论文标题
领导者电池驱动的上皮纸指法
Leader-cell-driven epithelial sheet fingering
论文作者
论文摘要
在许多生物学过程中,集体细胞迁移至关重要,例如伤口愈合,组织形态发生和肿瘤进展。集体迁移的上皮细胞层的领先前部通常会破坏多细胞手指样突起,每个突起都由指尖的领导者引导。在这里,我们开发了这种指法不稳定性的基于亚细胞的基于亚细胞的模型,该模型结合了上皮细胞单层的领导者细胞和其他相关特性。我们的模型恢复了动力学的多个方面,尤其是在MDCK细胞上的实验中观察到的牵引力模式和速度场。我们的模型预测了领导者细胞的必要性及其最小功能,以形成和维护稳定的手指模式。同时,我们的模型允许分析超细胞肌动蛋白电缆在领先方面的作用,这预测,尽管这种观察到的结构有助于维持手指的形状,但为了形成手指并不需要。此外,我们还研究了连续活性流体模型的背景下的驱动不稳定性,这证明了我们在计算方法中的某些假设是合理的。特别是,我们表明,在我们的模型中,没有手指突起在表型均匀的活性流体中出现,因此领导细胞及其追随者的作用通常至关重要。
Collective cell migration is crucial in many biological processes such as wound healing, tissue morphogenesis, and tumor progression. The leading front of a collective migrating epithelial cell layer often destabilizes into multicellular finger-like protrusions, each of which is guided by a leader cell at the fingertip. Here, we develop a subcellular-element-based model of this fingering instability, which incorporates leader cells and other related properties of a monolayer of epithelial cells. Our model recovers multiple aspects of the dynamics, especially the traction force patterns and velocity fields, observed in experiments on MDCK cells. Our model predicts the necessity of the leader cell and its minimal functions for the formation and maintenance of a stable finger pattern. Meanwhile, our model allows for an analysis of the role of supra-cellular actin cable on the leading front, predicting that while this observed structure helps maintain the shape of the finger, it is not required in order to form a finger. In addition, we also study the driving instability in the context of continuum active fluid model, which justifies some of our assumptions in the computational approach. In particular, we show that in our model no finger protrusions would emerge in a phenotypically homogenous active fluid and hence the role of the leader cell and its followers are often critical.