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1.
细胞膜表面精细结构中的离子通道具有重要的生理功能。为了克服目前利用光学显微镜进行微电极定位的传统膜片钳技术分辨率的不足,本实验室将扫描离子电导显微镜技术(scanning ion conductance microscopy,SICM)与商用膜片钳技术相结合,构建了基于SICM负反馈扫描控制技术的高分辨率膜片钳技术。我们首先运用SICM负反馈技术控制纳米尺度玻璃微探针进行活体细胞表面的非接触扫描,获得细胞膜表面微结构的高分辨率成像,而后运用SICM负反馈控制技术操控该微探针在细胞膜表面非接触地移动并将其精确定位于扫描成像中感兴趣的膜表面纳米尺度微结构上方,最后利用该微探针作为膜片钳记录电极实现对此微结构的高分辨率电生理信号记录。为了检验该技术实现高分辨率离子通道记录的能力,分别在活体单层膜犬肾上皮(MDCK)细胞膜的微绒毛、细胞间的紧密连接等纳米尺度微结构上进行了细胞贴附式离子通道记录,结果显示MDCK细胞膜微绒毛的离子通道在钳制电压(pipette holding potential)为-100、-60、-40、0、+40、+60、+100mV条件下处于开放状态,而MDCK细胞间的紧密连接处在钳制电压为-100、-40、0、+40、+100mV条件下未检出有离子通道开放动作。结果提示,我们构建的高分辨率膜片钳技术实现了微探针的准确定位及特定纳米尺度微结构上的高分辨率膜片钳记录,为活体生物样品表面离子通道的空间分布及其功能研究提供了一种有效的工具。  相似文献   

2.
本文旨在建立一种可同步观察细胞内信号分子和细胞膜离子通道变化之间相互关系的实时研究方法。联合应用激光扫描共聚焦显微镜(laser scanning confocal microscopy,LSCM)显微成像技术和全细胞穿孔膜片钳技术,在急性酶分离的小鼠脑动脉平滑肌细胞上同步记录自发性瞬时外向电流(spontaneous transient outward currents,STOCs)和细胞内的钙瞬变。在全细胞模式膜片钳记录平滑肌细胞膜钾电流的同时,LSCM可准确记录到胞浆内出现的钙瞬变。此技术对于从分子水平揭示细胞内信号转导过程和离子通道相关疾病的机制有重要意义。  相似文献   

3.
离子通道是一类重要的药物作用耙点。膜片钳技术是目前进行离子通道研究和影响离子通道药物研究的最好方法。但膜片钳技术通量低,成为应用该法进行药物筛选的最大障碍。膜片钳阵列技术是在普通膜片钳技术基础上发展起来的高通量技术,包括平面膜片钳阵列技术和微管自动化膜片钳技术,已经在药物筛选中得到应用。本文仅就这2种方法当前的研究进展及其在药物筛选中的应用做简单的介绍。  相似文献   

4.
精子发生是个复杂的细胞事件,为了使这一事件有序的进行,生精细胞分裂和分化必须在信号调控下精确地进行。精子的离子通道在调节其离子平衡和重要的生理过程(精子能动性、顶体反应、对卵子的趋向性等)中都起了关键性的作用。离子通道表达水平或功能的改变都直接影响人类及其他动物的雄性生育能力。对离子通道的研究最直接的方法是膜片钳技术,但由于精子直径小,又是末端分化细胞,关于其电生理学的研究报道较少。该文介绍了精子离子通道的重要生理功能和电生理特征,同时分析了膜片钳技术在精子离子通道研究中的重要价值。  相似文献   

5.
机械力普遍存在于活细胞的生命活动中,而细胞内力学活动必须依赖骨架结构传递,这种独特的力学形式被称为细胞结构力学.单位时间内细胞结构力学变化受多因素调控,如外力、渗透压、动力分子、张力敏感性离子通道、胞内力学感受器及骨架组装等,构成了细胞结构动力学研究的重要内容.基于荧光共振能量转移(FRET)原理开发的荧光张力探针能整合到细胞骨架内,将细胞结构力学变化转化为光学信号,可能带来细胞力学研究的革命.随着细胞结构动力学研究内容的不断深入,特别是太空时代细胞力学稳态的打破,细胞结构动力学将在生命及医学研究领域显露出越来越重要的地位.  相似文献   

