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本文引用的文献

1
AKT ISOFORMS-AS160-GLUT4: The defining axis of insulin resistance.AKT 异构体-AS160-GLUT4:胰岛素抵抗的决定性轴。
Rev Endocr Metab Disord. 2021 Dec;22(4):973-986. doi: 10.1007/s11154-021-09652-2. Epub 2021 Apr 30.
2
Reversal of Increase in Intestinal Permeability by Seed Kernel Extract in High-Fat Diet-Induced Obese Mice.种仁提取物对高脂饮食诱导肥胖小鼠肠道通透性增加的逆转作用
Pharmaceuticals (Basel). 2020 Aug 11;13(8):190. doi: 10.3390/ph13080190.
3
Insulin resistance is improved in high-fat fed mice by photobiomodulation therapy at 630 nm.光生物调节疗法在 630nm 时可改善高脂肪喂养的小鼠的胰岛素抵抗。
J Biophotonics. 2020 Mar;13(3):e201960140. doi: 10.1002/jbio.201960140. Epub 2020 Jan 7.
4
The Parkinson's disease gene activates Akt via PINK1 kinase-dependent regulation of the phospholipid PI(3,4,5)P.帕金森病基因通过 PINK1 激酶依赖性调节磷脂酰肌醇 PI(3,4,5)P 激活 Akt。
J Cell Sci. 2019 Oct 22;132(20):jcs233221. doi: 10.1242/jcs.233221.
5
Protein Kinase C Attenuates Insulin Signalling Cascade in Insulin-Sensitive and Insulin-Resistant Neuro-2a Cells.蛋白激酶 C 可减弱胰岛素敏感和抵抗的 Neuro-2a 细胞中的胰岛素信号级联反应。
J Mol Neurosci. 2019 Nov;69(3):470-477. doi: 10.1007/s12031-019-01377-x. Epub 2019 Jul 20.
6
Intranasal insulin activates Akt2 signaling pathway in the hippocampus of wild-type but not in APP/PS1 Alzheimer model mice.鼻腔内给予胰岛素可激活野生型小鼠而非 APP/PS1 阿尔茨海默病模型小鼠海马中的 Akt2 信号通路。
Neurobiol Aging. 2019 Mar;75:98-108. doi: 10.1016/j.neurobiolaging.2018.11.008. Epub 2018 Nov 17.
7
The PI3K/AKT pathway in obesity and type 2 diabetes.肥胖和 2 型糖尿病中的 PI3K/AKT 通路。
Int J Biol Sci. 2018 Aug 6;14(11):1483-1496. doi: 10.7150/ijbs.27173. eCollection 2018.
8
AKT isoforms have distinct hippocampal expression and roles in synaptic plasticity.AKT 同工型在海马体中有不同的表达,在突触可塑性中发挥不同的作用。
Elife. 2017 Nov 27;6:e30640. doi: 10.7554/eLife.30640.
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AKT/PKB Signaling: Navigating the Network.AKT/蛋白激酶B信号传导:探索该网络
Cell. 2017 Apr 20;169(3):381-405. doi: 10.1016/j.cell.2017.04.001.
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Resveratrol regulates neuronal glucose uptake and insulin sensitivity via P21-activated kinase 2 (PAK2).白藜芦醇通过p21激活激酶2(PAK2)调节神经元葡萄糖摄取和胰岛素敏感性。
Biochem Biophys Res Commun. 2017 Apr 1;485(2):372-378. doi: 10.1016/j.bbrc.2017.02.070. Epub 2017 Feb 16.

Akt 同工型在神经元胰岛素信号转导和抵抗中的作用。

Role of Akt isoforms in neuronal insulin signaling and resistance.

机构信息

Kusuma School of Biological Sciences, Indian Institute of Technology-Delhi, Hauz Khas, New Delhi, 110016, India.

出版信息

Cell Mol Life Sci. 2021 Dec;78(23):7873-7898. doi: 10.1007/s00018-021-03993-6. Epub 2021 Nov 1.

DOI:10.1007/s00018-021-03993-6
PMID:34724097
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11073101/
Abstract

The aim of the present study was to determine the role of Akt isoforms in insulin signaling and resistance in neuronal cells. By silencing Akt isoforms individually and in pairs, in Neuro-2a and HT22 cells we observed that, in insulin-sensitive condition, Akt isoforms differentially reduced activation of AS160 and glucose uptake with Akt2 playing the major role. Under insulin-resistant condition, phosphorylation of all isoforms and glucose uptake were severely affected. Over-expression of individual isoforms in insulin-sensitive and resistant cells differentially reversed AS160 phosphorylation with concomitant reversal in glucose uptake indicating a compensatory role of Akt isoforms in controlling neuronal insulin signaling. Post-insulin stimulation Akt2 translocated to the membrane the most followed by Akt3 and Akt1, decreasing glucose uptake in the similar order in insulin-sensitive cells. None of the Akt isoforms translocated in insulin-resistant cells or high-fat-diet mediated diabetic mice brain cells. Based on our data, insulin-dependent differential translocation of Akt isoforms to the plasma membrane turns out to be the key factor in determining Akt isoform specificity. Thus, isoforms play parallel with predominant role by Akt2, and compensatory yet novel role by Akt1 and Akt3 to regulate neuronal insulin signaling, glucose uptake, and insulin-resistance.

摘要

本研究旨在确定 Akt 同工型在神经元细胞胰岛素信号转导和抵抗中的作用。通过单独和成对沉默 Akt 同工型,我们在 Neuro-2a 和 HT22 细胞中观察到,在胰岛素敏感条件下,Akt 同工型以 Akt2 为主导作用,不同程度地降低 AS160 的激活和葡萄糖摄取。在胰岛素抵抗条件下,所有同工型的磷酸化和葡萄糖摄取都受到严重影响。在胰岛素敏感和抵抗细胞中过表达单个同工型,可不同程度地逆转 AS160 的磷酸化,并伴有葡萄糖摄取的逆转,表明 Akt 同工型在控制神经元胰岛素信号转导中具有代偿作用。胰岛素刺激后,Akt2 最易向细胞膜转位,其次是 Akt3 和 Akt1,在胰岛素敏感细胞中以相似的顺序降低葡萄糖摄取。在胰岛素抵抗细胞或高脂肪饮食介导的糖尿病小鼠脑细胞中,没有任何 Akt 同工型发生转位。根据我们的数据,胰岛素依赖性 Akt 同工型向质膜的差异转位似乎是决定 Akt 同工型特异性的关键因素。因此,同工型通过 Akt2 发挥主要作用,通过 Akt1 和 Akt3 发挥代偿但新颖的作用,以调节神经元胰岛素信号转导、葡萄糖摄取和胰岛素抵抗。