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三维细胞迁移的机制。

Mechanisms of 3D cell migration.

机构信息

Cell Biology Section, Division of Intramural Research, National Institute of Dental and Craniofacial Research, National Institutes of Health, Bethesda, MD, USA.

Institute of Science and Technology Austria, Klosterneuburg, Austria.

出版信息

Nat Rev Mol Cell Biol. 2019 Dec;20(12):738-752. doi: 10.1038/s41580-019-0172-9. Epub 2019 Oct 3.

Abstract

Cell migration is essential for physiological processes as diverse as development, immune defence and wound healing. It is also a hallmark of cancer malignancy. Thousands of publications have elucidated detailed molecular and biophysical mechanisms of cultured cells migrating on flat, 2D substrates of glass and plastic. However, much less is known about how cells successfully navigate the complex 3D environments of living tissues. In these more complex, native environments, cells use multiple modes of migration, including mesenchymal, amoeboid, lobopodial and collective, and these are governed by the local extracellular microenvironment, specific modalities of Rho GTPase signalling and non-muscle myosin contractility. Migration through 3D environments is challenging because it requires the cell to squeeze through complex or dense extracellular structures. Doing so requires specific cellular adaptations to mechanical features of the extracellular matrix (ECM) or its remodelling. In addition, besides navigating through diverse ECM environments and overcoming extracellular barriers, cells often interact with neighbouring cells and tissues through physical and signalling interactions. Accordingly, cells need to call on an impressively wide diversity of mechanisms to meet these challenges. This Review examines how cells use both classical and novel mechanisms of locomotion as they traverse challenging 3D matrices and cellular environments. It focuses on principles rather than details of migratory mechanisms and draws comparisons between 1D, 2D and 3D migration.

摘要

细胞迁移对于发育、免疫防御和伤口愈合等多种生理过程至关重要。它也是癌症恶性的标志。成千上万的出版物已经阐明了培养细胞在玻璃和塑料等 2D 平面基底上迁移的详细分子和生物物理机制。然而,对于细胞如何成功地在活组织的复杂 3D 环境中导航,人们知之甚少。在这些更复杂、更自然的环境中,细胞使用多种迁移模式,包括间质、阿米巴样、片状和集体迁移,这些模式受局部细胞外微环境、特定的 Rho GTPase 信号模式和非肌肉肌球蛋白收缩性的控制。细胞在 3D 环境中迁移具有挑战性,因为它需要细胞穿过复杂或密集的细胞外结构。要做到这一点,需要细胞对细胞外基质(ECM)的机械特性或其重塑具有特定的适应性。此外,除了在不同的 ECM 环境中导航和克服细胞外障碍外,细胞还经常通过物理和信号相互作用与邻近的细胞和组织相互作用。因此,细胞需要调用令人印象深刻的广泛的机制来应对这些挑战。这篇综述探讨了细胞如何在穿越具有挑战性的 3D 基质和细胞环境时使用经典和新颖的运动机制。它侧重于迁移机制的原理而不是细节,并对 1D、2D 和 3D 迁移进行了比较。

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