Multi-omic analysis of the ciliogenic transcription factor RFX3 reveals a role in promoting activity-dependent responses via enhancing CREB binding in human neurons.

Jenny Lai, Didem Demirbas, Kaitlyn Phillips, Boxun Zhao, Harrison Wallace, Megan Seferian, Tojo Nakayama, Holly Harris, Aikaterini Chatzipli, Eunjung Alice Lee, Timothy W Yu
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Abstract

Heterozygous loss-of-function (LoF) variants in RFX3, a transcription factor known to play key roles in ciliogenesis, result in autism spectrum disorder (ASD) and neurodevelopmental delay. RFX binding motifs are also enriched upstream of genes found to be commonly dysregulated in transcriptomic analyses of brain tissue from individuals with idiopathic ASD. Still, the precise functions of RFX3 in the human brain is unknown. Here, we studied the impact of RFX3 deficiency using human iPSC-derived neurons and forebrain organoids. Biallelic loss of RFX3 disrupted ciliary gene expression and delayed neuronal differentiation, while monoallelic loss of RFX3 did not. Instead, transcriptomic and DNA binding analyses demonstrated that monoallelic RFX3 loss disrupted synaptic target gene expression and diminished neuronal activity-dependent gene expression. RFX3 binding sites co-localized with CREB binding sites near activity-dependent genes, and RFX3 deficiency led to decreased CREB binding and impaired induction of CREB targets in response to neuronal depolarization. This study demonstrates a novel role of the ASD-associated gene RFX3 in shaping neuronal synaptic development and plasticity.

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对纤毛转录因子RFX3的多组学分析揭示了其通过增强人类神经元中CREB的结合而促进活性依赖性反应的作用。
RFX3是一种已知在纤毛发生中起关键作用的转录因子,其杂合功能缺失(LoF)变异可导致自闭症谱系障碍(ASD)和神经发育迟缓。在特发性ASD患者脑组织的转录组学分析中发现,RFX结合基序也在通常失调的基因上游富集。然而,RFX3在人脑中的确切功能尚不清楚。在这里,我们使用人类ipsc衍生的神经元和前脑类器官研究了RFX3缺乏的影响。RFX3的双等位基因缺失会破坏纤毛基因表达并延迟神经元分化,而RFX3的单等位基因缺失则不会。相反,转录组学和DNA结合分析表明,单等位基因RFX3的缺失破坏了突触靶基因的表达,减少了神经元活性依赖基因的表达。RFX3结合位点与CREB结合位点在活性依赖基因附近共定位,RFX3缺乏导致CREB结合减少,CREB靶在神经元去极化反应中诱导受损。本研究证明了自闭症相关基因RFX3在塑造神经元突触发育和可塑性中的新作用。
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