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A Nodal-independent and tissue-intrinsic mechanism controls heart-looping chirality

机译:独立于节点的组织内在机制控制手环的手性

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Breaking left–right symmetry in bilateria is a major event during embryo development that is required for asymmetric organ position, directional organ looping and lateralized organ function in the adult. Asymmetric expression of Nodal-related genes is hypothesized to be the driving force behind regulation of organ laterality. Here we identify a Nodal-independent mechanism that drives asymmetric heart looping in zebrafish embryos. In a unique mutant defective for the Nodal-related southpaw gene, preferential dextral looping in the heart is maintained, whereas gut and brain asymmetries are randomized. As genetic and pharmacological inhibition of Nodal signalling does not abolish heart asymmetry, a yet undiscovered mechanism controls heart chirality. This mechanism is tissue intrinsic, as explanted hearts maintain ex vivo retain chiral looping behaviour and require actin polymerization and myosin II activity. We find that Nodal signalling regulates actin gene expression, supporting a model in which Nodal signalling amplifies this tissue-intrinsic mechanism of heart looping.
机译:打破双子座的左右对称性是胚胎发育过程中的重要事件,这是成年人器官位置不对称,器官定向循环和器官功能偏向所必需的。节点相关基因的不对称表达被认为是调节器官侧面的背后驱动力。在这里,我们确定了一个独立的节点机制,该机制可驱动斑马鱼胚胎中的不对称心脏循环。在与节点相关的南爪基因缺陷的独特突变体中,心脏中的优先右旋环得以维持,而肠道和大脑的不对称是随机的。由于Nodal信号的遗传和药理抑制作用不会消除心脏不对称性,因此尚未发现的机制可控制心脏的手性。这种机制是组织固有的,因为离体心脏保持离体保留手性环的行为,并需要肌动蛋白聚合和肌球蛋白II活性。我们发现Nodal信号调节肌动蛋白基因表达,支持其中Nodal信号放大心脏循环的这种组织内在机制的模型。

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