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脊椎动物卵中的皮质活动。I:激活波。

Cortical activity in vertebrate eggs. I: The activation waves.

作者信息

Cheer A, Vincent J P, Nuccitelli R, Oster G

机构信息

Department of Mathematics, University of California, Davis 95616.

出版信息

J Theor Biol. 1987 Feb 21;124(4):377-404. doi: 10.1016/s0022-5193(87)80217-5.

Abstract

We present a physical model for the propagation of chemical and mechanical waves on the surface of vertebrate eggs. As a first step we analyzed the propagation of the calcium wave observed to sweep over the surface of the Medaka egg (Gilkey et al., 1978). It has been assumed that this wave is driven by a mechanism of calcium-stimulated-calcium-release. By formulating this hypothesis mathematically we can use the observed wavefront data to obtain a map of cortical reactivity. This map indicates a gradient of reactivity along the egg: highest in the animal hemisphere and tapering off towards the vegetal hemisphere. The cortex of Xenopus eggs is also capable of propagating a calcium wave (Busa & Nuccitelli, 1985). At about the same time a wave of expansion followed by a wave of contraction sweeps across the egg surface (Takeichi et al., 1984). We have proposed a mechanism for this wave pair based on the physical chemistry of actomyosin gels. The calcium wave activates solation factors which sever some of the actin chains which leads to an osmotic swelling of the gel. Calcium also activates the contractile machinery of the actomyosin system which causes the gel to contract. The contraction lags the swelling because of the nature of the kinetics: solation and swelling is a more rapid process than contraction. By writing the equations for gel expansion and contraction we can mimic the mechanical and chemical wave propagation by a computer simulation. If the model is correct this provides a method for using the waves as a diagnostic of the mechanochemical properties of the egg cortex.

摘要

我们提出了一个关于化学波和机械波在脊椎动物卵表面传播的物理模型。作为第一步,我们分析了观察到的在青鳉卵表面扫过的钙波的传播情况(吉尔基等人,1978年)。人们认为这种波是由钙刺激钙释放机制驱动的。通过用数学方式阐述这一假设,我们可以利用观察到的波前数据来获得皮质反应性图谱。该图谱显示了沿卵的反应性梯度:在动物半球最高,并向植物半球逐渐减弱。非洲爪蟾卵的皮质也能够传播钙波(布萨和努奇泰利,1985年)。大约在同一时间,先是一波扩张然后是一波收缩扫过卵表面(竹内等人,1984年)。我们基于肌动球蛋白凝胶的物理化学性质提出了这一波对的机制。钙波激活溶胶化因子,这些因子切断一些肌动蛋白链,导致凝胶的渗透膨胀。钙还激活肌动球蛋白系统的收缩机制,使凝胶收缩。由于动力学的性质,收缩滞后于膨胀:溶胶化和膨胀是比收缩更快的过程。通过写出凝胶膨胀和收缩的方程,我们可以通过计算机模拟来模拟机械波和化学波的传播。如果该模型正确,这提供了一种利用这些波来诊断卵皮质机械化学性质的方法。

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