Measuring and manipulating mechanical forces during development

IF 19.1 1区 生物学 Q1 CELL BIOLOGY Nature Cell Biology Pub Date : 2025-03-10 DOI:10.1038/s41556-025-01632-x
Clémentine Villeneuve, Kaitlin P. McCreery, Sara A. Wickström
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Abstract

Tissue deformations are a central feature of development, from early embryogenesis, growth and building the body plan to the establishment of functional organs. These deformations often result from active contractile forces generated by cells and cell collectives, and are mediated by changes in their mechanical properties. Mechanical forces drive the formation of functional organ architectures, but they also coordinate cell behaviour and fate transitions, ensuring robustness of development. Advances in microscopy, genetics and chemistry have enabled increasingly powerful tools for measuring, generating and perturbing mechanical forces. Here we discuss approaches to measure and manipulate mechanical forces with a focus on developmental processes, ranging from quantification of molecular interactions to mapping the mechanical properties of tissues. We focus on contemporary methods, and discuss the biological discoveries that these approaches have enabled. We conclude with an outlook to methodologies at the interface of physics, chemistry and biology to build an integrated understanding of tissue morphodynamics. This Review discusses the recent advances in experimental approaches to interrogate the mechanical forces that mediate tissue deformations during development, highlighting the insights afforded at both the cellular and tissue scales.

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在开发过程中测量和操纵机械力
组织变形是发育的核心特征,从早期胚胎发生,生长和建立身体计划到建立功能器官。这些变形通常是由细胞和细胞集体产生的主动收缩力引起的,并由其机械性能的变化介导。机械力驱动功能性器官结构的形成,但它们也协调细胞行为和命运的转变,确保发育的稳健性。显微镜学、遗传学和化学的进步使测量、产生和干扰机械力的工具变得越来越强大。在这里,我们讨论了测量和操纵机械力的方法,重点是发育过程,从分子相互作用的量化到组织机械特性的绘制。我们关注当代方法,并讨论这些方法所带来的生物学发现。最后,我们展望了在物理、化学和生物学界面的方法,以建立对组织形态动力学的综合理解。
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来源期刊
Nature Cell Biology
Nature Cell Biology 生物-细胞生物学
CiteScore
28.40
自引率
0.90%
发文量
219
审稿时长
3 months
期刊介绍: Nature Cell Biology, a prestigious journal, upholds a commitment to publishing papers of the highest quality across all areas of cell biology, with a particular focus on elucidating mechanisms underlying fundamental cell biological processes. The journal's broad scope encompasses various areas of interest, including but not limited to: -Autophagy -Cancer biology -Cell adhesion and migration -Cell cycle and growth -Cell death -Chromatin and epigenetics -Cytoskeletal dynamics -Developmental biology -DNA replication and repair -Mechanisms of human disease -Mechanobiology -Membrane traffic and dynamics -Metabolism -Nuclear organization and dynamics -Organelle biology -Proteolysis and quality control -RNA biology -Signal transduction -Stem cell biology
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