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1.
植物环核苷酸门控离子通道基因的功能及其调控   总被引:1,自引:0,他引:1  
环核苷酸(cAMP/cGMP)是生命体重要的信号分子,环核苷酸门控离子通道(CNGC)是环核苷酸主要的受体之一,目前已在植物中克隆并鉴定了多个环核苷酸门控离子通道基因,它们参与调控植物的生长、发育以及抗病等反应.这些通道既可通过一价阳离子,也可通过二价阳离子,其活性受Ca2+/Calmodulin调控.本文概括了近年来植物环核苷酸门控离子通道(CNGC)基因的克隆、植物CNGC对离子的选择特性、CNGC的生物学功能与调控等方面的研究进展.  相似文献   

2.
环核苷酸门控离子通道的结构、功能及活性调节   总被引:6,自引:0,他引:6  
环核苷酸门控离子通道(cyclic nucleotide-gated ion channels,CNG)是非选择性的阳离子通道,直接被环核苷酸活化.6个不同基因编码CNG离子通道蛋白,4个A亚单元(A1~A4)和2个B亚单元(B1,B3).CNG离子通道是由2个或3个不同的亚单元组成的异四聚体复合物,是Ca2+进入细胞内的主要通道之一.CNG离子通道的活性可被Ca2+ /CaM及磷酸化/去磷酸化作用所调节,从而改变细胞内钙离子浓度,触发一系列生理效应.近年来CNG离子通道的研究进展神速,成为生命科学的一个热点领域.本文对CNG离子通道的结构、功能及活性调节机制进行了综述.  相似文献   

3.
电压依赖性离子通道门控的分子机制   总被引:5,自引:0,他引:5  
Lu GW 《生理科学进展》1997,28(4):306-310
50年代Hodgkin和Huxley双通道模型及其激活与失活学说,正逐步被80年代以来的分子生物学和电生理学研究所证实。Na^+、K^+离子通道的激活主要决定于高度保守的带正电荷氨基酸残基密集的S4段,由膜内向膜外方向的拧改锥样旋转。Na^+通道的失活主要与其Ⅲ-Ⅳ功能区之间的胞内连结襻的“铰链盖”样运动有关;K^+通的失活分N-、C-、P-三型,分别发生在N-、C-末端和P区,其N型失活与N-末  相似文献   

4.
离子通道是细胞膜上特殊跨膜蛋白构成的亲水孔道,越来越多的证据表明其与兴奋性,腺体分泌、机体运动、甚至学习和记忆行为等重要生理现象密切相关,由此该领域成为当今年生命学科广为注目的前沿之一。本将简要介绍离子通道的分类和功能,并侧重阐明通道压控原理有压控通道的跨膜拓扑结构和功能分子模型。  相似文献   

5.
生物膜离子通道具有多种重要的生理功能.近年,已分离、纯化了电压门控的Na~+、Ca~(2+)和K~+通道的蛋白质组分.Na~+和Ca~(2+)通道分别由一个构成离子孔洞的主要亚单位和数目不同的其他亚单位组成,K~+通道是单一的多肽.对Na~+、Ca~(2+)通道主要亚单位和K~+通道的氨基酸序列的测定表明,它们之间有许多相似性.已分别给出了三种通道跨膜排列的二级结构图象.考虑了Na~+通道的功能特性,包括电压敏感性、通道开放动力学、门控电流、神经毒素的作用等,已提出几种Na~+通道功能性构象模型.  相似文献   

6.
王颀  周虎臣 《现代生物医学进展》2012,12(30):5950-5953,5987
配体门控离子通道(LGIC)在中枢神经系统信息处理的过程中起着极其重要的作用,与多种神经性疾病有着密切联系.与受体正位调节作用相比,别构调节效应具有类内源性生理作用、高选择性及不易过度调节的优点,从而避免了一系列不良反应发生.目前,各种LGIC受体超家族均有别构调节剂发现,部分已在临床上得到应用.在未来的研究中,通过建立及完善针对别构调节剂的筛选策略,别构调节剂的发现效率及生物活性将得到极大地提高,更多的药物将会不断涌现.  相似文献   

