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可生物降解的外部包裹促进羊静脉移植物模型中的有利适应。

Biodegradable external wrapping promotes favorable adaptation in an ovine vein graft model.

机构信息

Department of Biomedical Engineering, Yale University, New Haven, CT, USA.

Department of Cardiothoracic Surgery, Stanford University School of Medicine, Stanford, CA, USA; Stanford Cardiovascular Institute, Stanford University School of Medicine, Stanford, CA, USA.

出版信息

Acta Biomater. 2022 Oct 1;151:414-425. doi: 10.1016/j.actbio.2022.08.029. Epub 2022 Aug 20.

Abstract

Vein grafts, the most commonly used conduits in multi-vessel coronary artery bypass grafting surgery, have high intermediate- and long-term failure rates. The abrupt and marked increase in hemodynamic loads on the vein graft is a known contributor to failure. Recent computational modeling suggests that veins can more successfully adapt to an increase in mechanical load if the rate of loading is gradual. Applying an external wrap or support at the time of surgery is one way to reduce the transmural load, and this approach has improved performance relative to an unsupported vein graft in several animal studies. Yet, a clinical trial in humans has shown benefits and drawbacks, and mechanisms by which an external wrap affects vein graft adaptation remain unknown. This study aims to elucidate such mechanisms using a multimodal experimental and computational data collection pipeline. We quantify morphometry using magnetic resonance imaging, mechanics using biaxial testing, hemodynamics using computational fluid dynamics, structure using histology, and transcriptional changes using bulk RNA-sequencing in an ovine carotid-jugular interposition vein graft model, without and with an external biodegradable wrap that allows loads to increase gradually. We show that a biodegradable external wrap promotes luminal uniformity, physiological wall shear stress, and a consistent vein graft phenotype, namely, it prevents over-distension, over-thickening, intimal hyperplasia, and inflammation, and it preserves mechanotransduction. These mechanobiological insights into vein graft adaptation in the presence of an external support can inform computational growth and remodeling models of external support and facilitate design and manufacturing of next-generation external wrapping devices. STATEMENT OF SIGNIFICANCE: External mechanical support is emerging as a promising technology to prevent vein graft failure following coronary bypass graft surgery. While variants of this technology are currently under investigation in clinical trials, the fundamental mechanisms of adaptation remain poorly understood. We employ an ovine carotid-jugular interposition vein graft model, with and without an external biodegradable wrap to provide mechanical support, and probe vein graft adaptation using a multimodal experimental and computational data collection pipeline. We quantify morphometry using magnetic resonance imaging, mechanics using biaxial testing, fluid flow using computational fluid dynamics, vascular composition and structure using histology, and transcriptional changes using bulk RNA sequencing. We show that the wrap mitigates vein graft failure by promoting multiple adaptive mechanisms (across biological scales).

摘要

静脉移植物是多支冠状动脉旁路移植术中最常用的血管,其中期和长期失败率较高。静脉移植物上血流动力学负荷的突然和显著增加是导致其失败的已知原因。最近的计算模型表明,如果加载速度逐渐增加,静脉可以更成功地适应机械负荷的增加。在手术时应用外部包裹物或支撑物是一种降低跨壁负荷的方法,这种方法在几项动物研究中已显示出优于未支撑的静脉移植物的性能。然而,一项针对人类的临床试验显示出了利弊,并且外部包裹物影响静脉移植物适应的机制尚不清楚。本研究旨在使用多模态实验和计算数据收集管道阐明这些机制。我们使用磁共振成像定量形态学,使用双轴测试定量力学,使用计算流体动力学定量血流动力学,使用组织学定量结构,使用 bulk RNA-sequencing 定量转录变化,在绵羊颈动脉-颈静脉间置静脉移植物模型中,无和有允许负荷逐渐增加的可生物降解外部包裹物。我们表明,可生物降解的外部包裹物促进管腔均匀性、生理壁剪切应力和一致的静脉移植物表型,即防止过度扩张、过度增厚、内膜增生和炎症,并保持机械转导。这些关于存在外部支撑时静脉移植物适应的机械生物学见解可以为外部支撑的计算生长和重塑模型提供信息,并促进下一代外部包裹装置的设计和制造。

意义声明

外部机械支撑作为一种预防冠状动脉旁路移植术后静脉移植物失败的有前途的技术正在出现。虽然这种技术的变体目前正在临床试验中进行研究,但适应的基本机制仍知之甚少。我们使用绵羊颈动脉-颈静脉间置静脉移植物模型,有和没有外部可生物降解的包裹物提供机械支撑,并通过使用多模态实验和计算数据收集管道来探测静脉移植物的适应。我们使用磁共振成像定量形态学,使用双轴测试定量力学,使用计算流体动力学定量流体流动,使用组织学定量血管组成和结构,使用 bulk RNA-sequencing 定量转录变化。我们表明,包裹物通过促进多种适应机制(跨生物尺度)来减轻静脉移植物的失败。

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Vascular adaptation in the presence of external support - A modeling study.外部支撑条件下的血管适应性——一项建模研究。
J Mech Behav Biomed Mater. 2020 Oct;110:103943. doi: 10.1016/j.jmbbm.2020.103943. Epub 2020 Jun 25.

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