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接触抑制运动的精度限制。

Limits on the accuracy of contact inhibition of locomotion.

机构信息

Department of Physics and Astronomy, Johns Hopkins University, Baltimore, Maryland 21218, USA.

Department of Biophysics, Johns Hopkins University, Baltimore, Maryland 21218, USA.

出版信息

Phys Rev E. 2024 May;109(5-1):054408. doi: 10.1103/PhysRevE.109.054408.

Abstract

Cells that collide with each other repolarize away from contact, in a process called contact inhibition of locomotion (CIL), which is necessary for correct development of the embryo. CIL can occur even when cells make a micron-scale contact with a neighbor-much smaller than their size. How precisely can a cell sense cell-cell contact and repolarize in the correct direction? What factors control whether a cell recognizes it has contacted a neighbor? We propose a theoretical model for the limits of CIL where cells recognize the presence of another cell by binding the protein ephrin with the Eph receptor. This recognition is made difficult by the presence of interfering ligands that bind nonspecifically. Both theoretical predictions and simulation results show that it becomes more difficult to sense cell-cell contact when it is difficult to distinguish ephrin from the interfering ligands, or when there are more interfering ligands, or when the contact width decreases. However, the error of estimating contact position remains almost constant when the contact width changes. This happens because the cell gains spatial information largely from the boundaries of cell-cell contact. We study using statistical decision theory the likelihood of a false-positive CIL event in the absence of cell-cell contact, and the likelihood of a false negative where CIL does not occur when another cell is present. Our results suggest that the cell is more likely to make incorrect decisions when the contact width is very small or so large that it nears the cell's perimeter. However, in general, we find that cells have the ability to make reasonably reliable CIL decisions even for very narrow (micron-scale) contacts, even if the concentration of interfering ligands is ten times that of the correct ligands.

摘要

细胞之间发生碰撞时会彼此远离并重新极化,这一过程称为细胞接触抑制运动(CIL),对于胚胎的正确发育是必需的。即使细胞与相邻细胞发生微米级别的接触(远小于细胞本身的大小),CIL 也会发生。细胞如何精确地感知细胞间的接触并朝着正确的方向重新极化?哪些因素控制细胞是否识别到它已经接触到了相邻细胞?我们提出了一个理论模型,用于限制 CIL 的范围,其中细胞通过结合蛋白 Ephrin 与 Eph 受体来识别另一个细胞的存在。这种识别由于存在非特异性结合的干扰配体而变得困难。理论预测和模拟结果均表明,当 Ephrin 与干扰配体难以区分,或者干扰配体较多,或者接触宽度减小时,细胞感知细胞间接触变得更加困难。然而,当接触宽度发生变化时,估计接触位置的误差几乎保持不变。这是因为细胞主要从细胞间接触的边界获取空间信息。我们使用统计决策理论研究了在不存在细胞间接触的情况下,错误的 CIL 事件发生的可能性,以及当存在另一个细胞时 CIL 未发生的错误的可能性。我们的结果表明,当接触宽度非常小或非常大接近细胞周长时,细胞更有可能做出错误的决定。然而,总的来说,我们发现即使在非常狭窄的(微米级)接触情况下,即使干扰配体的浓度是正确配体的十倍,细胞也有能力做出合理可靠的 CIL 决策。

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