双相情感障碍和精神分裂症风险基因AKAP11编码自噬受体偶联PKA激酶网络稳态调节突触传递。

You-Kyung Lee, Cong Xiao, Xiaoting Zhou, Le Wang, Meghan G McReynolds, Zhiping Wu, Eric Purisic, Henry Kim, Xianting Li, Zhiping P Pang, Jinye Dai, Junmin Peng, Nan Yang, Zhenyu Yue
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引用次数: 0

摘要

人类基因组研究已经确定了AKAP11蛋白截断变异与双相情感障碍和精神分裂症相关,暗示了由功能丧失驱动的共同疾病机制。AKAP11是一种蛋白激酶a (PKA)适配器,在通过选择性自噬降解PKA- ri复合体中起关键作用。然而,AKAP11的神经元功能及其功能丧失的影响在很大程度上仍未被描述。通过多组学方法、细胞生物学和小鼠模型和人类诱导神经元的电生理学分析,我们描绘了AKAP11在将PKA激酶网络调节耦合到突触传递中的核心作用。AKAP11的缺失破坏了PKA活性,并损害了与精神疾病相关通路显著重叠的细胞功能。此外,我们还发现了AKAP11、PKA-RI适配器SPHKAP和er自噬相关蛋白VAPA/B之间的相互作用,它们共同适应和介导PKA-RI降解。值得注意的是,AKAP11缺乏会损害神经传递并降低神经元突触前蛋白水平,这为AKAP11相关精神疾病的潜在机制提供了关键见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bipolar and schizophrenia risk gene AKAP11 encodes an autophagy receptor coupling the regulation of PKA kinase network homeostasis to synaptic transmission.

Human genomic studies have identified protein-truncating variants in AKAP11 associated with both bipolar disorder and schizophrenia, implicating a shared disease mechanism driven by loss-of-function. AKAP11, a protein kinase A (PKA) adaptor, plays a key role in degrading the PKA-RI complex through selective autophagy. However, the neuronal functions of AKAP11 and the impact of its loss-of-function remains largely uncharacterized. Through multi-omics approaches, cell biology, and electrophysiology analysis in mouse models and human induced neurons, we delineated a central role of AKAP11 in coupling PKA kinase network regulation to synaptic transmission. Loss of AKAP11 disrupted PKA activity and impaired cellular functions that significantly overlap with pathways associated with the psychiatric disease. Moreover, we identified interactions between AKAP11, the PKA-RI adaptor SPHKAP, and the ER-resident autophagy-related proteins VAPA/B, which co-adapt and mediate PKA-RI degradation. Notably, AKAP11 deficiency impaired neurotransmission and decreased presynaptic protein levels in neurons, providing key insights into the mechanism underlying AKAP11-associated psychiatric diseases.

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