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1.
酸敏感离子通道研究进展   总被引:7,自引:2,他引:5  
组织酸化是生理和病理下常见的现象.神经元可以通过酸敏感的离子通道(ASICs)来感受细胞周围的pH值的降低.ASICs属于NaC/DEG家族的一个成员.目前,已发现了6个ASICs亚基,它们在外周和中枢神经系统中广泛表达,其同聚体和异聚体通道有着各种不同的电生理学特性.ASICs在机体感觉尤其是痛觉中起着至关重要的作用.  相似文献   

2.
酸感受离子通道(ASICs)为H -门控的阳离子通道,是一类新的配体门控性离子通道,属于钠通道超家族的新成员.作为近来研究的热点,ASICs具有许多重要的生物学功能,并很有可能成为抗癫痫、镇痛、提高学习记忆能力和保护神经元缺血损伤作用药理学新靶点.近来,ASICs各个亚基已被克隆,它们在生物体内分布、表达、功能和相关调节因素的研究正受到广泛重视.  相似文献   

3.
酸敏感离子通道(acid-Sensing ion channels,ASlCs)是一类由细胞外质子(H )激活的配体门控阳离子通道.迄今为止,人们在哺乳动物体内已经发现了6种ASICs亚基蛋白,它们分布在多种组织器官中.越来越多的研究表明:ASICs参与了机体的生理、病理过程,如:学习、记忆、痛觉、脑中风和肿瘤.在过去的10年中,人们发现多种内源性或外源性分子可以调控ASICs通道活性.由于这些细胞外调控分子与多种生理和病理功能有关,因此研究细胞外调控分子对ASICs的调控及其分子机制,可以帮助我们更多地了解ASICs功能以及结构信息,也为人们设计ASICs靶点特异性药物提供了理论依据.文章将系统地介绍细胞外调控分子对ASICs的功能调控及其作用机制,特别是该研究领域的最新进展.  相似文献   

4.
组织酸化参与外周痛觉传递的离子通道机制   总被引:2,自引:0,他引:2       下载免费PDF全文
组织酸化可以导致痛觉的产生.初级感觉神经元可以通过离子通道来感受外周的组织酸化.已鉴定了几个离子通道家族可能参与了外周组织酸化的感受:a.酸敏感离子通道(ASICs)是可以被酸直接门控的阳离子通道;b.辣椒素受体(VR1)可被酸敏化,同时可被pH<6.0直接激活;c.P2X2和P2X2/3受体通道反应被酸上调;d.TwIK相关的酸感受钾通道(TASK)是被酸关闭的双孔内向整流钾通道.这些通道被酸所调控的共同结果就是提高了神经元的兴奋性.因此,它们在介导了组织酸化所诱导的痛觉感受和传递中具有重要作用.  相似文献   

5.
酸敏感离子通道(ASICs)属于上皮 Na+ 通道/退化蛋白超家族,对细胞外 H+ 浓度变化敏感,其受多种外源性配体调控,产生 不同生理和病理学效应。越来越多研究发现,ASICs 参与脑缺血、炎症、肿瘤等具有酸化改变的病理过程。简介 ASICs 的结构及其配体 作用位点以及各亚基的组织分布和电生理特性,主要对各类 ASICs 外源性配体的研究进展作一综述。  相似文献   

6.
大鼠脊髓背角神经元中酸敏感离子通道的特性和功能研究   总被引:1,自引:0,他引:1  
Wu LJ  Xu TL 《生理科学进展》2006,37(2):135-137
酸敏感离子通道(ASICs)是一类能被细胞外酸所激活的配体门控离子通道。本文综合报道大鼠脊髓背角神经元中ASICs的亚基组成及其功能性调节:(1)脊髓背角主要表达ASIC1a、ASIC2a和ASIC2b,但不表达ASIC1b和ASIC3;(2)在脊髓背角神经元中酸诱导电流可能由ASIC1a同聚体通道所介导;(3)胞外痛觉信号如实验性缺血和神经肽FMRF可以通过不同的机制增强脊髓背角神经元酸诱导电流;(4)炎症痛可以上调脊髓背角ASICs在转录和蛋白水平的表达。上述各点提示,在生理或病理情况下脊髓背角ASICs对脊髓水平的感觉信息传递特别是痛觉的传导可能发挥着重要作用。  相似文献   

