Suppr超能文献

应变和结构对血管平滑肌细胞生长作用的研究

An Investigation Into the Role of Strain and Structure on Vascular Smooth Muscle Cell Growth.

作者信息

McGee Orla M, Nolan David R, Mathieu Pattie S, Lally Caitríona

机构信息

Trinity Centre for Biomedical Engineering, Trinity College Dublin, Trinity Biomedical Sciences Institute, Dublin, Ireland.

Department of Mechanical, Manufacturing & Biomedical Engineering, School of Engineering, Trinity College Dublin, Dublin, Ireland.

出版信息

Front Bioeng Biotechnol. 2021 Apr 20;9:641794. doi: 10.3389/fbioe.2021.641794. eCollection 2021.

Abstract

The orientation of vascular cells can greatly influence the mechanical properties and functionality of soft vascular tissues. How cell orientation mediates the growth response of cells is of critical importance in understanding the response of soft tissues to mechanical stimuli or injury. To date, considerable evidence has shown that cells align with structural cues such as collagen fibers. However, in the presence of uniaxial cyclic strain on unstructured substrates, cells generally align themselves perpendicularly to the mechanical stimulus, such as strain, a phenomenon known as "strain avoidance." The cellular response to this interplay between structural cues and a mechanical stimulus is poorly understood. A recent experimental study in our lab has investigated both the individual and collective response of rat aortic smooth muscle cells (RASMC) to structural (collagenous aligned constructs) and mechanical (cyclic strain) cues. In this study, a 2D agent-based model (ABM) is developed to simulate the collective response of RASMC to varying amplitudes of cyclic strain (0-10%, 2-8%, 4-6%) when seeded on unstructured (PDMS) and structured (decellularized collagenous tissue) constructs. An ABM is presented that is fit to the experimental outcomes in terms of cellular alignment and cell growth on PDMS substrates, under cyclic strain amplitudes of (4-6%, 2-8%, 0-10%) at 24 and 72 h timepoints. Furthermore, the ABM can predict RASMC alignment and change in cell number on a structured construct at a cyclic strain amplitude of 0-10% after 10 days. The ABM suggests that strain avoidance behavior observed in cells is dominated by selective cell proliferation and apoptosis at these early time points, as opposed to cell re-orientation, i.e., cells perpendicular to the strain increase their rate of proliferation, whilst the rate of apoptosis simultaneously increases in cells parallel to the strain direction. The development of modeling platforms, such as that presented here, allow for further understanding of the response of cells to changes in their mechanical environment. Such models offer an efficient and robust means to design and optimize the compliance and topological structure of implantable devices and could be used to aid the design of next-generation vascular grafts and stents.

摘要

血管细胞的取向会极大地影响柔软血管组织的力学性能和功能。细胞取向如何介导细胞的生长反应对于理解软组织对机械刺激或损伤的反应至关重要。迄今为止,大量证据表明细胞会与诸如胶原纤维等结构线索对齐。然而,在无结构基质上存在单轴循环应变时,细胞通常会垂直于机械刺激(如应变)自行排列,这种现象称为“应变规避”。人们对细胞对这种结构线索与机械刺激之间相互作用的反应了解甚少。我们实验室最近的一项实验研究调查了大鼠主动脉平滑肌细胞(RASMC)对结构(胶原排列构建体)和机械(循环应变)线索的个体和集体反应。在这项研究中,开发了一种基于二维智能体的模型(ABM),以模拟接种在无结构(聚二甲基硅氧烷,PDMS)和结构化(脱细胞胶原组织)构建体上的RASMC对不同幅度循环应变(0 - 10%、2 - 8%、4 - 6%)的集体反应。提出了一种ABM,它在24小时和72小时时间点,在(4 - 6%、2 - 8%、0 - 10%)的循环应变幅度下,在PDMS基质上的细胞排列和细胞生长方面与实验结果相符。此外,该ABM可以预测在10天后,在0 - 10%的循环应变幅度下,结构化构建体上RASMC的排列和细胞数量变化。该ABM表明,在这些早期时间点,细胞中观察到的应变规避行为主要由选择性细胞增殖和凋亡主导,而非细胞重新定向,即垂直于应变的细胞增殖速率增加,而平行于应变方向的细胞凋亡速率同时增加。诸如本文所展示的建模平台的开发,有助于进一步理解细胞对其机械环境变化的反应。此类模型提供了一种高效且强大的手段来设计和优化可植入装置的顺应性和拓扑结构,并可用于辅助下一代血管移植物和支架的设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40bb/8093633/f748918cf4ad/fbioe-09-641794-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验