7.
针对现有相关文献中离子通道电生理数据繁多且分散的特点,开发了一套电压门控离子通道电生理实验数据库。数据库中目前主要包括钠离子通道序列数据、调制剂分子结构和序列数据,并收集整理了文献中调制剂和通道相互作用时的电生理学数据和药理学数据。系统实现了数据的收集、录入、存储和查询,为后期进行数据挖掘奠定了基础。用户可以通过网址http://biodb.sgst.cn/DICE对数据库进行访问。  相似文献   

8.
在中枢神经系统(central nervous system,CNS)中,锌离子对配体门控型离子通道具有重要的调节作用。锌离子随着神经元的活动从突触前膜的囊泡中释放到突触间隙,对突触内受体进行调控。锌离子抑制N-甲基-D-天冬氨酸(N-methyl-D-aspartate,NMDA)型谷氨酸受体的活性,而对非NMDA型谷氨酸受体的调控具有多样性。由γ氨基丁酸(γ-aminobutyric acid,GABA)受体所介导的抑制性突触传递活动也受到锌离子的抑制;而锌离子对glycine受体则呈现出浓度依赖的双向调节效应。病理条件下,锌离子参与了兴奋性细胞毒作用所触发的神经元凋亡过程。本文主要阐述了在CNS中,锌离子对配体门控型离子通道所介导的突触传递活动的调控作用,以及这些调控作用的生理功能和病理意义。  相似文献   

9.
植物环核苷酸门控离子通道及其功能研究进展   总被引:1,自引:0,他引:1  
环核苷酸门控离子通道(CNGC)是非选择性的阳离子通道, 可以直接被细胞内信使小分子——环核苷酸(cAMP和cGMP)活化。该通道蛋白包含6个跨膜α-螺旋, C端各具一个交叠的环核苷酸与钙调蛋白结合区。CNGC广泛存在于各种植物细胞中。研究表明, 模式植物拟南芥(Arabidopsis thaliana)的CNGC家族有20个成员, 分为4个亚群, 它们在抗病、花粉管生长、对Ca2+响应、抵抗重金属离子毒害和抗盐等多种信号途径中发挥重要作用, 协助植物细胞应对各种生物与非生物胁迫。该文简要介绍了CNGC的结构、表达谱及其调控因子, 并着重总结了近年来CNGC生物学功能的研究进展, 以期为今后系统开展其功能研究提供理论依据。  相似文献   

10.
HCN是超极化激活环核苷酸门控阳离子通道,其激活后产生If/Ih电流,能被ZD7288和Cs+特异性阻断.该通道有4个亚型,具有稳定细胞膜电位、参与心脏和神经节律调节、参与树突整合,以及调节神经递质释放等生理功能.近期实验中发现豚鼠膀胱ICC上存在Ih电流,其功能特点值得进一步研究和探讨.  相似文献   

11.
Abstract : Cyclic nucleotide-gated channels have been proposed to mediate the electrical response to light in the ventral photoreceptor cells of the horseshoe crab, Limulus polyphemus . However, a cyclic nucleotide-gated channel has not been identified from Limulus . We have cloned a putative full-length cyclic nucleotide-gated channel cDNA by screening cDNA libraries constructed from Limulus brain using a probe developed from Limulus ventral eye nerves. The putative full-length cDNA was derived from two overlapping partial cDNA clones. The open reading frame encodes 905 amino acids ; the sequence shows 44% identity to that of the α subunit of the bovine rod cyclic GMP-gated channel over the region containing the transmembrane domains and the cyclic nucleotide binding domain. This Limulus channel has a novel C-terminal region of ~200 amino acids, containing three putative Src homology domain 3 binding motifs and a putative coiled-coil domain. The possibility that this cloned channel is the same as that detected previously in excised patches from the photoreceptive membrane of Limulus ventral photoreceptors is discussed in terms of its sequence and its expression in the ventral eye nerves.  相似文献   

