Photooxidation Cross-Linked, Glutaraldehyde Cross-Linked, or Enzyme and Hydrostatic Pressure Processed Decellularized Biomaterials for Cardiovascular Repair Do Not Affect Host Response in a Rat Right Ventricular Outflow Flow Tract Reconstruction (RVOT) Model

IF 3.2 4区 医学 Q2 ENGINEERING, BIOMEDICAL
Parnaz Boodagh, Laura Modica De Mohac, Yasurani Hayashi, Danila Vella, Sang-Ho Ye, Federica Cosentino, Taro Fujii, Emily Gorge, Garrett Coyan, Joan Dario Laubrie Soto, Gaetano Burriesci, William R. Wagner, Antonio D'Amore
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引用次数: 0

Abstract

Cardiovascular diseases (CVDs) were responsible for approximately 19 million deaths in 2020, marking an increase of 18.7% since 2010. Biological decellularized patches are common therapeutic solutions for CVD such as cardiac and valve defects. The preparation of biomaterials for cardiac patches involves two main processing methods: glutaraldehyde or photooxidation cross-linking (fixation) and noncross-linked (nonfixation) processing. Despite the variety of products available in the market, cardiac patches still suffer from significant limitations, failing to adequately mimic the properties of biological tissue and restore its function. This study assesses the impact of different processing methodologies on the biological and biomechanical outcomes of three commercially available cardiac patches (CorPatch, CardioCel, PhotoFix) and one newly developed decellularized cardiac patch (Adeka) when implanted as right ventricular outflow tract (RVOT) repair material on a rat model. Four different patches for cardiovascular repair were selected based on their processing approaches and included: photooxidation crosslinked (PhotoFix), glutaraldehyde crosslinked (CardioCel), noncross-linked small intestine submucosa (CorPatch) or enzyme, and hydrostatic pressure (Adeka) processed decellularized biomaterials. Structure and function were characterized prior to implantation via thickness mapping, cross-section morphology, 2D surface topography, 3D volume microstructure, biaxial testing, uniaxial tensile testing, ball burst, and suture retention. Their host–biomaterials response was assessed in vivo using a relevant model for cardiovascular repair: a rat (RVOT) reconstruction with 8 and 16-week timepoints. Topological analysis showed that the crosslinked cardiac patches had a more homogeneous thickness distribution when compared to the noncrosslinked patches. This agreed with histological evaluation, where cross-linking processed materials better preserved collagen content than noncrosslinked patches who were also more delaminated. Biaxial data demonstrated that all patches, except CorPatch, recapitulated the anisotropic behavior of healthy left ventricle tissue. The Adeka patch in-plane mechanics at 16 weeks was the one who better resembled the mechanics of healthy cardiac tissue. All patches showed appropriate biocompatibility and function at 8- and 16-week timepoints for RVOT patching. This included echocardiographic assessment, biomechanics, macrophage infiltration and polarization, and angiogenesis. Consistently with a more porous laminae structure, explants histology showed higher cell infiltration in non-crosslinked Adeka when compared to the crosslinked PhotoFix. Overall, both in vitro and in vivo tests indicate that the material processing does not impact the function, biomechanical performance, and the host response of the patches that can be considered as equally effective as materials based cardiac repair solutions.

在大鼠右心室流出流道重建(RVOT)模型中,光氧化交联、戊二醛交联或酶和静水压力处理的脱细胞生物材料用于心血管修复不影响宿主反应。
2020年,心血管疾病造成约1900万人死亡,自2010年以来增长了18.7%。生物脱细胞贴片是心血管疾病如心脏和瓣膜缺损的常用治疗方法。心脏贴片生物材料的制备主要包括两种加工方法:戊二醛或光氧化交联(固定)和非交联(不固定)加工。尽管市场上有各种各样的产品,但心脏贴片仍然存在很大的局限性,无法充分模仿生物组织的特性并恢复其功能。本研究评估了不同处理方法对三种市售心脏贴片(CorPatch, CardioCel, PhotoFix)和一种新开发的脱细胞心脏贴片(Adeka)作为右心室流出道(RVOT)修复材料植入大鼠模型时生物学和生物力学结果的影响。根据其加工方法选择了四种不同的心血管修复贴片,包括:光氧化交联(PhotoFix)、戊二醛交联(CardioCel)、非交联小肠粘膜下层(CorPatch)或酶,以及静水压力(Adeka)处理的脱细胞生物材料。植入前通过厚度测绘、横截面形貌、二维表面形貌、三维体积微观结构、双轴测试、单轴拉伸测试、球爆裂和缝线保留来表征其结构和功能。使用相关的心血管修复模型在体内评估它们的宿主-生物材料反应:大鼠(RVOT)重建,时间点为8周和16周。拓扑分析表明,交联心脏贴片比非交联心脏贴片具有更均匀的厚度分布。这与组织学评估相一致,交联处理的材料比非交联的贴片更好地保存了胶原蛋白含量,而非交联的贴片也更分层。双轴数据表明,除了CorPatch外,所有斑块都重现了健康左心室组织的各向异性行为。16周时,Adeka贴片的平面力学更接近健康心脏组织的力学。所有贴片在RVOT贴片的8周和16周时间点显示出适当的生物相容性和功能。包括超声心动图评估、生物力学、巨噬细胞浸润和极化以及血管生成。与交联的PhotoFix相比,非交联Adeka的外植体组织学显示出更高的细胞浸润,与更多孔的片层结构一致。总的来说,体外和体内试验都表明,材料处理不会影响贴片的功能、生物力学性能和宿主反应,可以认为贴片与基于材料的心脏修复方案同样有效。
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来源期刊
CiteScore
7.50
自引率
2.90%
发文量
199
审稿时长
12 months
期刊介绍: Journal of Biomedical Materials Research – Part B: Applied Biomaterials is a highly interdisciplinary peer-reviewed journal serving the needs of biomaterials professionals who design, develop, produce and apply biomaterials and medical devices. It has the common focus of biomaterials applied to the human body and covers all disciplines where medical devices are used. Papers are published on biomaterials related to medical device development and manufacture, degradation in the body, nano- and biomimetic- biomaterials interactions, mechanics of biomaterials, implant retrieval and analysis, tissue-biomaterial surface interactions, wound healing, infection, drug delivery, standards and regulation of devices, animal and pre-clinical studies of biomaterials and medical devices, and tissue-biopolymer-material combination products. Manuscripts are published in one of six formats: • original research reports • short research and development reports • scientific reviews • current concepts articles • special reports • editorials Journal of Biomedical Materials Research – Part B: Applied Biomaterials is an official journal of the Society for Biomaterials, Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Manuscripts from all countries are invited but must be in English. Authors are not required to be members of the affiliated Societies, but members of these societies are encouraged to submit their work to the journal for consideration.
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