猪Psoas Major作为工程心脏组织支架材料的评价。

IF 2.7 4区 医学 Q3 CELL & TISSUE ENGINEERING
Tissue engineering. Part C, Methods Pub Date : 2023-10-01 Epub Date: 2023-08-10 DOI:10.1089/ten.TEC.2023.0064
Shi Shen, Stephanie Shao, Maria Papadaki, Jonathan A Kirk, Stuart G Campbell
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引用次数: 0

摘要

脱细胞猪心肌通常用作工程心脏组织(EHT)的支架。然而,心肌的结构和机械异质性使机械一致组织的产生复杂化。在这项研究中,我们评估了猪腰大肌(里脊)作为一种替代支架材料。脱细胞里脊肉支架和心室支架的头对头比较显示,平均生物力学特征仅略有差异,但里脊肉框架的变化较小,对起源区域的依赖性也较低。通过用人诱导的多能干细胞衍生的心肌细胞接种里脊肉与心室支架制备的EHT的主动收缩行为也具有可比性,仅观察到微小差异。总的来说,数据表明,脱细胞猪腰大肌产生的EHT的行为与猪左心室心肌产生的EHTs几乎相同,具有更均匀、生物力学一致和易于获得的优点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of Porcine Psoas Major as a Scaffold Material for Engineered Heart Tissues.

Decellularized porcine myocardium is commonly used as scaffolding for engineered heart tissues (EHTs). However, structural and mechanical heterogeneity in the myocardium complicate production of mechanically consistent tissues. In this study, we evaluate the porcine psoas major muscle (tenderloin) as an alternative scaffold material. Head-to-head comparison of decellularized tenderloin and ventricular scaffolds showed only minor differences in mean biomechanical characteristics, but tenderloin scaffolds were less variable and less dependent on the region of origin than ventricular samples. The active contractile behavior of EHTs made by seeding tenderloin versus ventricular scaffolds with human-induced pluripotent stem cell-derived cardiomyocytes was also comparable, with only minor differences observed. Collectively, the data reveal that the behavior of EHTs produced from decellularized porcine psoas muscle is almost identical to those made from porcine left ventricular myocardium, with the advantages of being more homogeneous, biomechanically consistent, and readily obtainable.

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来源期刊
Tissue engineering. Part C, Methods
Tissue engineering. Part C, Methods Medicine-Medicine (miscellaneous)
CiteScore
5.10
自引率
3.30%
发文量
136
期刊介绍: Tissue Engineering is the preeminent, biomedical journal advancing the field with cutting-edge research and applications that repair or regenerate portions or whole tissues. This multidisciplinary journal brings together the principles of engineering and life sciences in the creation of artificial tissues and regenerative medicine. Tissue Engineering is divided into three parts, providing a central forum for groundbreaking scientific research and developments of clinical applications from leading experts in the field that will enable the functional replacement of tissues. Tissue Engineering Methods (Part C) presents innovative tools and assays in scaffold development, stem cells and biologically active molecules to advance the field and to support clinical translation. Part C publishes monthly.
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