6.
目的和方法:采用大鼠海马脑片盲法膜片钳的全细胞记录技术,研究美国Axon公司生产的膜片钳系统(Axopatch放大器和pClamp软件)中几种漏减功能的意义和作用机制,重点对定标P/N漏减(Scaled P/N leak subtraction)、膜片钳放大器漏减以及Clampfit处理软件漏减功能的选择与使用进行分析与比较。结果:Clampex采样软件中的定标P/N漏减功能比P/N漏减功能的噪声要小;放大器漏减功能可漏减单一去极化电压幅度所诱发的漏电流,但不能同时对不同电压幅度系列去极化所产生的稳态漏电流进行追踪漏减;Clampfit漏减功能由于其设定只要膜两侧存在电位差就有漏电流产生,因而不适合在记录电压门控性离子通道电流时对稳态漏电流进行漏减。结论:在研究电压门控性离子通道的性质时,可采用P/N漏减功能或定标P/N漏减功能对稳态漏电流进行漏减,而Clampfit漏减功能是不合适的。  相似文献   

7.
离子通道是细胞膜上一类特殊亲水性蛋白微孔道,也是肌肉、神经细胞等电活动的物质基础。目前研究通过生物学及离子通道膜片钳等新技术对离子通道有了进一步的认识,并逐步发掘离子通道的结构功能异常与疾病的发生存在的紧密关系。先天性巨结肠症(Hirschsprung's Disease,HD)又称无神经节细胞症,是小儿外科的常见疾病之一。HD临床表现为胎粪排出延迟、顽固性便秘及腹胀,常并发小肠结肠炎、低位肠梗阻等。目前研究尚未完全明确HD的发病机制,本文对HD的发生与结直肠离子通道功能间的关系作一综述。  相似文献   

8.
膜片钳技术在昆虫毒理学研究中的应用   总被引:1,自引:0,他引:1  
薛超彬  罗万春 《昆虫知识》2003,40(6):496-499
膜片钳技术是现代电生理研究的基本方法 ,它以细胞膜上的离子通道为研究对象。离子通道是多种杀虫剂的作用靶 ,因此作为研究离子通道基本手段的膜片钳技术在药剂神经性作用机理研究中越来越受到重视。该文综述了膜片钳技术的基本原理及其在昆虫毒理学中应用的最新研究进展  相似文献   

9.
昆虫细胞膜离子通道是多种杀虫剂的作用靶标,通道功能特性的变异等与害虫抗药性密切相关.电压钳及膜片钳等电生理技术在离子通道功能研究中具有独特优势,在杀虫剂作用机理及害虫抗性机理研究中越来越受到重视.昆虫细胞膜离子通道主要包括配体门控通道和电压门控通道两大类.配体门控通道主要包括乙酰胆碱受体、GABA和谷氨酸受体通道等.电压门控通道主要有钠、钾和钙通道等,其中钠通道研究成果较多,与害虫抗性关系密切.由于钙离子的重要生理功能,随着研究深入,钙通道将成为研究重点.  相似文献   

10.
膜片钳技术在动脉粥样硬化研究中的应用   总被引:1,自引:0,他引:1  
膜片钳技术是一种先进的电生理技术,在生命科学研究中已得到了广泛的应用.最近几年已把它运用于研究动脉粥样硬化血管平滑肌细胞离子通道电生理特性的改变.研究发现血管平滑肌细胞的凋亡与K+通道活动增加有关,在动脉粥样硬化发生与发展过程中大电导型钙激活钾通道起着重要的功能作用.某些药物影响动脉粥样硬化血管平滑肌细胞离子通道而发挥作用.膜片钳技术给动脉粥样硬化发病机理研究带来了新的亮点.  相似文献   

11.
Ion channels and transporters are membrane proteins whose functions are driven by conformational changes. Classical biophysical techniques provide insight into either the structure or the function of these proteins, but a full understanding of their behavior requires a correlation of both these aspects in time. Patch-clamp and voltage-clamp fluorometry combine spectroscopic and electrophysiological techniques to simultaneously detect conformational changes and ionic currents across the membrane. Since its introduction, patch-clamp fluorometry has been responsible for invaluable advances in our knowledge of ion channel biophysics. Over the years, the technique has been applied to many different ion channel families to address several biophysical questions with a variety of spectroscopic approaches and electrophysiological configurations. This review illustrates the strength and the flexibility of patch-clamp fluorometry, demonstrating its potential as a tool for future research.  相似文献   

