...
首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Cellular Durotaxis Revisited: Initial-Position-Dependent Determination of the Threshold Stiffness Gradient to Induce Durotaxis
【24h】

Cellular Durotaxis Revisited: Initial-Position-Dependent Determination of the Threshold Stiffness Gradient to Induce Durotaxis

机译:预先致密的蜂窝跨偶突尼斯:初始位置依赖性测定阈值刚度梯度诱导杜兰抑制的梯度

获取原文
获取原文并翻译 | 示例

摘要

Directional cell movement from a softer to a stiffer region on a culture substrate with a stiffness gradient, so-called durotaxis, has attracted considerable interest in the field of mechanobiology. Although the strength of a stiffness gradient has been known to influence durotaxis, the precise manipulation of durotactic cells has not been established due to the limited knowledge available on how the threshold stiffness gradient (TG) for durotaxis is determined. In the present study, to clarify the principles for the manipulation of durotaxis, we focused on the absolute stiffness of the soft region and evaluated its effect on the determination of TG required to induce durotaxis. Microelastically patterned gels that differed with respect to both the absolute stiffness of the soft region and the strength of the stiffness gradient were photolithographically prepared using photo-cross-linkable gelatins, and the TG for mesenchymal stem cells (MSCs) was examined systematically for each stiffness value of the soft region. As a result, the TG values for soft regions with stiffnesses of 2.5, 5, and 10 kPa were 0.14, 1.0, and 1.4 kPa/mu m, respectively, i.e., TG markedly increased with an increase in the absolute stiffness of the soft region. An analysis of the area and long-axis length for focal adhesions revealed that the adhesivity of MSCs was more stable on a stiffer soft region. These results suggested that the initial location of cells starting durotaxis plays an essential role in determining the TG values and furthermore that the relationship between the position-dependent TG and intrinsic stiffness gradient (IG) of the culture substrate should be carefully reconsidered for inducing durotaxis; IG must be higher than TG (IG >= TG). This principle provides a fundamental guide for designing biomaterials to manipulate cellular durotaxis.
机译:从较软的细胞从培养基上的更柔软区域移动到具有刚度梯度,所谓的杜兰抑制的培养基区域,这引起了对机动机动学领域的相当大的兴趣。尽管已知刚度梯度的强度来影响杜拉西斯,但由于如何确定如何确定多塔弯曲的阈值刚度梯度(Tg)的有限知识,尚未确定跨栓电细胞的精确操作。在本研究中,为了阐明用于操纵杜拉西斯的原理,我们专注于软区域的绝对刚度,并评估其对诱导诱导杜塞斯诱导所需的Tg的影响。使用光可交联明胶光刻制备相对于软区域的绝对刚度和刚度梯度的绝对刚度不同的微为图案化凝胶,并使用光可交联明胶来系统地对每个刚度进行系统性关闭干细胞(MSCs)的Tg软区域的值。结果,具有2.5,5和10kPa刚度的软区的Tg值分别为0.14,1.0和1.4kPa / mu m,即Tg显着增加,随着软区域的绝对刚度的增加。对局部粘连的面积和长轴长度的分析显示,MSCs的粘附性在更硬的柔软区域上更稳定。这些结果表明,在确定Tg值的情况下,将细胞的初始位置起着基本作用,并且还应仔细重新考虑培养基质的位置依赖性Tg和固有刚度梯度(Ig)之间的关系以诱导诱导杜兰抑制; IG必须高于TG(IG> = TG)。这一原则为设计的生物材料操纵细胞durotaxis的根本指南。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号