of biomechanics is poorly known. We aim to elucidate the impact of blood flow on the arrest and the extravasation of circulating tumor cells (CTCs) in vivo. Using the zebrafish embryo, we show that arrest of CTCs occurs in vessels with favorable flow profiles where flow forces control the adhesion efficacy of CTCs to the endothelium. We biophysically identified the threshold values of flow and adhesion forces allowing successful arrest of CTCs. In addition, flow forces fine-tune tumor cell extravasation by impairing the remodeling properties of the endothelium. Importantly, we also observe endothelial remodeling at arrest sites of CTCs in mouse brain capillaries. Finally, we observed that human supratentorial brain metastases preferably develop in areas with low perfusion. These results demonstrate that hemodynamic profiles at metastatic sites regulate key steps of extravasation preceding metastatic outgrowth.
转移播种是由细胞内在和环境线索驱动的,但生物力学的贡献知之甚少。我们旨在阐明血流对循环肿瘤细胞(CTC)在体内的阻滞和渗出的影响。我们利用斑马鱼胚胎表明,CTC 的阻滞发生在具有有利流动特征的血管中,其中流动力控制 CTC 与内皮的粘附效果。我们通过生物物理方法确定了允许 CTC 成功阻滞的流动和粘附力的阈值值。此外,流动力通过损害内皮的重塑特性来微调肿瘤细胞的渗出。重要的是,我们还观察到在小鼠脑毛细血管中 CTC 阻滞部位的内皮重塑。最后,我们观察到人类幕上脑转移瘤更倾向于在灌注不足的区域发展。这些结果表明,转移部位的血流动力学特征调节转移前渗出的关键步骤。