Global loss of Neuron-specific gene 1 causes alterations in motor coordination, increased anxiety, and diurnal hyperactivity in male mice

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Roman Austin, Praveen Chander, Amber J. Zimmerman, Malene Overby, Laura Digilio, Chan Choo Yap, David N. Linsenbardt, Heidi Kaastrup Müller, Jason P. Weick
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引用次数: 1

Abstract

The Neuron-specific gene family (NSG1-3) consists of small endolysosomal proteins that are critical for trafficking multiple receptors and signaling molecules in neurons. NSG1 has been shown to play a critical role in AMPAR recycling from endosomes to plasma membrane during synaptic plasticity. However, to date nothing is known about whether NSG1 is required for normal behavior at an organismal level. Here we performed a battery of behavioral tests to determine whether loss of NSG1 would affect motor, cognitive, and/or affective behaviors, as well as circadian-related activity. Consistent with unique cerebellar expression of NSG1 among family members, we found that NSG1 was obligatory for motor coordination but not for gross motor function or learning. NSG1 knockout (KO) also altered performance across other behavioral modalities including anxiety-related and diurnal activity paradigms. Surprisingly, NSG1 KO did not cause significant impairments across all tasks within a given modality, but had specific effects within each modality. For instance, we found increases in anxiety-related behaviors in tasks with multiple stressors (e.g., elevation and exposure), but not those with a single main stressor (e.g., exposure). Interestingly, NSG1 KO animals displayed a significant increase in locomotor activity during subjective daytime, suggesting a possible impact on diurnal activity rhythms or vigilance. Surprisingly, loss of NSG1 had no effect on hippocampal-dependent learning despite previous studies showing deficits in CA1 long-term potentiation. Together, these findings do not support a role of NSG1 in hippocampal-dependent learning, but support a role in mediating proper neuronal function across amygdalar and cerebellar circuits.

Abstract Image

在雄性小鼠中,神经元特异性基因1的全局缺失会导致运动协调、焦虑增加和昼间多动的改变
神经元特异性基因家族(NSG1-3)由小内溶酶体蛋白组成,对神经元中多种受体和信号分子的运输至关重要。在突触可塑性期间,NSG1在AMPAR从核内体到质膜的再循环中发挥关键作用。然而,到目前为止,我们还不知道NSG1是否在机体水平上是正常行为所必需的。在这里,我们进行了一系列行为测试,以确定NSG1的丧失是否会影响运动、认知和/或情感行为,以及与昼夜节律相关的活动。与家族成员中NSG1在小脑中的独特表达一致,我们发现NSG1对运动协调是必需的,而不是大运动功能或学习。NSG1敲除(KO)也改变了其他行为模式的表现,包括焦虑相关和日常活动模式。令人惊讶的是,NSG1 KO并没有在给定模态的所有任务中造成显著的损伤,但在每个模态中都有特定的影响。例如,我们发现在有多个压力源(例如,提升和暴露)的任务中,焦虑相关行为会增加,但在只有一个主要压力源(例如,暴露)的任务中则不会增加。有趣的是,NSG1 KO动物在主观白天表现出显著的运动活动增加,这表明可能对昼夜活动节律或警觉性产生影响。令人惊讶的是,尽管先前的研究显示CA1长期增强的缺陷,但NSG1的缺失对海马依赖性学习没有影响。总之,这些发现不支持NSG1在海马依赖性学习中的作用,但支持在杏仁核和小脑回路中调节适当的神经元功能的作用。
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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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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