Quantification of Behavioral Deficits in Developing Mice With Dystonic Behaviors.

Dystonia Pub Date : 2022-01-01 Epub Date: 2022-09-08 DOI:10.3389/dyst.2022.10494
Meike E Van Der Heijden, Jason S Gill, Alejandro G Rey Hipolito, Luis E Salazar Leon, Roy V Sillitoe
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Abstract

Converging evidence from structural imaging studies in patients, the function of dystonia-causing genes, and the comorbidity of neuronal and behavioral defects all suggest that pediatric-onset dystonia is a neurodevelopmental disorder. However, to fully appreciate the contribution of altered development to dystonia, a mechanistic understanding of how networks become dysfunctional is required for early-onset dystonia. One current hurdle is that many dystonia animal models are ideally suited for studying adult phenotypes, as the neurodevelopmental features can be subtle or are complicated by broad developmental deficits. Furthermore, most assays that are used to measure dystonia are not suited for developing postnatal mice. Here, we characterize the early-onset dystonia in Ptf1a Cre ;Vglut2 fl/fl mice, which is caused by the absence of neurotransmission from inferior olive neurons onto cerebellar Purkinje cells. We investigate motor control with two paradigms that examine how altered neural function impacts key neurodevelopmental milestones seen in postnatal pups (postnatal day 7-11). We find that Ptf1a Cre ;Vglut2 fl/fl mice have poor performance on the negative geotaxis assay and the surface righting reflex. Interestingly, we also find that Ptf1a Cre ;Vglut2 fl/fl mice make fewer ultrasonic calls when socially isolated from their nests. Ultrasonic calls are often impaired in rodent models of autism spectrum disorders, a condition that can be comorbid with dystonia. Together, we show that these assays can serve as useful quantitative tools for investigating how neural dysfunction during development influences neonatal behaviors in a dystonia mouse model. Our data implicate a shared cerebellar circuit mechanism underlying dystonia-related motor signs and social impairments in mice.

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发育期肌张力障碍小鼠行为缺陷的定量分析
患者的结构成像研究、肌张力障碍致病基因的功能以及神经元和行为缺陷的合并症等证据都表明,小儿发病型肌张力障碍是一种神经发育障碍。然而,要充分认识发育改变对肌张力障碍的影响,还需要从机理上了解早期发病的肌张力障碍是如何导致网络功能失调的。目前的一个障碍是,许多肌张力障碍动物模型非常适合研究成人表型,因为神经发育特征可能很微妙,或因广泛的发育缺陷而变得复杂。此外,大多数用于测量肌张力障碍的检测方法并不适合发育中的出生后小鼠。在这里,我们描述了 Ptf1a Cre ;Vglut2 fl/fl 小鼠早发肌张力障碍的特征,这种障碍是由于下橄榄神经元对小脑浦肯野细胞的神经传递缺失造成的。我们通过两个范例研究了运动控制,考察了神经功能的改变如何影响出生后幼鼠(出生后第 7-11 天)的关键神经发育里程碑。我们发现,Ptf1a Cre ;Vglut2 fl/fl小鼠在阴性地轴试验和表面向右反射中表现较差。有趣的是,我们还发现,Ptf1a Cre ;Vglut2 fl/fl小鼠在与巢隔离时发出的超声波叫声较少。在自闭症谱系障碍的啮齿动物模型中,超声波鸣叫通常会受损,而自闭症谱系障碍可能与肌张力障碍并发。我们的研究结果表明,这些检测方法可作为有用的定量工具,用于研究发育过程中的神经功能障碍如何影响肌张力障碍小鼠模型的新生儿行为。我们的数据揭示了小鼠肌张力障碍相关运动症状和社交障碍的共同小脑回路机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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