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PH domain leucine-rich repeat protein phosphatase 1 contributes to maintain the activation of the PI3K/Akt pro-survival pathway in Huntington's disease striatum.

机译:PH域富含亮氨酸的重复蛋白磷酸酶1有助于维持亨廷顿氏病纹状体中PI3K / Akt促存活途径的活化。

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Dysregulation of gene expression is one of the mechanisms involved in the pathophysiology of Huntington's disease (HD). Here, we examined whether mutant huntingtin regulates the levels of PH domain leucine-rich repeat protein phosphatase 1 (PHLPP1), a phosphatase that specifically dephosphorylates Akt at Ser473. Our results show decreased PHLPP1 protein levels in knock-in models (Hdh(Q111/Q111) mouse striatum and STHdh(Q111/Q111) cells), in the striatum of N-terminal exon-1 mutant huntingtin transgenic mouse models (R6/1; R6/1 : BDNF + or - , R6/2 and Tet/HD94) and in the putamen of HD patients. Quantitative PCR analysis revealed a reduction in PHLPP1 mRNA levels in the striatum of R6/1 compared with wild-type mice. Coincident with reduced PHLPP1 protein levels, we observed increased phosphorylated Akt (Ser473) levels specifically in the striatum. The analysis of the conditional mouse model Tet/HD94 disclosed that after mutant huntingtin shutdown PHLPP1 levels returned to wild-type levels whereas phospho-Akt levels were partially reduced. In conclusion, our results show that mutant huntingtin downregulates PHLPP1 expression. In the striatum, these reduced levels of PHLPP1 can contribute to maintain high levels of activated Akt that may delay cell death and allow the recovery of neuronal viability after mutant huntingtin silencing.
机译:基因表达失调是亨廷顿舞蹈病(HD)病理生理学涉及的机制之一。在这里,我们检查了突变的亨廷顿蛋白是否调节PH结构域富含亮氨酸的重复蛋白磷酸酶1(PHLPP1)的水平,这是一种磷酸酶,可特异性地磷酸化Ser473的Akt。我们的结果显示,在N末端外显子1突变的Huntingtin转基因小鼠模型(R6 / 1)的敲入模型(Hdh(Q111 / Q111)小鼠纹状体和STHdh(Q111 / Q111)细胞)中,PHLPP1蛋白水平降低; R6 / 1:BDNF +或-,R6 / 2和Tet / HD94)以及HD患者的壳核中。定量PCR分析显示,与野生型小鼠相比,R6 / 1纹状体中的PHLPP1 mRNA水平降低。与降低的PHLPP1蛋白水平同时发生,我们观察到纹状体中磷酸化的Akt(Ser473)水平升高。对条件小鼠模型Tet / HD94的分析显示,突变亨廷顿蛋白关闭后,PHLPP1水平恢复为野生型水平,而磷酸化Akt水平则部分降低。总之,我们的结果表明,突变型亨廷顿蛋白下调了PHLPP1的表达。在纹状体中,这些降低水平的PHLPP1可有助于维持高水平的活化Akt,这可能会延迟细胞死亡并在突变的亨廷顿蛋白沉默后恢复神经元的生存能力。

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