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光驱动生物执行器探测 3D 微组织的流变学。

Light-driven biological actuators to probe the rheology of 3D microtissues.

机构信息

Laboratory of Interdisciplinary Physics (LIPhy), University Grenoble Alpes, CNRS, F-38000, Grenoble, France.

出版信息

Nat Commun. 2023 Feb 9;14(1):717. doi: 10.1038/s41467-023-36371-w.

Abstract

The mechanical properties of biological tissues are key to their physical integrity and function. Although external loading or biochemical treatments allow the estimation of these properties globally, it remains difficult to assess how such external stimuli compare with cell-generated contractions. Here we engineer microtissues composed of optogenetically-modified fibroblasts encapsulated within collagen. Using light to control the activity of RhoA, a major regulator of cellular contractility, we induce local contractions within microtissues, while monitoring microtissue stress and strain. We investigate the regulation of these local contractions and their spatio-temporal distribution. We demonstrate the potential of our technique for quantifying tissue elasticity and strain propagation, before examining the possibility of using light to create and map local anisotropies in mechanically heterogeneous microtissues. Altogether, our results open an avenue to guide the formation of tissues while non-destructively charting their rheology in real time, using their own constituting cells as internal actuators.

摘要

生物组织的力学特性是其物理完整性和功能的关键。尽管外部加载或生化处理可以全局估计这些特性,但仍然难以评估这些外部刺激与细胞产生的收缩如何进行比较。在这里,我们通过将光遗传学修饰的成纤维细胞包封在胶原蛋白中来构建微组织。利用光来控制 RhoA 的活性,RhoA 是细胞收缩性的主要调节剂,我们可以在微组织内诱导局部收缩,同时监测微组织的应力和应变。我们研究了这些局部收缩的调节及其时空分布。在研究用光来在机械异质的微组织中创建和映射局部各向异性的可能性之前,我们首先展示了我们的技术在量化组织弹性和应变传播方面的潜力。总的来说,我们的研究结果为引导组织形成开辟了一条途径,同时可以使用其自身组成细胞作为内部致动器,非破坏性地实时绘制其流变学图谱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3d3/9911700/d4d238fff4f4/41467_2023_36371_Fig1_HTML.jpg

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