Physiologically relevant platform for an advanced in vitro model of the vascular wall: focus on in situ fabrication and mechanical maturation.

IF 2.4
In vitro models Pub Date : 2022-03-23 eCollection Date: 2022-04-01 DOI:10.1007/s44164-022-00012-1
Dimitria B Camasão, Ling Li, Bernard Drouin, Cori Lau, Dieter P Reinhardt, Diego Mantovani
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引用次数: 0

Abstract

The mechanical stimulation applied on engineered vascular constructs in perfusion bioreactors has been shown to be beneficial for their maturation. The level of mechanical stimulation applied on these constructs depends on the flow parameters of the circuit (e.g., fluid viscosity, flow rate, frequency, and pressure). As a group, these parameters are often overlooked in the literature, and they rarely meet the physiological values of the blood flow. For this reason, the level of circumferential stretching and shear stress that blood vessels experience in the human body are rarely reproduced. In this work, we reported the development of a physiologically relevant platform for (1) the in situ fabrication of vascular wall models based on collagen gel, and (2) their maturation under physiological levels of mechanical stimulation in a perfusion bioreactor (pulsatile flow rate of 100 mL/min, frequency of 1 Hz, pressure of 80-120 mmHg, and viscosity of 4 cP). One week of dynamic maturation oriented the seeded cells into the circumferential direction, increased the deposition of collagen and key elastin fiber-related proteins, and improved the mechanical properties in terms of tensile equilibrium elastic modulus (by 110%) and strength at break (by 63%) when compared to the static condition. In addition to the maturation study under selected physiologically relevant mechanical stimulation (such as adult, fetal, child, and hypertension conditions), the platform might also be used as a relevant in vitro testing system for new drugs or pro-active coating to medical devices (such as stents, endografts, and vascular prostheses) expected to trigger specific mechanisms or activities in vascular cells composing the arterial wall.

先进的血管壁体外模型的生理学相关平台:专注于原位制造和机械成熟。
灌注生物反应器中工程血管结构的机械刺激已被证明有利于其成熟。机械增产的水平取决于回路的流量参数(如流体粘度、流速、频率和压力)。作为一个群体,这些参数在文献中经常被忽视,它们很少满足血流量的生理值。因此,人体血管所经历的周向拉伸和剪切应力水平很少被复制。在这项工作中,我们报告了一个生理学相关平台的发展,用于(1)基于胶原凝胶的血管壁模型的原位制造,以及(2)灌注生物反应器中生理水平机械刺激下的成熟(脉动流速为100 mL/min,频率为1 Hz,压力为80-120 mmHg,粘度为4 cP)。一周的动态成熟使种子细胞向周向发展,增加了胶原蛋白和关键弹性蛋白纤维相关蛋白的沉积,与静态条件相比,拉伸平衡弹性模量(提高110%)和断裂强度(提高63%)的力学性能。除了在特定的生理相关机械刺激(如成人、胎儿、儿童和高血压情况)下进行成熟研究外,该平台还可作为相关的体外测试系统,用于新药或医疗器械(如支架、内移植物和血管假体)的主动涂层,这些设备有望触发构成动脉壁的血管细胞的特定机制或活动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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