Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, the Netherlands; Institute for Complex Molecular Systems, Eindhoven University of Technology, Eindhoven, the Netherlands.
School of Engineering and Trinity Centre for Biomedical Engineering, Trinity College Dublin, Dublin, Ireland.
J Mech Behav Biomed Mater. 2022 Sep;133:105325. doi: 10.1016/j.jmbbm.2022.105325. Epub 2022 Jun 29.
Arteries grow and remodel in response to mechanical stimuli. Hypertension, for example, results in arterial wall thickening. Cell-cell Notch signaling between vascular smooth muscle cells (VSMCs) is known to be involved in this process, but the underlying mechanisms are still unclear. Here, we investigated whether Notch mechanosensitivity to strain may regulate arterial thickening in hypertension. We developed a multiscale computational framework by coupling a finite element model of arterial mechanics, including residual stress, to an agent-based model of mechanosensitive Notch signaling, to predict VSMC phenotypes as an indicator of growth and remodeling. Our simulations revealed that the sensitivity of Notch to strain at mean blood pressure may be a key mediator of arterial thickening in hypertensive arteries. Further simulations showed that loss of residual stress can have synergistic effects with hypertension, and that changes in the expression of Notch receptors, but not Jagged ligands, may be used to control arterial growth and remodeling and to intensify or counteract hypertensive thickening. Overall, we identify Notch mechanosensitivity as a potential mediator of vascular adaptation, and we present a computational framework that can facilitate the testing of new therapeutic and regenerative strategies.
动脉会对机械刺激做出生长和重塑反应。例如,高血压会导致动脉壁变厚。血管平滑肌细胞(VSMCs)之间的细胞间 Notch 信号传递被认为参与了这一过程,但潜在机制尚不清楚。在这里,我们研究了 Notch 对应变的机械敏感性是否可能调节高血压中的动脉增厚。我们通过将包括残余应力在内的动脉力学有限元模型与基于代理的机械敏感 Notch 信号传递模型耦合,开发了一个多尺度计算框架,以预测 VSMC 表型作为生长和重塑的指标。我们的模拟表明,Notch 对平均血压下应变的敏感性可能是高血压动脉中动脉增厚的关键介质。进一步的模拟表明,残余应力的丧失可能与高血压有协同作用,并且 Notch 受体的表达变化,而不是 Jagged 配体的表达变化,可能被用来控制动脉的生长和重塑,并增强或抵消高血压引起的增厚。总的来说,我们将 Notch 机械敏感性确定为血管适应的潜在介质,并提出了一个计算框架,可以促进新的治疗和再生策略的测试。