陶氏病
神经科学
突触
突触可塑性
神经可塑性
长时程增强
树突棘
机制(生物学)
生物
医学
心理学
疾病
内科学
神经退行性变
受体
认识论
哲学
海马结构
作者
Grant Kauwe,Kristeen Pareja-Navarro,Lei Yao,Jackson Chen,Ivy Tsz-Lo Wong,Rowan Saloner,Helen Cifuentes,Alissa L. Nana,Samah Shah,Yaqiao Li,David Le,Salvatore Spina,Lea T. Grinberg,William W. Seeley,Joel H. Kramer,Todd Charlton Sacktor,Birgit Schilling,Li Gan,Kaitlin B. Casaletto,Tara E. Tracy
标识
DOI:10.1101/2023.06.12.543777
摘要
Synaptic plasticity is obstructed by pathogenic tau in the brain, representing a key mechanism that underlies memory loss in Alzheimer's disease (AD) and related tauopathies. Here, we define a mechanism for plasticity repair in vulnerable neurons using the C-terminus of the KIdney/BRAin (KIBRA) protein (CT-KIBRA). We show that CT-KIBRA restores plasticity and memory in transgenic mice expressing pathogenic human tau; however, CT-KIBRA did not alter tau levels or prevent tau-induced synapse loss. Instead, we find that CT-KIBRA binds to and stabilizes protein kinase Mζ (PKMζ) to maintain synaptic plasticity and memory despite tau-mediated pathogenesis. In humans we find that reduced KIBRA in brain and increased KIBRA in cerebrospinal fluid are associated with cognitive impairment and pathological tau levels in disease. Thus, our results distinguish KIBRA both as a novel biomarker of synapse dysfunction in AD and as the foundation for a synapse repair mechanism to reverse cognitive impairment in tauopathy.
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