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粘菌盘基网柄菌的 IplA Ca2+ 通道对于通过 Ca2+ 而不是通过 cAMP 介导的趋化作用是必需的,并且在自然聚集中具有基本作用。

The IplA Ca2+ channel of Dictyostelium discoideum is necessary for chemotaxis mediated through Ca2+, but not through cAMP, and has a fundamental role in natural aggregation.

机构信息

W M Keck Dynamic Image Analysis Facility, Department of Biology, University of Iowa, Iowa City, IA 52242, USA.

出版信息

J Cell Sci. 2012 Apr 1;125(Pt 7):1770-83. doi: 10.1242/jcs.098301. Epub 2012 Feb 28.

Abstract

During aggregation of Dictyostelium discoideum, nondissipating, symmetrical, outwardly moving waves of cAMP direct cells towards aggregation centers. It has been assumed that the spatial and temporal characteristics of the front and back of each cAMP wave regulate both chemokinesis and chemotaxis. However, during the period preceding aggregation, cells acquire not only the capacity to chemotax in a spatial gradient of cAMP, but also in a spatial gradient of Ca(2+). The null mutant of the putative IplA Ca(2+) channel gene, iplA(-), undergoes normal chemotaxis in spatial gradients of cAMP and normal chemokinetic responses to increasing temporal gradients of cAMP, both generated in vitro. However, iplA(-) cells lose the capacity to undergo chemotaxis in response to a spatial gradient of Ca(2+), suggesting that IplA is either the Ca(2+) chemotaxis receptor or an essential component of the Ca(2+) chemotaxis regulatory pathway. In response to natural chemotactic waves generated by wild-type cells, the chemokinetic response of iplA(-) cells to the temporal dynamics of the cAMP wave is intact, but the capacity to reorient in the direction of the aggregation center at the onset of each wave is lost. These results suggest that transient Ca(2+) gradients formed between cells at the onset of each natural cAMP wave augment reorientation towards the aggregation center. If this hypothesis proves correct, it will provide a more complex contextual framework for interpreting D. discoideum chemotaxis.

摘要

在聚集过程中,Dictyostelium discoideum 中非耗散的、对称的、向外移动的 cAMP 波将细胞引导至聚集中心。人们假设,每个 cAMP 波的前后的空间和时间特征调节趋化运动和趋化性。然而,在聚集之前的时期,细胞不仅获得了在 cAMP 空间梯度中趋化的能力,而且还获得了在 Ca(2+) 空间梯度中趋化的能力。假定的 IplA Ca(2+) 通道基因的缺失突变体 iplA(-),在体外产生的 cAMP 空间梯度和 cAMP 时间梯度增加的趋化运动中,表现出正常的趋化性和正常的趋动反应。然而,iplA(-)细胞失去了对 Ca(2+) 空间梯度的趋化性,这表明 IplA 是 Ca(2+) 趋化性受体或 Ca(2+) 趋化性调节途径的必需组成部分。对野生型细胞产生的天然趋化波的反应,iplA(-)细胞对 cAMP 波时间动态的趋动反应是完整的,但在每个波开始时重新定向到聚集中心的能力丧失。这些结果表明,在每个天然 cAMP 波开始时形成的细胞之间的短暂 Ca(2+) 梯度增强了重新定向到聚集中心的能力。如果这一假设被证明是正确的,它将为解释 D. discoideum 趋化性提供一个更复杂的上下文框架。

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