Death-associated protein kinase 1 has a critical role in aberrant tau protein regulation and function

被引:0
|
作者
B M Kim
M-H You
C-H Chen
S Lee
Y Hong
Y Hong
A Kimchi
X Z Zhou
T H Lee
机构
[1] Beth Israel Deaconess Medical Center,Division of Gerontology, Department of Medicine
[2] Harvard Medical School,Division of Hematology/Oncology, Department of Medicine
[3] Beth Israel Deaconess Medical Center,Department of Rehabilitation Science
[4] Harvard Medical School,Department of Molecular Genetics
[5] Graduate School of Inje University,undefined
[6] Cardiovascular & Metabolic Disease Center,undefined
[7] College of Biomedical Science & Engineering,undefined
[8] Inje University,undefined
[9] Weizmann Institute of Science,undefined
来源
Cell Death & Disease | 2014年 / 5卷
关键词
death-associated protein kinase 1 (DAPK1); Alzheimer’s disease; tau stability; Pin1; tau phosphorylation; tau-related pathology;
D O I
暂无
中图分类号
学科分类号
摘要
The presence of tangles composed of phosphorylated tau is one of the neuropathological hallmarks of Alzheimer’s disease (AD). Tau, a microtubule (MT)-associated protein, accumulates in AD potentially as a result of posttranslational modifications, such as hyperphosphorylation and conformational changes. However, it has not been fully understood how tau accumulation and phosphorylation are deregulated. In the present study, we identified a novel role of death-associated protein kinase 1 (DAPK1) in the regulation of the tau protein. We found that hippocampal DAPK1 expression is markedly increased in the brains of AD patients compared with age-matched normal subjects. DAPK1 overexpression increased tau protein stability and phosphorylation at multiple AD-related sites. In contrast, inhibition of DAPK1 by overexpression of a DAPK1 kinase-deficient mutant or by genetic knockout significantly decreased tau protein stability and abolished its phosphorylation in cell cultures and in mice. Mechanistically, DAPK1-enhanced tau protein stability was mediated by Ser71 phosphorylation of Pin1, a prolyl isomerase known to regulate tau protein stability, phosphorylation, and tau-related pathologies. In addition, inhibition of DAPK1 kinase activity significantly increased the assembly of MTs and accelerated nerve growth factor-mediated neurite outgrowth. Given that DAPK1 has been genetically linked to late onset AD, these results suggest that DAPK1 is a novel regulator of tau protein abundance, and that DAPK1 upregulation might contribute to tau-related pathologies in AD. Therefore, we offer that DAPK1 might be a novel therapeutic target for treating human AD and other tau-related pathologies.
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页码:e1237 / e1237
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