模拟共轴性、细胞插入和组织几何在爪蟾中胚层细胞集体迁移中的作用。

IF 1.8 4区 生物学 Q3 BIOLOGY Biology Open Pub Date : 2024-08-15 Epub Date: 2024-08-19 DOI:10.1242/bio.060615
Tien Comlekoglu, Bette J Dzamba, Gustavo G Pacheco, David R Shook, T J Sego, James A Glazier, Shayn M Peirce, Douglas W DeSimone
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引用次数: 0

摘要

集体迁移的爪蟾中胚层细胞被排列成具有不同粘附特性和突起行为的前排和后排。在体内,前排中胚层细胞伸出极化的突起,并沿着由囊顶细胞组装的纤维粘连蛋白基质迁移。前排产生的牵引应力导致附着的后排细胞向前牵引。从胚胎中取出的中胚层外植体为表征细胞的集体运动和行为提供了一个易于实验的系统,但负责这种迁移模式的细胞机制仍然难以捉摸。我们在 Cellular-Potts 计算框架中引入了一个基于代理的新型中胚层迁移计算模型,以研究多个参数对领导行细胞和跟随行细胞行为的各自贡献。敏感性分析表明,内聚轴性、组织几何形状和细胞插层是影响集体迁移细胞迁移速度的关键参数。该模型预测,内聚轴性和组织几何形状共同促进了领头细胞的合作迁移,从而提高了集体迁移的速度。细胞向基底的径向穿插是提高组织迁移速度的另一个机制。使用中胚层组织外植体对模型结果进行了实验验证。
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Modeling the roles of cohesotaxis, cell-intercalation, and tissue geometry in collective cell migration of Xenopus mesendoderm.

Collectively migrating Xenopus mesendoderm cells are arranged into leader and follower rows with distinct adhesive properties and protrusive behaviors. In vivo, leading row mesendoderm cells extend polarized protrusions and migrate along a fibronectin matrix assembled by blastocoel roof cells. Traction stresses generated at the leading row result in the pulling forward of attached follower row cells. Mesendoderm explants removed from embryos provide an experimentally tractable system for characterizing collective cell movements and behaviors, yet the cellular mechanisms responsible for this mode of migration remain elusive. We introduce a novel agent-based computational model of migrating mesendoderm in the Cellular-Potts computational framework to investigate the respective contributions of multiple parameters specific to the behaviors of leader and follower row cells. Sensitivity analyses identify cohesotaxis, tissue geometry, and cell intercalation as key parameters affecting the migration velocity of collectively migrating cells. The model predicts that cohesotaxis and tissue geometry in combination promote cooperative migration of leader cells resulting in increased migration velocity of the collective. Radial intercalation of cells towards the substrate is an additional mechanism contributing to an increase in migratory speed of the tissue. Model outcomes are validated experimentally using mesendoderm tissue explants.

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来源期刊
Biology Open
Biology Open BIOLOGY-
CiteScore
3.90
自引率
0.00%
发文量
162
审稿时长
8 weeks
期刊介绍: Biology Open (BiO) is an online Open Access journal that publishes peer-reviewed original research across all aspects of the biological sciences. BiO aims to provide rapid publication for scientifically sound observations and valid conclusions, without a requirement for perceived impact.
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