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脆性 X 综合征小鼠上丘中视觉亚电路特定功能障碍和输入特定错位。

Visual subcircuit-specific dysfunction and input-specific mispatterning in the superior colliculus of fragile X mice.

机构信息

Center for Neuroscience Research, Children's National Medical Center, Washington, DC, USA.

Departments of Pediatrics and Pharmacology & Physiology, The George Washington University School of Medicine and Health Sciences, Washington, DC, USA.

出版信息

J Neurodev Disord. 2018 Jun 28;10(1):23. doi: 10.1186/s11689-018-9241-1.

Abstract

BACKGROUND

Sensory processing deficits are frequently co-morbid with neurodevelopmental disorders. For example, patients with fragile X syndrome (FXS), caused by a silencing of the FMR1 gene, exhibit impairments in visual function specific to the dorsal system, which processes motion information. However, the developmental and circuit mechanisms underlying this deficit remain unclear. Recently, the superior colliculus (SC), a midbrain structure regulating head and eye movements, has emerged as a model for dissecting visual circuit development and function. Previous studies have demonstrated a critical role for activity-dependent processes in the development of visual circuitry in the SC. Based on the known role of the FMR1 gene product in activity-dependent synaptic plasticity, we explored the function and organization of visual circuits in the SC of a mouse model of FXS (Fmr1).

METHODS

We utilized in vivo extracellular electrophysiology in combination with computer-controlled visual stimuli to determine the receptive field properties of visual neurons in the SC of control and Fmr1 mice. In addition, we utilized anatomical tracing methods to assess the organization of visual inputs to the SC and along the retinogeniculocortical pathway.

RESULTS

Receptive fields of visual neurons in the SC of Fmr1 mice were significantly larger than those found in control animals, though their shape and structure were unaffected. Further, selectivity for direction of movement was decreased, while selectivity to axis of movement was unchanged. Interestingly, axis-selective (AS) neurons exhibited a specific hyperexcitability in comparison to AS neurons in control SC and to direction-selective (DS) neurons in both control and Fmr1 SC. Anatomical tracings revealed that retinocollicular, retinogeniculate, and geniculocortical projections were normally organized in the absence of Fmr1. However, projections from primary visual cortex (V1) to the SC were poorly refined.

CONCLUSIONS

Fmr1 is required for the proper development of visual circuit organization and function in the SC. We find that visual dysfunction is heterogeneously manifested in a subcircuit-specific manner in Fmr1 mice, consistent with previous studies in human FXS patients. Further, we show a specific alteration of inputs to the SC from V1, but not the retina. Together, these data suggest that Fmr1 may function in distinct ways during the development of different visual subcircuits.

摘要

背景

感觉处理缺陷常与神经发育障碍共存。例如,由于 FMR1 基因沉默而导致的脆性 X 综合征(FXS)患者表现出对处理运动信息的背系统的视觉功能特定损害。然而,这种缺陷背后的发育和电路机制尚不清楚。最近,中脑结构上丘(SC)作为解析视觉电路发育和功能的模型而出现,它调节头部和眼球运动。先前的研究表明,活动依赖性过程在 SC 中的视觉电路发育中起着关键作用。基于 FMR1 基因产物在活动依赖性突触可塑性中的已知作用,我们探索了 FXS 小鼠模型(Fmr1)中 SC 中的视觉电路的功能和组织。

方法

我们利用体内细胞外电生理学结合计算机控制的视觉刺激来确定控制和 Fmr1 小鼠 SC 中视觉神经元的感受野特性。此外,我们利用解剖追踪方法来评估 SC 以及沿着视放射皮质通路的视觉输入的组织。

结果

Fmr1 小鼠 SC 中的视觉神经元的感受野明显大于在对照动物中发现的感受野,尽管它们的形状和结构不受影响。此外,运动方向的选择性降低,而运动轴的选择性不变。有趣的是,与对照 SC 中的轴选择性(AS)神经元和对照 SC 中的方向选择性(DS)神经元相比,AS 神经元表现出特定的超兴奋性。解剖追踪显示,在没有 Fmr1 的情况下,视放射皮质、视放射状和视放射皮质投射正常组织化。然而,来自初级视觉皮层(V1)到 SC 的投射未得到很好的细化。

结论

Fmr1 是 SC 中视觉电路组织和功能正常发育所必需的。我们发现,在 Fmr1 小鼠中,视觉功能障碍以亚电路特异性的方式表现出异质性,与人类 FXS 患者的先前研究一致。此外,我们显示出从 V1 到 SC 的输入的特定改变,但不是视网膜。总的来说,这些数据表明 Fmr1 可能在不同视觉亚电路的发育过程中以不同的方式发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a99e/6022700/244074e68b65/11689_2018_9241_Fig1_HTML.jpg

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