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Misregulation of an Activity-Dependent Splicing Network as a Common Mechanism Underlying Autism Spectrum Disorders

机译:作为自闭症谱系疾病的共同机制,对活动依赖性剪接网络的误解

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摘要

A key challenge in understanding and ultimately treating autism is to identify common molecular mechanisms underlying this genetically heterogeneous disorder. Transcriptomic profiling of autistic brains has revealed correlated misregulation of the neuronal splicing regulator nSR100/SRRM4 and its target microexon splicing program in more than one-third of analyzed individuals. To investigate whether nSR100 misregulation is causally linked to autism, we generated mutant mice with reduced levels of this protein and its target splicing program. Remarkably, these mice display multiple autistic-like features, including altered social behaviors, synaptic density, and signaling. Moreover, increased neuronal activity, which is often associated with autism, results in a rapid decrease in nSR100 and splicing of microexons that significantly overlap those misregulated in autistic brains. Collectively, our results provide evidence that misregulation of an nSR100-dependent splicing network controlled by changes in neuronal activity is causally linked to a substantial fraction of autism cases.
机译:理解和最终治疗自闭症的关键挑战是鉴定这种遗传异质疾病的常见分子机制。自闭虫大脑的转录组分析揭示了神经元剪接调节器NSR100 / SRRM4的相关性误差,其目标微蛋白剪接程序在分析的个体中的三分之一以上。为了探讨NSR100错误调节是否因患有因子而导致与自闭症有关,我们产生的突变小鼠具有降低的该蛋白质和其目标剪接程序。值得注意的是,这些小鼠显示多种自闭症特征,包括改变的社会行为,突触密度和信号传导。此外,通常与自闭症相关的神经元活性增加,导致NSR100的快速降低,并剪接显着重叠在自闭症中的误解的微孔。统称,我们的结果提供了证据表明,通过神经元活性的变化控制的NSR100依赖性剪接网络的误解因因缺陷分数而导致的。

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