Decellularization of Human Internal Mammary Artery: Biomechanical Properties and Histopathological Evaluation.

Q2 Biochemistry, Genetics and Molecular Biology BioResearch Open Access Pub Date : 2017-06-01 eCollection Date: 2017-01-01 DOI:10.1089/biores.2016.0040
Abdol-Mohammad Kajbafzadeh, Reza Khorramirouz, Seyede Maryam Kameli, Javad Hashemi, Amin Bagheri
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引用次数: 12

Abstract

This study undertook to create small-diameter vascular grafts and assess their structure and mechanical properties to withstand arterial implantation. Twenty samples of intact human internal mammary arteries (IMAs) were collected and decellularized using detergent-based methods. To evaluate residual cellular and extracellular matrix (ECM) components, histological analysis was performed. Moreover, collagen typing and ECM structure were analyzed by Picrosirius red and Movat's pentachrome staining. Scanning electron microscopy was also applied to assess microarchitecture of both endothelial and adventitial surfaces of native and decellularized arterial samples. Furthermore, mechanical tests were performed to evaluate the rigidity and suture strength of the arteries. Human IMAs were completely decellularized in all three segments (proximal, middle, and distal). ECM proteins such as collagen and elastic fibers were efficiently preserved and no structural distortion in intima, media, and adventitial surfaces was observed. The parameters of the mechanical tests revealed no significant differences in the mechanical properties of decellularized arteries in comparison to native arteries with considerable strength, suture retention, and stress relaxation (Young's modulus [MPa] = 0.22 ± 0.023 [native] and 0.22 ± 0.015 [acellular]; and suture strength 0.56 ± 0.19 [native] vs. 0.56 ± 0.12 [acellular], respectively). Decellularized IMA represents a potential arterial scaffold as an alternative to autologous grafts for future arterial bypass surgeries. By this technique, microarchitecture and mechanical integrity of decellularized arteries were considerably similar to native arteries. The goal of this study was to introduce an efficient method for complete decellularization of human IMA and evaluate the ECM and biomechanical properties.

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人乳腺内动脉的脱细胞:生物力学特性和组织病理学评价。
本研究进行了小直径血管移植,并评估其结构和力学性能,以承受动脉植入。收集了20个完整的人乳腺内动脉(IMAs)样本,并使用基于洗涤剂的方法进行了细胞剥离。为了评估残留的细胞和细胞外基质(ECM)成分,进行了组织学分析。Picrosirius red和Movat’s五色染色分析胶原分型和ECM结构。扫描电镜也被用于评估原生和去细胞动脉样本内皮和外膜表面的微结构。此外,进行力学试验以评估动脉的刚性和缝合强度。人ima在所有三个节段(近端、中端和远端)都完全去细胞化。ECM蛋白如胶原和弹性纤维得到有效保存,内膜、中膜和外膜表面未见结构畸变。力学试验参数显示,脱细胞动脉的力学性能与原生动脉相比无显著差异,具有相当的强度、缝合保留和应力松弛(杨氏模量[MPa] = 0.22±0.023[原生]和0.22±0.015[脱细胞];缝合强度分别为0.56±0.19(原生组)和0.56±0.12(脱细胞组)。去细胞化IMA代表了一种潜在的动脉支架,作为未来动脉搭桥手术中自体移植物的替代选择。通过这种技术,脱细胞动脉的微结构和机械完整性与天然动脉相当相似。本研究的目的是介绍一种有效的人类IMA完全脱细胞的方法,并评估其ECM和生物力学性能。
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BioResearch Open Access
BioResearch Open Access Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
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期刊介绍: BioResearch Open Access is a high-quality open access journal providing peer-reviewed research on a broad range of scientific topics, including molecular and cellular biology, tissue engineering, regenerative medicine, stem cells, gene therapy, systems biology, genetics, virology, and neuroscience. The Journal publishes basic science and translational research in the form of original research articles, comprehensive review articles, mini-reviews, rapid communications, brief reports, technology reports, hypothesis articles, perspectives, and letters to the editor.
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