7.
酸敏感离子通道(acid-sensing ion channels,ASICs)属于上皮钠通道/退变素超家族中的一员,是一类质子(H~+)激活对阳离子选择性通透的非电压依赖的配体门控性离子通道。ASICs广泛分布于哺乳动物的神经系统,参与体内包括疼痛、学习、记忆、突触传递和可塑性调节等在内的多种生理和病理过程。近年来研究显示ASICs参与脑缺血神经元损伤过程,可能作为治疗缺血性脑卒中的新靶标。本文就目前ASICs在脑缺血神经元损伤过程的中作用的研究进展进行了综述。  相似文献   

8.
随着对酸敏感离子通道(Acid-sensing ion channels,ASICs)研究的不断深入,其在临床相关疾病中的功能研究也逐渐受到重视。ASICs的功能异常与一系列临床疾病和症状密切相关,包括神经系统肿瘤、缺血性损伤、癫痫、疼痛以及亨廷顿氏症等。在细胞内正常的分布与定位是AISCs发挥其生理功能的前提,而多项研究已经确认,在正常生理的状态下,ASICs在细胞内具有相对固定的分布方式。换言之,正常的细胞内存在着可以对ASICs的分布进行调节的调控系统。目前也发现了包括PICK1、HSP70等与之相关的一系列物质分子。鉴于ASICs在人体诸多生理、病理过程中发挥重要作用,对ASICs功能异常的相关研究便成为了目前基础研究工作的重点之一。本文拟就ASICs在细胞内的分布定位及其转运调节机制作一综述,进而初步探讨其在临床应用中的前景。  相似文献   

9.
Non-steroid anti-inflammatory drugs (NSAIDs) are general- ly used in the treatment of inflammation and pain through cyclooxygenase (COX) inhibition. Mounting evidence has indicated additional COX-independent targets for NSAIDs including acid-sensing ion channels (ASICs) la and 3. However, detailed function and mechanism of ASICs still remain largely elusive. In this study, the impact of NSAIDs on ASICs in nucleus puiposus cells of the human interverte- bral disk was investigated. Nucleus pulposus cells were iso- lated and cultured from protruded disk tissues of 40 patients. It was shown that ASICla and ASIC3 were expressed and functional in these cells by analyzing proton- gated currents after ASIC inhibition. We further investi- gated the neuroprotective capacity of ibuprofen (a COX in- hibitor), psaimotoxin-1 (PcTX1, a tarantula toxin specific for homomeric ASICla), and amiloride (a classic inhibitor of the epithelial sodium channel ENaC/DEG family to which ASICs belong). PcTXl-containing venom has been shown to be comparable with amiloride in its neuroprotective features in rodent models of ischemia. Taken together, our data showed that amiloride, PcTX1, and ibuprofen decreased ASIC protein expression and thereby exerted protective effects from ASIC inhibition-mediated cell damage.  相似文献   

10.
目的:ASICs通道及P/Q钙通道均参与偏头痛发生,分析ASICs通道及P/Q钙通道的电生理相互作用,评价二者的在偏头痛发生中的交互影响。方法:健康SPF级野生型C57BL/6鼠婴,分离培养双侧三叉神经节神经元,采用全细胞膜片钳技术记录三叉神经节神经元的钙电流变化及动作电位变化。结果:酸性外液及阿米洛利对钙通道无直接影响,酸性外液及P/Q通道阻断剂Aga-IVA均增加三叉神经元兴奋性(P0.05),而阿米洛利可阻断这种增加效应(P0.05)。结论:阿米洛利能够抑制Aga-IVA对三叉神经节神经元兴奋性的增加,可能与其阻断ASICs通道有关,提示ASICs通道可能为P/Q通道突变引发偏头痛的下游机制之一。  相似文献   

