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间充质干细胞感知纳米材料和界面的硬度。

Mesenchymal Stem Cells Sense the Toughness of Nanomaterials and Interfaces.

机构信息

Institute of Bioengineering, Queen Mary University of London, Mile End Road, E1 4NS, London, UK.

Cellular and Molecular Biomechanical Laboratory, Department of Bioengineering, Imperial College London, London, SW7 2AZ, UK.

出版信息

Adv Healthc Mater. 2023 May;12(13):e2203297. doi: 10.1002/adhm.202203297. Epub 2023 Feb 21.

Abstract

Stem cells are known to sense and respond to the mechanical properties of biomaterials. In turn, cells exert forces on their environment that can lead to striking changes in shape, size and contraction of associated tissues, and may result in mechanical disruption and functional failure. However, no study has so far correlated stem cell phenotype and biomaterials toughness. Indeed, disentangling toughness-mediated cell response from other mechanosensing processes has remained elusive as it is particularly challenging to uncouple Youngs' or shear moduli from toughness, within a range relevant to cell-generated forces. In this report, it is shown how the design of the macromolecular architecture of polymer nanosheets regulates interfacial toughness, independently of interfacial shear storage modulus, and how this controls the expansion of mesenchymal stem cells at liquid interfaces. The viscoelasticity and toughness of poly(l-lysine) nanosheets assembled at liquid-liquid interfaces is characterised via interfacial shear rheology. The local (microscale) mechanics of nanosheets are characterised via magnetic tweezer-assisted interfacial microrheology and the thickness of these assemblies is determined from in situ ellipsometry. Finally, the response of mesenchymal stem cells to adhesion and culture at corresponding interfaces is investigated via immunostaining and confocal microscopy.

摘要

干细胞能够感知和响应生物材料的机械性能。反过来,细胞对其环境施加力,这可能导致相关组织的形状、大小和收缩发生显著变化,并可能导致机械破坏和功能失效。然而,迄今为止,没有研究将干细胞表型与生物材料韧性相关联。事实上,由于很难将杨氏模量或剪切模量与韧性在与细胞产生的力相关的范围内解耦,因此从其他机械传感过程中分离出韧性介导的细胞反应仍然难以捉摸。在本报告中,展示了聚合物纳米片的大分子结构设计如何独立于界面剪切储能模量来调节界面韧性,以及如何控制间充质干细胞在液-液界面的扩展。通过界面剪切流变学来表征聚(L-赖氨酸)纳米片在液-液界面组装的粘弹性和韧性。通过磁镊辅助界面微流变学来表征纳米片的局部(微观尺度)力学,通过原位椭圆测量法确定这些组装体的厚度。最后,通过免疫染色和共聚焦显微镜研究间充质干细胞在相应界面上的粘附和培养反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/33ab/11468436/ff94400afff8/ADHM-12-2203297-g004.jpg

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