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Dissociation of locomotor and cerebellar deficits in a murine Angelman syndrome model

机译:鼠Angelman综合征模型中运动和小脑缺陷的解离

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Angelman syndrome (AS) is a severe neurological disorder that is associated with prominent movement and balance impairments that are widely considered to be due to defects of cerebellar origin. Here, using the cerebellar-specific vestibulo-ocular reflex (VOR) paradigm, we determined that cerebellar function is only mildly impaired in the Ube3a~(m–/p+) mouse model of AS. VOR phase-reversal learning was singularly impaired in these animals and correlated with reduced tonic inhibition between Golgi cells and granule cells. Purkinje cell physiology, in contrast, was normal in AS mice as shown by synaptic plasticity and spontaneous firing properties that resembled those of controls. Accordingly, neither VOR phase-reversal learning nor locomotion was impaired following selective deletion of Ube3a in Purkinje cells. However, genetic normalization of αCaMKII inhibitory phosphorylation fully rescued locomotor deficits despite failing to improve cerebellar learning in AS mice, suggesting extracerebellar circuit involvement in locomotor learning. We confirmed this hypothesis through cerebellum-specific reinstatement of Ube3a , which ameliorated cerebellar learning deficits but did not rescue locomotor deficits. This double dissociation of locomotion and cerebellar phenotypes strongly suggests that the locomotor deficits of AS mice do not arise from impaired cerebellar cortex function. Our results provide important insights into the etiology of the motor deficits associated with AS.
机译:Angelman综合征(AS)是一种严重的神经系统疾病,与明显的运动和平衡障碍有关,被广泛认为是由于小脑起源的缺陷。在这里,我们使用小脑特异性前庭眼反射(VOR)范例,确定在AS的Ube3a〜(m– / p +)小鼠模型中小脑功能仅受到轻度损害。这些动物的VOR逆转学习异常受损,并且与高尔基体细胞和颗粒细胞之间的强直抑制作用降低有关。相比之下,浦肯野细胞生理学在AS小鼠中是正常的,如突触可塑性和自发放电特性(类似于对照组)所示。因此,在Purkinje细胞中选择性删除Ube3a后,VOR逆相学习或运动都不会受到损害。然而,尽管未能改善AS小鼠的小脑学习能力,但αCaMKII抑制性磷酸化的基因正常化仍完全缓解了运动能力障碍,提示小脑前回路参与了运动能力学习。我们通过Ube3a的小脑特异性恢复证实了这一假说,这改善了小脑的学习障碍,但不能缓解运动障碍。运动和小脑表型的这种双重解离强烈表明,AS小鼠的运动功能障碍不是由小脑皮质功能受损引起的。我们的结果提供了重要的见解与AS相关的运动缺陷的病因。

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