12.
Pifferi S  Boccaccio A  Menini A 《FEBS letters》2006,580(12):2853-2859
Cyclic nucleotide-gated (CNG) channels, directly activated by the binding of cyclic nucleotides, were first discovered in retinal rods, cones and olfactory sensory neurons. In the visual and olfactory systems, CNG channels mediate sensory transduction by conducting cationic currents carried primarily by sodium and calcium ions. In olfactory transduction, calcium in combination with calmodulin exerts a negative feedback on CNG channels that is the main molecular mechanism responsible for fast adaptation in olfactory sensory neurons. Six mammalian CNG channel genes are known and some human visual disorders are caused by mutations in retinal rod or cone CNG genes.  相似文献   

13.
The effects of nitric oxide (NO) and other cysteine modifying agents were examined on cyclic nucleotide-gated (CNG) cation channels from rat olfactory receptor neurons. The NO compounds, S-nitroso-cysteine (SNC) and 3-morpholino-sydnonomine (SIN-1), did not activate the channels when applied for up to 10 min. The cysteine alkylating agent, N-ethylmaleimide (NEM), and the oxidising agent, dithionitrobensoate (DTNB), were also without agonist efficacy. Neither SNC nor DTNB altered the cAMP sensitivity of the channels. However, 2-min applications of SIN-1, SNC and DTNB inhibited the cAMP-gated current to approximately 50% of the control current level. This inhibition showed no spontaneous reversal for 5 min but was completely reversed by a 2-min exposure to DTT. The presence of cAMP protected the channels against NO-induced inhibition. These results indicate that inhibition is caused by S-nitrosylation of neighboring sulfhydryl groups leading to sulfhydryl bond formation. This reaction is favored in the closed channel state. Since recombinantly expressed rat olfactory α and β CNG channel homomers and α/β heteromers are activated and not inhibited by cysteine modification, the results of this study imply the existence of a novel subunit or tightly bound factor which dominates the effect of cysteine modification in the native channels. As CNG channels provide a pathway for calcum influx, the results may also have important implications for the physiological role of NO in mammalian olfactory receptor neurons. Received: 30 March 1998/Revised: 17 June 1998  相似文献   

14.
Cyclic nucleotide-gated (CNG) ion channels are nonselective cation channels, essential for visual and olfactory sensory transduction. Although the channels include voltage-sensor domains (VSDs), their conductance is thought to be independent of the membrane potential, and their gating regulated by cytosolic cyclic nucleotide–binding domains. Mutations in these channels result in severe, degenerative retinal diseases, which remain untreatable. The lack of structural information on CNG channels has prevented mechanistic understanding of disease-causing mutations, precluded structure-based drug design, and hampered in silico investigation of the gating mechanism. To address this, we built a 3D model of the cone tetrameric CNG channel, based on homology to two distinct templates with known structures: the transmembrane (TM) domain of a bacterial channel, and the cyclic nucleotide-binding domain of the mouse HCN2 channel. Since the TM-domain template had low sequence-similarity to the TM domains of the CNG channels, and to reconcile conflicts between the two templates, we developed a novel, hybrid approach, combining homology modeling with evolutionary coupling constraints. Next, we used elastic network analysis of the model structure to investigate global motions of the channel and to elucidate its gating mechanism. We found the following: (i) In the main mode of motion, the TM and cytosolic domains counter-rotated around the membrane normal. We related this motion to gating, a proposition that is supported by previous experimental data, and by comparison to the known gating mechanism of the bacterial KirBac channel. (ii) The VSDs could facilitate gating (supplementing the pore gate), explaining their presence in such ‘voltage-insensitive’ channels. (iii) Our elastic network model analysis of the CNGA3 channel supports a modular model of allosteric gating, according to which protein domains are quasi-independent: they can move independently, but are coupled to each other allosterically.  相似文献   