12.
Ion channels and transporters are membrane proteins whose functions are driven by conformational changes. Classical biophysical techniques provide insight into either the structure or the function of these proteins, but a full understanding of their behavior requires a correlation of both these aspects in time. Patch-clamp and voltage-clamp fluorometry combine spectroscopic and electrophysiological techniques to simultaneously detect conformational changes and ionic currents across the membrane. Since its introduction, patch-clamp fluorometry has been responsible for invaluable advances in our knowledge of ion channel biophysics. Over the years, the technique has been applied to many different ion channel families to address several biophysical questions with a variety of spectroscopic approaches and electrophysiological configurations. This review illustrates the strength and the flexibility of patch-clamp fluorometry, demonstrating its potential as a tool for future research.  相似文献   

13.
Opening of hyperpolarization-activated cyclic nucleotide-modulated (HCN) channels is controlled by membrane hyperpolarization and binding of cyclic nucleotides to the tetrameric cyclic nucleotide-binding domain (CNBD), attached to the C-linker (CL) disk. Confocal patch-clamp fluorometry revealed pronounced cooperativity of ligand binding among protomers. However, by which pathways allosteric signal transmission occurs remained elusive. Here, we investigate how changes in the structural dynamics of the CL-CNBD of mouse HCN2 upon cAMP binding relate to inter- and intrasubunit signal transmission. Applying a rigidity-theory-based approach, we identify two intersubunit and one intrasubunit pathways that differ in allosteric coupling strength between cAMP-binding sites or toward the CL. These predictions agree with results from electrophysiological and patch-clamp fluorometry experiments. Our results map out distinct routes within the CL-CNBD that modulate different cAMP-binding responses in HCN2 channels. They signify that functionally relevant submodules may exist within and across structurally discernable subunits in HCN channels.  相似文献   

14.
Increasing interest has been paid to applications of fluorescence measurements to analyze physiological mechanisms in living cells. However, few studies have taken advantage of DNA quantification by fluorometry for dynamic assessment of chromatin organization as well as cell motion during the cell cycle. This approach involves both optimal conditions for DNA staining and cell tracking methods. In this context, this report describes a stoichiometric method for nuclear DNA specific staining, using the bisbenzimidazole dye Hoechst 33342 associated with verapamil, a calcium membrane channel blocker. This method makes it possible to correlate variations of nuclear DNA content with cell motion in cells that are maintained alive. Motion measurement is the second goal of this paper and it explains the snake-spline method, and the associated cell following method.  相似文献   

15.
We have developed a scanning patch-clamp technique that facilitates single-channel recording from small cells and submicron cellular structures that are inaccessible by conventional methods. The scanning patch-clamp technique combines scanning ion conductance microscopy and patch-clamp recording through a single glass nanopipette probe. In this method the nanopipette is first scanned over a cell surface, using current feedback, to obtain a high-resolution topographic image. This same pipette is then used to make the patch-clamp recording. Because image information is obtained via the patch electrode it can be used to position the pipette onto a cell with nanometer precision. The utility of this technique is demonstrated by obtaining ion channel recordings from the top of epithelial microvilli and openings of cardiomyocyte T-tubules. Furthermore, for the first time we have demonstrated that it is possible to record ion channels from very small cells, such as sperm cells, under physiological conditions as well as record from cellular microstructures such as submicron neuronal processes.  相似文献   

16.
For ligand-gated ion channels, the binding of a ligand to an intracellular or extracellular domain generates changes in transmembrane pore-forming helices, which alters ion flow. The molecular mechanism for this allostery, however, remains unknown. Here we explore the structure and conformational rearrangements of the C-terminal gating ring of the cyclic nucleotide-gated channel CNGA1 during activation by cyclic nucleotides with patch-clamp fluorometry. By monitoring fluorescent resonance energy transfer (FRET) between membrane-resident quenchers and fluorophores attached to the channel, we detected no movement orthogonal to the membrane during channel activation. By monitoring FRET between fluorophores within the C-terminal region, we determined that the C-terminal end of the C-linker and the end of the C-helix move apart when channels open. We conclude that during channel activation, a portion of the gating ring moves parallel to the plasma membrane, hinging toward the central axis of the channel.  相似文献   

