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排列的胶原纤维驱动不同的牵引力特征以调节接触导向。

Aligned Collagen Fibers Drive Distinct Traction Force Signatures to Regulate Contact Guidance.

作者信息

Niraula Gopal, Foroozandehfar Azarnoosh, Namanda Fred Rogers, Schneider Ian Christopher

机构信息

Department of Chemical and Biological Engineering, Iowa State University, 2114 Sweeney Hall, Ames, Iowa 50011, United States.

Molecular, Cellular and Developmental Biology Program, Iowa State University, Ames, Iowa 50011, United States.

出版信息

ACS Nano. 2025 Aug 26;19(33):30165-30185. doi: 10.1021/acsnano.5c06736. Epub 2025 Aug 14.

Abstract

Cellular forces on deposited nonfibrillar extracellular matrix (ECM) have been measured extensively. However, , cells exert traction forces on collagen fibers within the ECM. Oftentimes, collagen fibers are aligned, as seen in cancer, fibrosis, and during wound healing. How forces are transmitted on aligned collagen fibers and how the cytoskeleton regulates this is unknown. Here, we develop a fiber-traction force microscopy (f-TFM) approach that uses collagen fibers transferred to flexible substrates with fiducial markers on the collagen fibers and in the underlying flexible substrates. We find that the elastic modulus of the substrate determines the steady-state traction stress exerted by cells on aligned collagen fibers but does not affect traction force kinetics. Collagen fiber networks result in higher traction stresses than adsorbed collagen, particularly for randomly oriented fibers. In cells that weakly contact guide, formins and Arp2/3 modulate traction stress differently, with formins increasing traction stress magnitude, while Arp2/3 increases traction stress kinetics. However, both are important in driving traction force increases during cell turning on aligned collagen fibers. In cells that strongly contact guide, Arp2/3 and formins are less important than myosin II. In addition, there is a positive correlation between traction force and directionality on aligned collagen fibers for modest cell alignment. Further increases in traction stress are not required for high cell alignment. These findings underscore the complex interplay between the mechanics of collagen fiber networks, cytoskeletal regulators, and cellular traction forces, providing insights into how cells navigate complex fiber networks during migration.

摘要

已经对沉积的非纤维状细胞外基质(ECM)上的细胞力进行了广泛测量。然而,细胞会对ECM内的胶原纤维施加牵引力。在癌症、纤维化以及伤口愈合过程中,常常可以看到胶原纤维是排列整齐的。力是如何在排列整齐的胶原纤维上传递的,以及细胞骨架如何调节这一过程尚不清楚。在这里,我们开发了一种纤维牵引力显微镜(f-TFM)方法,该方法使用转移到柔性基板上的胶原纤维,胶原纤维和下面的柔性基板上带有基准标记。我们发现,基板的弹性模量决定了细胞对排列整齐的胶原纤维施加的稳态牵引应力,但不影响牵引力动力学。胶原纤维网络比吸附的胶原产生更高的牵引应力,特别是对于随机取向的纤维。在与引导物弱接触的细胞中,formin和Arp2/3对牵引应力的调节方式不同,formin增加牵引应力的大小,而Arp2/3增加牵引应力的动力学。然而,在细胞在排列整齐的胶原纤维上转向期间,两者对于驱动牵引力增加都很重要。在与引导物强接触的细胞中,Arp2/3和formin比肌球蛋白II的重要性要小。此外,对于适度的细胞排列,牵引力与排列整齐的胶原纤维上的方向性之间存在正相关。对于高度的细胞排列,不需要进一步增加牵引应力。这些发现强调了胶原纤维网络力学、细胞骨架调节因子和细胞牵引力之间复杂的相互作用,为细胞在迁移过程中如何在复杂的纤维网络中导航提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c6f/12392734/74e90ab4ca52/nn5c06736_0001.jpg

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