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利用微观流变学监测复杂细胞系统中细胞微环境的基质重塑。

Monitoring matrix remodeling in the cellular microenvironment using microrheology for complex cellular systems.

作者信息

Hafner Johanna, Grijalva David, Ludwig-Husemann Anita, Bertels Sarah, Bensinger Lea, Raic Annamarija, Gebauer Julian, Oelschlaeger Claude, Bastmeyer Martin, Bieback Karen, Lee-Thedieck Cornelia, Willenbacher Norbert

机构信息

Institute of Mechanical Process Engineering and Mechanics, Applied Mechanics Group, Karlsruhe Institute of Technology, 76137 Karlsruhe, Germany.

Institute of Mechanical Process Engineering and Mechanics, Applied Mechanics Group, Karlsruhe Institute of Technology, 76137 Karlsruhe, Germany.

出版信息

Acta Biomater. 2020 Jul 15;111:254-266. doi: 10.1016/j.actbio.2020.04.053. Epub 2020 May 17.

Abstract

Multiple particle tracking (MPT) microrheology was employed for monitoring the development of extracellular matrix (ECM) mechanical properties in the direct microenvironment of living cells. A customized setup enabled us to overcome current limitations: (i) Continuous measurements were enabled using a cell culture chamber, with this, matrix remodeling by fibroblasts in the heterogeneous environment of macroporous scaffolds was monitored continuously. (ii) Employing tracer laden porous scaffolds for seeding human mesenchymal stem cells (hMSCs), we followed conventional differentiation protocols. Thus, we were, for the first time able to study the massive alterations in ECM elasticity during hMSC differentiation. (iii) MPT measurements in 2D cell cultures were enabled using a long distance objective. Exemplarily, local mechanical properties of the ECM in human umbilical vein endothelial cell (HUVEC) cultures, that naturally form 2D layers, were investigated scaffold-free. Using our advanced setup, we measured local, apparent elastic moduli G in a range between 0.08 and 60 Pa. For fibroblasts grown in collagen-based scaffolds, a continuous decrease of local matrix elasticity resulted during the first 10 hours after seeding. The osteogenic differentiation of hMSC cells cultivated in similar scaffolds, led to an increase of G by 100 %, whereas after adipogenic differentiation it was reduced by 80 %. The local elasticity of ECM that was newly secreted by HUVECs increased significantly upon addition of protease inhibitor and in high glucose conditions even a twofold increase in G was observed. The combination of these advanced methods opens up new avenues for a broad range of investigations regarding cell-matrix interactions and the propagation of ECM mechanical properties in complex biological systems. STATEMENT OF SIGNIFICANCE: Cells sense the elasticity of their environment on a micrometer length scale. For studying the local elasticity of extracellular matrix (ECM) in the direct environment of living cells, we employed an advanced multipleparticle tracking microrheology setup. MPT is based on monitoring the Brownian motion oftracer particles, which is restricted by the surrounding network. Network elasticity can thusbe quantified. Overcoming current limitations, we realized continuous investigations of ECM elasticityduring fibroblast growth. Furthermore, MPT measurements of stem cell ECM showed ECMstiffening during osteogenic differentiation and softening during adipogenic differentiation.Finally, we characterized small amounts of delicate ECM newly secreted in scaffold-freecultures of endothelial cells, that naturally form 2D layers.

摘要

多粒子追踪(MPT)微流变学被用于监测活细胞直接微环境中细胞外基质(ECM)力学性质的变化。定制的装置使我们能够克服当前的局限性:(i)使用细胞培养室实现连续测量,借此在大孔支架的异质环境中连续监测成纤维细胞引起的基质重塑。(ii)使用载有示踪剂的多孔支架接种人间充质干细胞(hMSC),我们遵循传统的分化方案。因此,我们首次能够研究hMSC分化过程中ECM弹性的巨大变化。(iii)使用长距离物镜在二维细胞培养中进行MPT测量。例如,在自然形成二维层的人脐静脉内皮细胞(HUVEC)培养物中,对无支架的ECM局部力学性质进行了研究。使用我们先进的装置,我们测量了0.08至60 Pa范围内的局部表观弹性模量G。对于在基于胶原蛋白的支架中生长的成纤维细胞,接种后最初10小时内局部基质弹性持续下降。在类似支架中培养的hMSC细胞的成骨分化导致G增加100%,而脂肪生成分化后G降低80%。添加蛋白酶抑制剂后,HUVEC新分泌的ECM局部弹性显著增加,在高糖条件下甚至观察到G增加两倍。这些先进方法的结合为关于细胞 - 基质相互作用以及复杂生物系统中ECM力学性质传播的广泛研究开辟了新途径。

重要性声明

细胞在微米长度尺度上感知其周围环境的弹性。为了研究活细胞直接环境中细胞外基质(ECM)的局部弹性,我们采用了先进的多粒子追踪微流变学装置。MPT基于监测示踪粒子的布朗运动,该运动受周围网络限制。因此可以量化网络弹性。克服当前的局限性,我们实现了对成纤维细胞生长过程中ECM弹性的连续研究。此外,干细胞ECM的MPT测量显示成骨分化过程中ECM变硬,脂肪生成分化过程中变软。最后,我们表征了在自然形成二维层的内皮细胞无支架培养物中新分泌的少量精细ECM。

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