17.
Proton channels have evolved to provide a pH regulatory mechanism, affording the extrusion of protons from the cytoplasm at all membrane potentials. Previous evidence has suggested that channel-mediated acid extrusion could significantly change the local concentration of protons in the vicinity of the channel. In this work, we directly measure the proton depletion caused by activation of Hv1 proton channels using patch-clamp fluorometry recordings from channels labeled with the Venus fluorescent protein at intracellular domains. The fluorescence of the Venus protein is very sensitive to pH, thus behaving as a genetically encoded sensor of local pH. Eliciting outward proton currents increases the fluorescence intensity of Venus. This dequenching is related to the magnitude of the current and not to channel gating and is dependent on the pH gradient. Our results provide direct evidence of local proton depletion caused by flux through the proton-selective channel.  相似文献   

18.
Recently, applications of the patch-clamp fluorometry (PCF) technique in studies of cyclic nucleotide-gated (CNG) and hyperpolarization-activated, cyclic nucleotide-regulated (HCN) channels have provided direct evidence for the long-held notion that ligands preferably bind to and stabilize these channels in an open state. This state-dependent ligand-channel interaction involves contributions from not only the ligand-binding domain but also other discrete structural elements within the channel protein. This insight led us to investigate whether the pore of the HCN channel plays a role in the ligand-whole channel interaction. We used three well-characterized HCN channel blockers to probe the ion-conducting passage. The PCF technique was used to simultaneously monitor channel activity and cAMP binding. Two ionic blockers, Cs(+) and Mg(2+), effectively block channel conductance but have no obvious effect on cAMP binding. Surprisingly, ZD7288, an open channel blocker specific for HCN channels, significantly reduces the activity-dependent increase in cAMP binding. Independent biochemical assays exclude any nonspecific interaction between ZD7288 and isolated cAMP-binding domain. Because ZD7228 interacts with the inner pore region, where the activation gate is presumably located, we did an alanine scanning of the intracellular end of S6, from T426 to A435. Mutations of three residues, T426, M430, and H434, which are located at regular intervals on the S6 α-helix, enhance cAMP binding. In contrast, mutations of two residues in close proximity, F431A and I432A, dampen the response. Our results demonstrate that movements of the structural elements near the activation gate directly affect ligand binding affinity, which is a simple mechanistic explanation that could be applied to the interpretation of ligand gating in general.  相似文献   

19.
Biological membranes are complex assemblies of lipids and proteins that serve as platforms for cell signaling. We have developed a novel method for measuring the structure and dynamics of the membrane based on fluorescence resonance energy transfer (FRET). The method marries four technologies: (1) unroofing cells to isolate and access the cytoplasmic leaflet of the plasma membrane; (2) patch-clamp fluorometry (PCF) to measure currents and fluorescence simultaneously from a membrane patch; (3) a synthetic lipid with a metal-chelating head group to decorate the membrane with metal-binding sites; and (4) transition metal ion FRET (tmFRET) to measure short distances between a fluorescent probe and a transition metal ion on the membrane. We applied this method to measure the density and affinity of native and introduced metal-binding sites in the membrane. These experiments pave the way for measuring structural rearrangements of membrane proteins relative to the membrane.  相似文献   

20.
One major goal of ion channel research is to delineate the molecular events from the detection of the stimuli to the movement of channel gates. For ligand-gated channels, it is challenging to separate ligand binding from channel gating. Here we studied the cyclic adenosine monophosphate (cAMP)-dependent gating in hyperpolarization-activated cAMP-regulated (HCN) channel by simultaneously recording channel opening and ligand binding, using the patch-clamp fluorometry technique with a unique fluorescent cAMP analog that fluoresces strongly in the hydrophobic binding pocket and exerts regulatory effects on HCN channels similar to those imposed by cAMP. Corresponding to voltage-dependent channel activation, we observed a robust, close-to-threefold increase in ligand binding, which was more pronounced at subsaturating ligand concentrations than higher concentrations. This observation supported the cyclic allosteric models and indicated that protein allostery can be implemented through differentiating ligand binding affinities between resting and active states. The kinetics of ligand binding largely matched channel activation. However, during channel deactivation, ligand unbinding was slower than channel closing, suggesting a delayed response to membrane potential by the ligand binding machinery. Our results provide what we believe to be new insights into the cAMP-dependent gating in HCN channel and the interpretation of protein allostery for general ligand-gated channels and receptors.  相似文献   

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