15.
The alpha subunits of CNG channels of retinal photoreceptors (rod) and olfactory neurons (olf) are proteins that consist of a cytoplasmic NH(2) terminus, a transmembrane core region (including the segments S1-S6), and a cytoplasmic COOH terminus. The COOH terminus contains a cyclic nucleotide monophosphate binding domain NBD) that is linked by the C-linker (CL) to the core region. The binding of cyclic nucleotides to the NBD promotes channel opening by an allosteric mechanism. We examined why the sensitivity to cGMP is 22 times higher in olf than in rod by constructing chimeric channels and determining the [cGMP] causing half maximum channel activity (EC(50)). The characteristic difference in the EC(50) value between rod and olf was introduced by the NH(2) terminus and the core-CL region, whereas the NBD showed a paradoxical effect. The difference of the free energy difference Delta(DeltaG) was determined for each of these three regions with all possible combinations of the other two regions. For rod regions with respect to corresponding olf regions, the open channel conformation was destabilized by the NH(2) terminus (Delta(DeltaG) = -1.0 to -2.0 RT) and the core-CL region (Delta(DeltaG) = -2.0 to -2.9 RT), whereas it was stabilized by the NBD (Delta(DeltaG) = 0.3 to 1.1 RT). The NH(2) terminus deletion mutants of rod and olf differed by Delta(DeltaG) of only 0.9 RT, whereas the wild-type channels differed by the much larger value of 3.1 RT. The results show that in rod and olf, the NH(2) terminus, the core-CL region, and the NBD differ by characteristic Delta(DeltaG) values that do not depend on the specific composition of the other two regions and that the NH(2) terminus generates the main portion of Delta(DeltaG) between the wild-type channels.  相似文献   

16.
17.
The β cell KATP channel is an octameric complex of four pore-forming subunits (Kir6.2) and four regulatory subunits (SUR1). A truncated isoform of Kir6.2 (Kir6.2ΔC26), which expresses independently of SUR1, shows intrinsic ATP sensitivity, suggesting that this subunit is primarily responsible for mediating ATP inhibition. We show here that mutation of C166, which lies at the cytosolic end of the second transmembrane domain, to serine (C166S) increases the open probability of Kir6.2ΔC26 approximately sevenfold by reducing the time the channel spends in a long closed state. Rundown of channel activity is also decreased. Kir6.2ΔC26 containing the C166S mutation shows a markedly reduced ATP sensitivity: the K i is reduced from 175 μM to 2.8 mM. Substitution of threonine, alanine, methionine, or phenylalanine at position C166 also reduced the channel sensitivity to ATP and simultaneously increased the open probability. Thus, ATP does not act as an open channel blocker. The inhibitory effects of tolbutamide are reduced in channels composed of SUR1 and Kir6.2 carrying the C166S mutation. Our results are consistent with the idea that C166 plays a role in the intrinsic gating of the channel, possibly by influencing a gate located at the intracellular end of the pore. Kinetic analysis suggests that the apparent decrease in ATP sensitivity, and the changes in other properties, observed when C166 is mutated is largely a consequence of the impaired transition from the open to the long closed state.  相似文献   

18.
We propose a new approach to analysis of kinetic models for ion channel gating, based on application of fluctuating voltages through a voltage clamp, in addition to conventional techniques. We show that the channel kinetics can be probed in a much more sensitive way, leading to more efficient model selection and more reliable estimates of model parameters. We use wavelet transform as an analytic tool for fluctuating currents and parametric dispersion plots as a measure of model compatibility with experimental data.This revised version was published online in August 2005 with a corrected cover date.  相似文献   

19.
Studies of bacterial ion channels have provided significant insights into the structure-function relationships of mechanosensitive and voltage-gated ion channels. However, to date, very few bacterial channels that respond to small molecules have been identified, cloned, and characterized. Here, we use bioinformatics to identify a novel family of bacterial cyclic nucleotide-gated (bCNG) ion channels containing a channel domain related by sequence homology to the mechanosensitive channel of small conductance (MscS). In this initial report, we clone selected members of this channel family, use electrophysiological measurements to verify their ability to directly gate in response to cyclic nucleotides, and use osmotic downshock to demonstrate their lack of mechanosensitivity. In addition to providing insight into bacterial physiology, these channels will provide researchers with a useful model system to investigate the role of ligand-gated ion channels (LGICs) in the signaling processes of higher organisms. The identification of these channels provides a foundation for structural and functional studies of LGICs that would be difficult to perform on mammalian channels. Moreover, the discovery of bCNG channels implies that bacteria have cyclic nucleotide-gated and cyclic nucleotide-modulated ion channels, which are analogous to the ion channels involved in eukaryotic secondary messenger signaling pathways.  相似文献   

20.
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