Canalization of circuit assembly by δ-protocadherins in the zebrafish optic tectum.

Sayantanee Biswas, Michelle R Emond, Grace S Philip, James D Jontes
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Abstract

Neurons are precisely and reproducibly assembled into complex networks during development. How genes collaborate to guide this assembly remains an enduring mystery. In humans, large numbers of genes have been implicated in neurodevelopmental disorders that are characterized by variable and overlapping phenotypes. The complexity of the brain, the large number of genes involved and the heterogeneity of the disorders makes understanding the relationships between genes, development and neural function challenging. Waddington suggested the concept of canalization to describe the role of genes in shaping developmental trajectories that lead to precise outcomes1. Here, we show that members of the δ-protocadherin family of homophilic adhesion molecules, Protocadherin-19 and Protocadherin-17, contribute to developmental canalization of visual circuit assembly in the zebrafish. We provided oriented visual stimuli to zebrafish larvae and performed in vivo 2-photon calcium imaging in the optic tectum. The latent dynamics resulting from the population activity were confined to a conserved manifold. Among different wild type larvae, these dynamics were remarkably similar, allowing quantitative comparisons within and among genotypes. In both Protocadherin-19 and Protocadherin-17 mutants, the latent dynamics diverged from wild type. Importantly, these deviations could be averaged away, suggesting that the loss of these adhesion molecules leads to stochastic phenotypic variability and introduced disruptions of circuit organization that varied among individual mutants. These results provide a specific, quantitative example of canalization in the development of a vertebrate neural circuit, and suggest a framework for understanding the observed variability in complex brain disorders.

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斑马鱼光学顶盖中δ-原钙粘蛋白对电路组装的传导作用。
神经元在发育过程中精确地、可重复地组装成复杂的网络。基因如何协同引导这种组合仍然是一个谜。在人类中,大量基因与以可变和重叠表型为特征的神经发育障碍有关。大脑的复杂性,涉及的大量基因和疾病的异质性使得理解基因、发育和神经功能之间的关系具有挑战性。Waddington提出了管道化的概念来描述基因在形成导致精确结果的发育轨迹中的作用。在这里,我们发现亲同质粘附分子δ-原钙粘蛋白家族的成员,原钙粘蛋白-19和原钙粘蛋白-17,有助于斑马鱼视觉回路组装的发育管道化。我们对斑马鱼幼体进行定向视觉刺激,并对其视神经顶盖进行体内双光子钙成像。由种群活动引起的潜在动力被限制在一个保守的流形中。在不同的野生型幼虫中,这些动态非常相似,可以在基因型内部和基因型之间进行定量比较。在原cadherin-19和原cadherin-17突变体中,潜在动力学与野生型不同。重要的是,这些偏差可以被平均掉,这表明这些粘附分子的丢失导致了随机的表型变异,并引入了在个体突变体之间变化的电路组织的中断。这些结果提供了脊椎动物神经回路发育过程中通道化的具体定量例子,并为理解复杂脑部疾病中观察到的变异性提供了一个框架。
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