11.
Candidate amino acids involved in H+ gating of acid-sensing ion channel 1a   总被引:1,自引:0,他引:1  
Acid-sensing ion channels are ligand-gated cation channels, gated by extracellular H(+). H(+) is the simplest ligand possible, and whereas for larger ligands that gate ion channels complex binding sites in the three-dimensional structure of the proteins have to be assumed, H(+) could in principle gate a channel by titration of a single amino acid. Experimental evidence suggests a more complex situation, however. For example, it has been shown that extracellular Ca(2+) ions compete with H(+); probably Ca(2+) ions bound to the extracellular loop of ASICs stabilize the closed state of the channel and have to be displaced before the channel can open. In such a scheme, amino acids contributing to Ca(2+) binding would also be candidates contributing to H(+) gating. In this study we systematically screened more than 40 conserved, charged amino acids in the extracellular region of ASIC1a for a possible contribution to H(+) gating. We identified four amino acids where substitution strongly affects H(+) gating: Glu(63), His(72)/His(73), and Asp(78). These amino acids are highly conserved among H(+)-sensitive ASICs and are candidates for the "H(+) sensor" of ASICs.  相似文献   

12.
Extracellular acidification occurs not only in pathological conditions such as inflammation and brain ischemia, but also in normal physiological conditions such as synaptic transmission. Acid-sensing ion channels (ASICs) can detect a broad range of physiological pH changes during pathological and synaptic cellular activities. ASICs are voltage-independent, proton-gated cation channels widely expressed throughout the central and peripheral nervous system. Activation of ASICs is involved in pain perception, synaptic plasticity, learning and memory, fear, ischemic neuronal injury, seizure termination, neuronal degeneration, and mechanosensation. Therefore, ASICs emerge as potential therapeutic targets for manipulating pain and neurological diseases. The activity of these channels can be regulated by many factors such as lactate, Zn2+, and Phe-Met-Arg-Phe amide (FMRFamide)-like neuropeptides by interacting with the channel’s large extracellular loop. ASICs are also modulated by G protein-coupled receptors such as CB1 cannabinoid receptors and 5-HT2. This review focuses on the physiological roles of ASICs and the molecular mechanisms by which these channels are regulated. [BMB Reports 2013; 46(6): 295-304]  相似文献   

13.
Acidosis is a common feature of many neuronal diseases and often accompanied with adverse consequences such as pain and neuronal injury. Before the discovery of acid-sensing ion channels (ASICs), protons were usually considered as a modulator of other ion channels, such as voltage-gated calcium channels, N-methyl-d-aspartate, and γ-amino butyric acid(A) receptor channels. Accordingly, the functional effects of acidosis were considered as consequences of modulations of these channels. Since the first cloning of ASICs in 1997, the conventional view on acidosis-mediated pain and cell injury has been dramatically changed. To date, ASICs, which are directly activated by extracellular protons, are shown to mediate most of the acidosis-associated physiological and pathological functions. For example, ASIC1a channels are reported to mediate acidosis-induced ischemic neuronal death. In this article, we will review the possible mechanisms that underlie ASIC1a channel-mediated neuronal death and discuss ASIC1a channel modulators involved in this process.  相似文献   

14.
Selective regulation of acid-sensing ion channel 1 by serine proteases   总被引:10,自引:0,他引:10  
Acid-sensing ion channels (ASICs) are neuronal Na(+) channels that belong to the epithelial Na(+) channel/degenerin family. ASICs are transiently activated by a rapid drop in extracellular pH. Conditions of low extracellular pH, such as ischemia and inflammation in which ASICs are thought to be active, are accompanied by increased protease activity. We show here that serine proteases modulate the function of ASIC1a and ASIC1b but not of ASIC2a and ASIC3. We show that protease exposure shifts the pH dependence of ASIC1a activation and steady-state inactivation to more acidic pH. As a consequence, protease exposure leads to a decrease in current response if ASIC1a is activated by a pH drop from pH 7.4. If, however, acidification occurs from a basal pH of approximately 7, protease-exposed ASIC1a shows higher activity than untreated ASIC1a. We provide evidence that this bi-directional regulation of ASIC1a function also occurs in neurons. Thus, we have identified a mechanism that modulates ASIC function and may allow ASIC1a to adapt its gating to situations of persistent extracellular acidification.  相似文献   

