灌注生物反应器调节小直径植物血管移植。

IF 4.4 4区 医学 Q2 CELL & TISSUE ENGINEERING Tissue engineering and regenerative medicine Pub Date : 2024-12-01 Epub Date: 2024-10-01 DOI:10.1007/s13770-024-00670-0
Nicole Gorbenko, John C Vaccaro, Ryan Fagan, Robert A Cerro, Jonah M Khorrami, Lucia Galindo, Nick Merna
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引用次数: 0

摘要

背景:血管移植物主要由合成材料组成,但在直径较小的情况下容易出现血栓和内膜增生。脱细胞植物支架的出现为组织工程学提供了有前景的替代品。此前,我们利用脱细胞皮叶紫檀开发出了坚固的内皮化小直径血管。这是首次在生理流体流动和压力波形下对基于植物的血管进行预处理和分析的研究。将脱细胞的皮叶紫檀作为组织工程移植物进行植入,由于其生物相容性和生产成本效益,可对医疗保健产生深远影响:方法:设计了一种新型灌注生物反应器,能够精确控制流体流速和压力波形,用于小直径血管移植物的预处理。闭环系统控制压力波形,模拟生理值 50-120 mmHg,频率为 8.75 Hz,流体流量达到 5 mL/min。用内皮细胞和血管平滑肌细胞对植物血管移植物进行再细胞化,并在该生物反应器中培养长达 3 周。对移植物的细胞密度、支架结构和力学、血栓形成性和免疫原性进行了评估:结果:与静态对照组相比,生物反应器中的流体流动显著增加了管腔内皮细胞密度,而压力波形则减少了血栓形成,并在移植物内层维持了有活力的血管平滑肌细胞。移植物的缝合固定符合移植标准,白细胞活力适合血管重塑:结论:内皮化的皮叶紫檀血栓形成率低,在血管修复方面具有巨大潜力。这项研究深入探讨了用更高频率的血液动力调节植物基材料的益处,而这些益处是以前从未研究过的。
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Perfusion Bioreactor Conditioning of Small-diameter Plant-based Vascular Grafts.

Background: Vascular grafts are mainly composed of synthetic materials, but are prone to thrombosis and intimal hyperplasia at small diameters. Decellularized plant scaffolds have emerged that provide promising alternatives for tissue engineering. We previously developed robust, endothelialized small-diameter vessels from decellularized leatherleaf viburnum. This is the first study to precondition and analyze plant-based vessels under physiological fluid flow and pressure waveforms. Using decellularized leatherleaf viburnum as tissue-engineered grafts for implantation can have profound impacts on healthcare due to their biocompatibility and cost-effective production.

Methods: A novel perfusion bioreactor was designed, capable of accurately controlling fluid flow rate and pressure waveforms for preconditioning of small-diameter vascular grafts. A closed-loop system controlled pressure waveforms, mimicking physiological values of 50-120 mmHg at a frequency of 8.75 Hz for fluid flow reaching 5 mL/min. Plant-based vascular grafts were recellularized with endothelial and vascular smooth muscle cells and cultured for up to 3 weeks in this bioreactor. Cell density, scaffold structure and mechanics, thrombogenicity, and immunogenicity of grafts were evaluated.

Results: Bioreactor treatment with fluid flow significantly increased luminal endothelial cell density, while pressure waveforms reduced thrombus formation and maintained viable vascular smooth muscle cells within inner layers of grafts compared to static controls. Suture retention of grafts met transplantation standards and white cell viability was suitable for vascular remodeling.

Conclusion: Low thrombogenicity of endothelialized leatherleaf viburnum holds great potential for vascular repair. This study provides insight into benefits of conditioning plant-based materials with hemodynamic forces at higher frequencies that have not previously been investigated.

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来源期刊
Tissue engineering and regenerative medicine
Tissue engineering and regenerative medicine CELL & TISSUE ENGINEERING-ENGINEERING, BIOMEDICAL
CiteScore
6.80
自引率
5.60%
发文量
83
审稿时长
6-12 weeks
期刊介绍: Tissue Engineering and Regenerative Medicine (Tissue Eng Regen Med, TERM), the official journal of the Korean Tissue Engineering and Regenerative Medicine Society, is a publication dedicated to providing research- based solutions to issues related to human diseases. This journal publishes articles that report substantial information and original findings on tissue engineering, medical biomaterials, cells therapy, stem cell biology and regenerative medicine.
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