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接种成纤维细胞的胶原凝胶对动态双轴机械刺激的响应:一项生物力学研究。

Fibroblast-seeded collagen gels in response to dynamic equibiaxial mechanical stimuli: A biomechanical study.

作者信息

Lee Pei-Yuan, Liu Yen-Ching, Wang Mei-Xuan, Hu Jin-Jia

机构信息

Department of Biomedical Engineering, National Cheng Kung University, Tainan, Taiwan; Department of Orthopedics Surgery, Show Chwan Memorial Hospital, Changhua, Taiwan.

Department of Mechanical Engineering, National Chiao Tung University, Hsinchu, Taiwan.

出版信息

J Biomech. 2018 Sep 10;78:134-142. doi: 10.1016/j.jbiomech.2018.07.030. Epub 2018 Jul 30.

Abstract

The remodeling of fibroblast-seeded collagen gels in response to dynamic mechanical stimuli was investigated by using a newly developed biaxial culture system capable of cyclically stretching planar soft tissues. Fibroblast-seeded collagen gels were subjected to three distinct dynamic mechanical conditions for six days: Cyclic Equibiaxial Stretching at two constant strain magnitudes (CES-7% and CES-20%), and Cyclic Equibiaxial Stretching with incrementally Increasing stain magnitude (ICES, 7% → 15% → 20% each for two days). The frequency of cyclic stretching was set at 1 Hz. At the end of culture, mechanical properties of the gels were examined by biaxial mechanical testing and checked again upon the removal of seeded cells. Collagen microstructure within the gels was illustrated by multiphoton microscopy. The mRNA levels of collagen type I and type III and fibronectin in the cells were examined by reverse transcription PCR. The protein expression of α-smooth muscle actin was detected by immunohistochemistry. We found that the gels cultured under cyclic stretching were stiffer than those cultured under static stretching. Particularly, the stiffness appeared to be significantly enhanced when the ICES was employed. The enhancement of mechanical properties by cyclic stretching appeared to persist upon cell removal, suggesting an irreversible remodeling of extracellular matrix. Second harmonic generation images showed that collagen fibers became thicker and more compact in the gels cultured under cyclic stretching, which may explain the mechanical findings. The mRNA expression of collagen type I in the cells of the ICES was significantly greater than that of the other groups except for the CES-20%. This study suggests that when cyclic stretching is to be used in engineering soft tissues, incrementally increasing strain magnitude may prove useful in the development of the tissue.

摘要

通过使用一种新开发的能够对平面软组织进行周期性拉伸的双轴培养系统,研究了成纤维细胞接种的胶原凝胶在动态机械刺激下的重塑情况。将成纤维细胞接种的胶原凝胶置于三种不同的动态机械条件下培养六天:两种恒定应变幅度的循环等双轴拉伸(CES - 7%和CES - 20%),以及应变幅度逐渐增加的循环等双轴拉伸(ICES,两天内每次从7%增至15%再到20%)。循环拉伸的频率设定为1赫兹。培养结束时,通过双轴力学测试检查凝胶的力学性能,并在去除接种细胞后再次检查。通过多光子显微镜观察凝胶内的胶原微观结构。通过逆转录PCR检测细胞中I型和III型胶原以及纤连蛋白的mRNA水平。通过免疫组织化学检测α - 平滑肌肌动蛋白的蛋白表达。我们发现,在循环拉伸条件下培养的凝胶比在静态拉伸条件下培养的凝胶更硬。特别是,采用ICES时,硬度似乎显著增强。循环拉伸对力学性能的增强在细胞去除后似乎仍然存在,这表明细胞外基质发生了不可逆的重塑。二次谐波产生图像显示,在循环拉伸条件下培养的凝胶中,胶原纤维变得更粗且更紧密,这可能解释了力学测试结果。ICES组细胞中I型胶原的mRNA表达显著高于除CES - 20%组之外的其他组。这项研究表明,当在工程化软组织中使用循环拉伸时,逐渐增加应变幅度可能对组织的发育有用。

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