Acid-Sensing Ion Channel 1a Regulates Fate of Rat Nucleus Pulposus Cells in Acid Stimulus Through Endoplasmic Reticulum Stress.

Q2 Biochemistry, Genetics and Molecular Biology
BioResearch Open Access Pub Date : 2018-02-01 eCollection Date: 2018-01-01 DOI:10.1089/biores.2017.0049
Zhi-Yang Xie, Lu Chen, Cong Zhang, Lei Liu, Feng Wang, Feng Cai, Xiao-Hu Wang, Rui Shi, Arjun Sinkemani, Hao-Min Yu, Xin Hong, Xiao-Tao Wu
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引用次数: 10

Abstract

Acid-sensing ion channel 1a (ASIC1a) participates in human intervertebral disc degeneration (IVDD) and regulates the destiny of nucleus pulposus cells (NPCs) in acid stimulus. However, the mechanism of ASIC1a activation and its downstream pathway remain unclear. Endoplasmic reticulum (ER) stress also participates in the acid-induced apoptosis of NPCs. The main purpose of this study was to investigate whether there is any connection between ASIC1a and ER stress in an acid-induced nucleus pulposus degeneration model. The IVDs of Sprague-Dawley rats were stained by immunohistochemical staining to evaluate the expression of ASIC1a in normal and degenerated rat nucleus pulposus. ASIC1a expression was also quantified by quantitative real-time-polymerase chain reaction and Western blotting analysis. NPCs were exposed to the culture media with acidity at pH 7.2 and 6.5 for 24 h, with or without 4-phenylbutyrate (4-PBA, a blocker of the ER stress pathway). Cell apoptosis was examined by Annexin V/Propidium Iodide (PI) staining and was quantified using flow cytometry analysis. ASIC1a-mediated intracellular calcium was determined by Ca2+ imaging using Fura-2-AM. Acidity-induced changes in ER stress markers were studied using Western blotting analysis. In vivo, ASIC1a expression was upregulated in natural degeneration. In vitro, acid stimulus increased intracellular calcium levels, but this effect was blocked by knockdown of ASIC1a, and this reversal was partly inhibited by 4-PBA. In addition, blockade of ASIC1a reduced expression of ER stress markers, especially the proapoptotic markers. ASIC1a partly regulates ER stress and promotes apoptosis of NPCs under acid stimulus and may be a novel therapeutic target in IVDD.

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酸感离子通道1a通过内质网应激调节酸刺激下大鼠髓核细胞的命运。
酸感离子通道1a (ASIC1a)参与人椎间盘退变(IVDD),并在酸刺激下调节髓核细胞(NPCs)的命运。然而,ASIC1a的激活机制及其下游通路尚不清楚。内质网应激也参与了酸诱导的NPCs细胞凋亡。本研究的主要目的是探讨在酸诱导的髓核变性模型中ASIC1a与内质网应激之间是否存在联系。采用免疫组化染色法对Sprague-Dawley大鼠ivd进行染色,观察ASIC1a在正常大鼠髓核和变性大鼠髓核中的表达情况。采用实时定量聚合酶链反应和Western blotting检测ASIC1a的表达。将npc暴露在pH为7.2和6.5的酸性培养基中24小时,并添加或不添加4-苯基丁酸盐(4-PBA,内质网应激途径的阻断剂)。膜联蛋白V/碘化丙啶(PI)染色检测细胞凋亡,流式细胞术定量检测细胞凋亡。通过Fura-2-AM的Ca2+成像来测定asic1a介导的细胞内钙。采用Western blotting分析研究酸性诱导内质网应激标志物的变化。在体内,ASIC1a表达在自然变性中上调。在体外,酸刺激增加了细胞内钙水平,但这种作用被ASIC1a的下调所阻断,这种逆转被4-PBA部分抑制。此外,阻断ASIC1a可降低内质网应激标志物的表达,尤其是促凋亡标志物。ASIC1a部分调节内质网应激,促进酸性刺激下NPCs的凋亡,可能是IVDD的一个新的治疗靶点。
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来源期刊
BioResearch Open Access
BioResearch Open Access Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
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1
期刊介绍: BioResearch Open Access is a high-quality open access journal providing peer-reviewed research on a broad range of scientific topics, including molecular and cellular biology, tissue engineering, regenerative medicine, stem cells, gene therapy, systems biology, genetics, virology, and neuroscience. The Journal publishes basic science and translational research in the form of original research articles, comprehensive review articles, mini-reviews, rapid communications, brief reports, technology reports, hypothesis articles, perspectives, and letters to the editor.
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