15.
Acid-sensing ion channels (ASICs) are excitatory receptors for extracellular H(+). Proposed functions include synaptic transmission, peripheral perception of pain, and mechanosensation. Despite the physiological importance of these functions, the precise role of ASICs has not yet been established. In order to increase our understanding of the physiological role and basic structure-function relationships of ASICs, we report here the cloning of six new ASICs from the zebrafish (zASICs). zASICs possess the basic functional properties of mammalian ASICs: activation by extracellular H(+), Na(+) selectivity, and block by micromolar concentrations of amiloride. The zasic genes are broadly expressed in the central nervous system, whereas expression in the peripheral nervous system is scarce. This pattern suggests a predominant role for zASICs in neuronal communication. Our results suggest a conserved function for receptors of extracellular H(+) in the central nervous system of vertebrates.  相似文献   

16.
Extracellular acidification has been shown to generate action potentials (APs) in several types of neurons. In this study, we investigated the role of acid-sensing ion channels (ASICs) in acid-induced AP generation in brain neurons. ASICs are neuronal Na+ channels that belong to the epithelial Na+ channel/degenerin family and are transiently activated by a rapid drop in extracellular pH. We compared the pharmacological and biophysical properties of acid-induced AP generation with those of ASIC currents in cultured hippocampal neurons. Our results show that acid-induced AP generation in these neurons is essentially due to ASIC activation. We demonstrate for the first time that the probability of inducing APs correlates with current entry through ASICs. We also show that ASIC activation in combination with other excitatory stimuli can either facilitate AP generation or inhibit AP bursts, depending on the conditions. ASIC-mediated generation and modulation of APs can be induced by extracellular pH changes from 7.4 to slightly <7. Such local extracellular pH values may be reached by pH fluctuations due to normal neuronal activity. Furthermore, in the plasma membrane, ASICs are localized in close proximity to voltage-gated Na+ and K+ channels, providing the conditions necessary for the transduction of local pH changes into electrical signals. cellular excitability; neuronal signaling; pH  相似文献   

17.
Acid-sensing ion channels (ASICs) have been reported to play a role in the neuronal dopamine pathway, but the exact role in neurotransmitter release remains elusive. Human neuroblastoma SH-SY5Y is a dopaminergic neuronal cell line, which can release monoamine neurotransmitters. In this study, the expression of ASICs was identified in SH-SY5Y cells to further explore the role of ASICs in vesicular release stimulated by acid. We gathered evidence that ASICs could be detected in SH-SY5Y cells. In whole cell patch-clamp recording, a rapid decrease in extracellular pH evoked inward currents, which were reversibly inhibited by 100 μM amiloride. The currents were pH dependent, with a pH of half-maximal activation (pH(0.5)) of 6.01 ± 0.04. Furthermore, in calcium imaging and FM 1-43 dye labeling, it was shown that extracellular protons increased intracellular calcium levels and vesicular release in SH-SY5Y cells, which was attenuated by PcTx1 and amiloride. Interestingly, N-type calcium channel blockers inhibited the vesicular release induced by acidification. In conclusion, ASICs are functionally expressed in SH-SY5Y cells and involved in vesicular release stimulated by acidification. N-type calcium channels may be involved in the increase in vesicular release induced by acid. Our results provide a preliminary study on ASICs in SH-SY5Y cells and neurotransmitter release, which helps to further investigate the relationship between ASICs and dopaminergic neurons.  相似文献   

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