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解析多细胞系统中流动诱导的自体趋化作用中的复杂运输模式。

Decoding complex transport patterns in flow-induced autologous chemotaxis of multicellular systems.

作者信息

Paspunurwar Aditya Shankar, Gomez Hector

机构信息

School of Mechanical Engineering, Purdue University, 585 Purdue Mall, West Lafayette, 47907, IN, USA.

Weldon School of Biomedical Engineering, Purdue University, 206 S. Martin Jischke Drive, West Lafayette, 47907, IN, USA.

出版信息

Biomech Model Mechanobiol. 2025 Feb;24(1):197-212. doi: 10.1007/s10237-024-01905-8. Epub 2024 Dec 5.

Abstract

Cell migration via autologous chemotaxis in the presence of interstitial fluid flow is important in cancer metastasis and embryonic development. Despite significant recent progress, our understanding of flow-induced autologous chemotaxis of multicellular systems remains poor. The literature presents inconsistent findings regarding the effectiveness of collective autologous chemotaxis of densely packed cells under interstitial fluid flow. Here, we present a high-fidelity computational model to analyze the migration of multicellular systems performing autologous chemotaxis in the presence of interstitial fluid flow. Our simulations show that the details of the complex transport dynamics of the chemoattractant and fluid flow patterns that occur in the extracellular space, previously overlooked, are essential to understand this cell migration mechanism. We find that, although flow-induced autologous chemotaxis is a robust migration mechanism for individual cells, the cell-cell interactions that occur in multicellular systems render autologous chemotaxis an inefficient mechanism of collective cell migration. Our results offer new perspectives on the potential role of autologous chemotaxis in the tumor microenvironment, where fluid flow is an important modulator of transport.

摘要

在间质液流动情况下,细胞通过自体趋化作用进行迁移在癌症转移和胚胎发育过程中具有重要意义。尽管近期取得了显著进展,但我们对间质液流动下多细胞系统的流动诱导自体趋化作用仍了解不足。关于间质液流动下紧密堆积细胞的集体自体趋化作用的有效性,文献给出了不一致的研究结果。在此,我们提出一个高保真计算模型,用于分析在间质液流动情况下进行自体趋化作用的多细胞系统的迁移。我们的模拟结果表明,此前被忽视的细胞外空间中化学引诱剂复杂传输动力学和流体流动模式的细节,对于理解这种细胞迁移机制至关重要。我们发现,虽然流动诱导自体趋化作用是单个细胞的一种强大迁移机制,但多细胞系统中发生的细胞 - 细胞相互作用使自体趋化作用成为集体细胞迁移的低效机制。我们的研究结果为自体趋化作用在肿瘤微环境中的潜在作用提供了新的视角,在肿瘤微环境中,流体流动是传输的重要调节因素。

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