首页> 美国卫生研究院文献>Philosophical Transactions of the Royal Society B: Biological Sciences >From cytoskeletal dynamics to organ asymmetry: a nonlinear regulative pathway underlies left–right patterning
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From cytoskeletal dynamics to organ asymmetry: a nonlinear regulative pathway underlies left–right patterning

机译:从细胞骨架动力学到器官不对称:一种非线性调控途径是左右模式的基础

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摘要

Consistent left–right (LR) asymmetry is a fundamental aspect of the bodyplan across phyla, and errors of laterality form an important class of human birth defects. Its molecular underpinning was first discovered as a sequential pathway of left- and right-sided gene expression that controlled positioning of the heart and visceral organs. Recent data have revised this picture in two important ways. First, the physical origin of chirality has been identified; cytoskeletal dynamics underlie the asymmetry of single-cell behaviour and patterning of the LR axis. Second, the pathway is not linear: early disruptions that alter the normal sidedness of upstream asymmetric genes do not necessarily induce defects in the laterality of the downstream genes or in organ situs. Thus, the LR pathway is a unique example of two fascinating aspects of biology: the interplay of physics and genetics in establishing large-scale anatomy, and regulative (shape-homeostatic) pathways that correct molecular and anatomical errors over time. Here, we review aspects of asymmetry from its intracellular, cytoplasmic origins to the recently uncovered ability of the LR control circuitry to achieve correct gene expression and morphology despite reversals of key ‘determinant’ genes. We provide novel functional data, in Xenopus laevis, on conserved elements of the cytoskeleton that drive asymmetry, and comparatively analyse it together with previously published results in the field. Our new observations and meta-analysis demonstrate that despite aberrant expression of upstream regulatory genes, embryos can progressively normalize transcriptional cascades and anatomical outcomes. LR patterning can thus serve as a paradigm of how subcellular physics and gene expression cooperate to achieve developmental robustness of a body axis.This article is part of the themed issue ‘Provocative questions in left–right asymmetry’.
机译:一致的左右(LR)不对称性是整个门上人体计划的基本方面,而横向误差则是人类出生缺陷的重要类别。它的分子基础首先被发现为控制心脏和内脏器官定位的左右基因表达的顺序途径。最近的数据以两种重要方式修正了这种状况。首先,已经确定了手性的物理来源;细胞骨架动力学是单细胞行为和LR轴模式不对称的基础。其次,途径不是线性的:改变上游不对称基因正常侧面的早期破坏未必会在下游基因的横向性或器官部位引起缺陷。因此,LR途径是生物学两个令人着迷的方面的独特例子:建立大规模解剖结构时物理学和遗传学的相互作用,以及随着时间的推移纠正分子和解剖学错误的调节性途径(形状稳态)。在这里,我们回顾了不对称性的各个方面,从其细胞内,细胞质起源到最近发现的LR控制电路实现正确基因表达和形态的能力,尽管关键的“决定因素”基因发生了逆转。我们在非洲爪蟾中提供驱动非对称性的细胞骨架保守元素的新颖功能数据,并与该领域先前发表的结果进行比较分析。我们的新观察结果和荟萃分析表明,尽管上游调节基因表达异常,胚胎仍可以逐步使转录级联和解剖结果正常化。因此,LR模式可以作为亚细胞物理学和基因表达如何协作以实现体轴发育鲁棒性的范例。本文是主题问题“左右不对称的挑衅性问题”的一部分。

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