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用于小动物模型中可控、渐进性和可逆性主动脉缩窄的软机器人平台。

Soft robotic platform for controlled, progressive and reversible aortic constriction in a small animal model.

作者信息

Rosalia Luca, Wang Sophie X, Ozturk Caglar, Huang Wei, Bonnemain Jean, Beatty Rachel, Duffy Garry P, Nguyen Christopher T, Roche Ellen T

机构信息

Health Sciences and Technology Program, Harvard University - Massachusetts Institute of Technology, Cambridge, 02139-4307, MA, USA.

Institute for Medical Engineering and Science, Massachusetts Institute of Technology, Cambridge, 02139-4307, MA, USA.

出版信息

Res Sq. 2023 Jul 19:rs.3.rs-3100659. doi: 10.21203/rs.3.rs-3100659/v1.

Abstract

Our understanding of cardiac remodeling processes due to left ventricular pressure overload derives largely from animal models of aortic banding. However, these studies fail to simultaneously enable control over disease progression and reversal, hindering their clinical relevance. Here, we describe a method for controlled, progressive, and reversible aortic banding based on an implantable expandable actuator that can be finely controlled to modulate aortic banding and debanding in a rat model. Through catheterization, imaging, and histologic studies, we demonstrate that our model can recapitulate the hemodynamic and structural changes associated with pressure overload in a controllable manner. We leverage the ability of our model to enable non-invasive aortic debanding to show that these changes can be partly reversed due to cessation of the biomechanical stimulus. By recapitulating longitudinal disease progression and reversibility, this model could elucidate fundamental mechanisms of cardiac remodeling and optimize timing of intervention for pressure overload.

摘要

我们对左心室压力超负荷所致心脏重塑过程的理解很大程度上源于主动脉缩窄的动物模型。然而,这些研究未能同时实现对疾病进展和逆转的控制,从而限制了它们的临床相关性。在此,我们描述了一种基于可植入式可扩张致动器的可控、渐进且可逆的主动脉缩窄方法,该致动器可进行精细控制,以调节大鼠模型中的主动脉缩窄和解除缩窄。通过导管插入术、成像和组织学研究,我们证明我们的模型能够以可控方式重现与压力超负荷相关的血流动力学和结构变化。我们利用该模型实现无创性主动脉解除缩窄的能力,表明由于生物力学刺激的停止,这些变化可以部分逆转。通过重现疾病的纵向进展和可逆性,该模型可以阐明心脏重塑的基本机制,并优化针对压力超负荷的干预时机

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d4f/10371154/e10c1e88e139/nihpp-rs3100659v1-f0007.jpg

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