Department of Surgery, Center for Bioengineering and Tissue Regeneration, University of California San Francisco, San Francisco, CA, USA.
Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA.
EMBO J. 2022 Sep 1;41(17):e109205. doi: 10.15252/embj.2021109205. Epub 2022 Jul 25.
Patient-derived organoids and cellular spheroids recapitulate tissue physiology with remarkable fidelity. We investigated how engagement with a reconstituted basement membrane in three dimensions (3D) supports the polarized, stress resilient tissue phenotype of mammary epithelial spheroids. Cells interacting with reconstituted basement membrane in 3D had reduced levels of total and actin-associated filamin and decreased cortical actin tension that increased plasma membrane protrusions to promote negative plasma membrane curvature and plasma membrane protein associations linked to protein secretion. By contrast, cells engaging a reconstituted basement membrane in 2D had high cortical actin tension that forced filamin unfolding and endoplasmic reticulum (ER) associations. Enhanced filamin-ER interactions increased levels of PKR-like ER kinase effectors and ER-plasma membrane contact sites that compromised calcium homeostasis and diminished cell viability. Consequently, cells with decreased cortical actin tension had reduced ER stress and survived better. Consistently, cortical actin tension in cellular spheroids regulated polarized basement membrane membrane deposition and sensitivity to exogenous stress. The findings implicate cortical actin tension-mediated filamin unfolding in ER function and underscore the importance of tissue mechanics in organoid homeostasis.
患者来源的类器官和细胞球体以极高的忠实度再现了组织生理学。我们研究了与重建的三维(3D)基底膜相互作用如何支持乳腺上皮球体的极化、抗应激组织表型。与 3D 中重建基底膜相互作用的细胞中,总肌动蛋白相关细丝蛋白和皮质肌动蛋白张力降低,这增加了质膜突起,以促进负质膜曲率和与蛋白质分泌相关的质膜蛋白结合。相比之下,与 2D 中重建基底膜相互作用的细胞具有高皮质肌动蛋白张力,迫使细丝蛋白展开和内质网(ER)结合。增强的细丝蛋白-ER 相互作用增加了 PKR 样 ER 激酶效应物和 ER-质膜接触位点的水平,破坏了钙稳态并降低了细胞活力。因此,皮质肌动蛋白张力降低的细胞减少了 ER 应激并更好地存活。一致地,细胞球体中的皮质肌动蛋白张力调节极化基底膜的沉积和对外源应激的敏感性。这些发现表明皮质肌动蛋白张力介导的细丝蛋白展开在 ER 功能中起作用,并强调了组织力学在类器官动态平衡中的重要性。