通过能量最小化,张力引导癌细胞在纤维排列上迁移。

IF 12.8 1区 医学 Q1 ENGINEERING, BIOMEDICAL Biomaterials Pub Date : 2024-06-24 DOI:10.1016/j.biomaterials.2024.122682
Matthew R. Zanotelli , Joseph P. Miller , Wenjun Wang , Ismael Ortiz , Elise Tahon , Francois Bordeleau , Cynthia A. Reinhart-King
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引用次数: 0

摘要

在包括转移在内的许多基本生物过程中,细胞迁移需要细胞穿过组织,而组织中的各种机械线索会引导细胞迁移,并决定细胞运动所需的力量和能量。然而,离散结构和机械线索对迁移的影响仍然难以确定,因为它们往往是耦合的。在这里,我们将胶原纤维排列和张力这两种促进侵袭的线索分离开来,研究它们各自对迁移的影响。当出现这两种线索时,细胞会优先沿着与纤维排列相反的张力轴移动。计算和实验数据显示,垂直于纤维排列的张力会增加胶原纤维内储存的势能,从而降低细胞诱导基质变形的要求,并减少迁移过程中的能量消耗。能量最小化可引导迁移轨迹,而张力可促进逆纤维排列方向的迁移。这些发现提供了对纤维基质迁移过程中生物能的概念性理解。
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Tension directs cancer cell migration over fiber alignment through energy minimization

Cell migration during many fundamental biological processes including metastasis requires cells to traverse tissue with heterogeneous mechanical cues that direct migration as well as determine force and energy requirements for motility. However, the influence of discrete structural and mechanical cues on migration remains challenging to determine as they are often coupled. Here, we decouple the pro-invasive cues of collagen fiber alignment and tension to study their individual impact on migration. When presented with both cues, cells preferentially travel in the axis of tension against fiber alignment. Computational and experimental data show applying tension perpendicular to alignment increases potential energy stored within collagen fibers, lowering requirements for cell-induced matrix deformation and energy usage during migration compared to motility in the direction of fiber alignment. Energy minimization directs migration trajectory, and tension can facilitate migration against fiber alignment. These findings provide a conceptual understanding of bioenergetics during migration through a fibrous matrix.

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来源期刊
Biomaterials
Biomaterials 工程技术-材料科学:生物材料
CiteScore
26.00
自引率
2.90%
发文量
565
审稿时长
46 days
期刊介绍: Biomaterials is an international journal covering the science and clinical application of biomaterials. A biomaterial is now defined as a substance that has been engineered to take a form which, alone or as part of a complex system, is used to direct, by control of interactions with components of living systems, the course of any therapeutic or diagnostic procedure. It is the aim of the journal to provide a peer-reviewed forum for the publication of original papers and authoritative review and opinion papers dealing with the most important issues facing the use of biomaterials in clinical practice. The scope of the journal covers the wide range of physical, biological and chemical sciences that underpin the design of biomaterials and the clinical disciplines in which they are used. These sciences include polymer synthesis and characterization, drug and gene vector design, the biology of the host response, immunology and toxicology and self assembly at the nanoscale. Clinical applications include the therapies of medical technology and regenerative medicine in all clinical disciplines, and diagnostic systems that reply on innovative contrast and sensing agents. The journal is relevant to areas such as cancer diagnosis and therapy, implantable devices, drug delivery systems, gene vectors, bionanotechnology and tissue engineering.
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