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Patterning of wound-induced intercellular Ca2+ flashes in a developing epithelium

机译:伤口上皮细胞中伤口诱导的细胞间Ca2 +闪烁的模式

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Differential mechanical force distributions are increasingly recognized to provide important feedback into the control of an organ's final size and shape. As a second messenger that integrates and relays mechanical information to the cell, calcium ions (Ca2+) are a prime candidate for providing important information on both the overall mechanical state of the tissue and resulting behavior at the individual-cell level during development. Still, how the spatiotemporal properties of Ca2+ transients reflect the underlying mechanical characteristics of tissues is still poorly understood. Here we use an established model system of an epithelial tissue, the Drosophila wing imaginal disc, to investigate how tissue properties impact the propagation of Ca2+ transients induced by laser ablation. The resulting intercellular Ca2+ flash is found to be mediated by inositol 1,4,5-trisphosphate and depends on gap junction communication. Further, we find that intercellular Ca2+ transients show spatially non-uniform characteristics across the proximal-distal axis of the larval wing imaginal disc, which exhibit a gradient in cell size and anisotropy. A computational model of Ca2+ transients is employed to identify the principle factors explaining the spatiotemporal patterning dynamics of intercellular Ca2+ flashes. The relative Ca2+ flash anisotropy is principally explained by local cell shape anisotropy. Further, Ca2+ velocities are relatively uniform throughout the wing disc, irrespective of cell size or anisotropy. This can be explained by the opposing effects of cell diameter and cell elongation on intercellular Ca2+ propagation. Thus, intercellular Ca2+ transients follow lines of mechanical tension at velocities that are largely independent of tissue heterogeneity and reflect the mechanical state of the underlying tissue.
机译:越来越多地认识到不同的机械力分布可为控制器官的最终大小和形状提供重要的反馈。作为将机械信息整合并传递到细胞的第二信使,钙离子(Ca2 +)是提供有关组织整体机械状态以及发育过程中单个细胞水平行为的重要信息的主要候选对象。尽管如此,Ca 2+瞬态的时空特性如何反映组织的潜在机械特性仍知之甚少。在这里,我们使用上皮组织,果蝇翅假想盘的建立的模型系统,以调查组织特性如何影响激光烧蚀诱导的Ca2 +瞬变的传播。发现产生的细胞间Ca 2+闪光是由肌醇1,4,5-三磷酸介导的,并取决于间隙连接通讯。此外,我们发现,细胞间Ca 2+瞬变在幼虫翅假想盘的近-远轴上显示出空间上不均匀的特征,其在细胞大小和各向异性上表现出梯度。使用Ca2 +瞬态的计算模型来确定解释细胞间Ca2 +闪烁的时空模式动力学的主要因素。相对的Ca2 +闪光各向异性主要由局部晶胞形状各向异性来解释。此外,Ca2 +速度在整个翼盘上相对均匀,而与细胞大小或各向异性无关。这可以通过细胞直径和细胞伸长对细胞间Ca2 +传播的相反影响来解释。因此,细胞间Ca 2+瞬变遵循机械张力线,该速度在很大程度上独立于组织异质性并反映了下层组织的机械状态。

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