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1.
本实验研究了放射损伤、烧伤与放烧复合伤后血清成份对培养心肌细胞L-型钙离子通道活动的影响,结果表明:伤后血清对上述通道均有激活作用,从而改变细胞内钙离子水平,此可能为伤后心脏功能抑制的一个重要机理。在作用强度上,复合伤血清重于单一伤、烧伤重于放射损伤,这是导致不同伤后血清对心功能抑制程度不一的重要因素。对伤后血清成分作用的进一步研究表明:伤后血清大分子的作用不明显,主要是血清低分子与血清脂质起作用。其中,放烧复合伤血清低分子不仅使通道开放增加,还使膜片噪声增加,提示其作用包括改变其L-型钙离子通道活动与改变膜的物理特性二个方面,它们共同导致细胞的功能变化;血清脂质对钙通道的作用可被SOD所抑制,表明其作用与氧自由基反应有关。至于伤后血清低分子与血清脂质中的具体毒性成分以及它们对L-型钙离子通道影响的调控机制,有待于进一步研究  相似文献   

2.
钙激活氯离子通道(Ca CCs)是一种广泛存在的氯离子通道,参与众多生理功能,如:上皮细胞的离子分泌、嗅觉传导以及平滑肌收缩等。由于通常情况下很难将Ca CCs介导的电流和钙离子依赖性阳离子流以及非钙离子依赖性氯离子流分开,因此其钙离子依赖性机制的研究远远滞后于其他离子通道。本文综述了最新报道的Ca CCs分子基础跨膜蛋白TMEM16A的发现和确立、结构特点、钙离子结合位点、其电流发生机制,及其相关生理作用以及病理和药理功能的热点问题,并展望该领域的研究发展趋势。  相似文献   

3.
利用细胞内的钙离子成像技术,研究了多巴胺对鲫鱼视网膜H1型水平细胞上L型电压门控钙离子通道的调控特性。研究发现,在不同胞外pH(6.8、7.4、8.0)条件下,不同浓度多巴胺(50和500μmol/L、1 mmol/L)对L型电压门控钙离子通道均具有上调作用。50μmol/L多巴胺在不同pH下的上调程度没有显著性差异;高浓度多巴胺(500μmol/L和1 mmol/L)在pH8.0条件下比pH6.8和7.4条件下具有更显著的上调作用。这些结果表明,在鲫鱼视网膜H1型水平细胞上,多巴胺对电压门控钙离子通道的调控与胞外pH环境密切相关。在光照情况下,L型电压门控钙离子通道活性被相对高浓度多巴胺上调,并被胞外碱性环境协同增强。这种协同增强效应有助于阐明视网膜对光反应的信息传递机制。  相似文献   

4.
本文探析了低氧预适应对神经系统的保护作用尤其是改善学习记忆能力的相关机制,回顾了电压依赖性钙离子通道在神经系统中的作用以及与学习记忆之间的关系。重点总结了低氧预适应诱导下电压依赖性钙离子通道特性的变化情况,并深入归纳了BDNF/TrkB和cAMP/PKA信号通路对电压依赖性钙离子通道的调节机制以及低氧预适应与这些信号通路之间的关系。通过总结低氧预适应调控BDNF/TrkB和cAMP/PKA信号通路影响电压依赖性钙离子通道相关的最新研究进展,为将来阐明低氧预适应提升认知能力的可能机制奠定理论基础。  相似文献   

5.
利用质膜钙离子通道抑制剂LaCl3、异搏定(Verapamil,VP),钙离子载体A23187,内膜系统钙离子通道抑制剂2-APB和LiCl处理,研究水杨酸(SA)诱发的丹参培养细胞内Ca2+迸发在培养基碱化过程中的作用。结果显示:SA处理诱发丹参培养细胞培养基碱化,质膜钙离子通道抑制剂LaCl3和VP、内膜系统钙离子通道抑制剂2-APB和LiCl单独处理均可显著抑制SA处理诱发的培养基碱化过程,但质膜钙离子通道抑制剂对SA处理诱发的培养基碱化的抑制作用要显著强于内膜系统钙离子通道抑制剂;当两类钙离子通道抑制剂同时使用,培养基碱化过程被完全抑制,甚至培养基出现酸化趋势;钙离子载体A23187可以显著促进培养基碱化过程。以上结果说明,由水杨酸诱发的胞外Ca2+内流与胞内钙库Ca2+释放均参与了丹参培养基碱化的诱导过程,但胞外Ca2+内流的作用更重要。本研究揭示了SA诱发的Ca2+与丹参细胞培养基碱化之间的关系,为更深层次地阐明植物次生代谢调控机制提供理论基础。  相似文献   

6.
新型二酰胺类杀虫剂对鱼尼丁受体作用的分子机理   总被引:16,自引:0,他引:16  
唐振华  陶黎明 《昆虫学报》2008,51(6):646-651
最近发现了一类新型二酰胺类杀虫剂——氟虫酰胺和氯虫酰胺,其作用靶标是鱼尼丁受体 (ryanodine receptors, RyRs)。本文对RyR的结构与功能、电压门控钙离子通道和鱼尼丁受体钙离子释放通道对细胞质钙离子内环境稳定的调节以及二酰胺类杀虫剂对RyRs作用的分子机理进行综述。二酰胺类杀虫剂使昆虫RyR通道处于持续的开放状态,引发钙离子从肌质网腔内大量释放,破坏了细胞质钙离子内环境的稳定,从而产生不同的药物学特性。这些变化都是由一个不同于鱼尼丁在RyR上的结合部位介导的。该类杀虫剂的作用对昆虫RyR s是高度专一的,结果产生选择毒性。由于二酰胺类杀虫剂的结构独特,作用方式新颖,对鳞翅目害虫效果好、杀虫谱广,对各种益虫和天敌安全,并对现用的杀虫剂无交互抗性,故它们非常适合于抗性治理和IPM。  相似文献   

7.
瞬时受体电位(TRP)通道是一类钙离子透过性的阳离子通道蛋白家族,参与了视觉、味觉、温度感受等重要的生物学过程。之前的研究表明,钙离子既能够正反馈也能够负反馈地调节瞬时受体电位通道的活性,而这种调节可能是通过钙调蛋白(calmodulin,CaM)与TRP通道的相互作用来进行的。为了阐明这一调控机制,我们首先需要对钙调蛋白与瞬时受体电位通道之间的相互作用进行详细的生化研究。在此项研究中,通过大肠杆菌表达系统,表达和纯化了果蝇瞬时受体电位通道羧基末端不同长短的蛋白片段,并发现了一个新的钙调蛋白结合位点。通过快速蛋白液相色谱、静态光散射以及等温量热滴定技术,鉴定了这一钙调蛋白结合位点与果蝇瞬时受体电位通道之间的相互作用,发现它们在钙离子依赖的条件下,可以形成亲和力非常强的稳定的蛋白复合物(解离常数在01~1微摩尔范围)。此外,通过合成多肽的方法,鉴定了果蝇瞬时受体电位通道913~939片段为该钙调蛋白结合位点的核心区域。最后,通过突变实验,进一步明确了果蝇瞬时受体电位通道922位的酪氨酸以及923位的缬氨酸为其钙调蛋白结合位点的关键氨基酸。总而言之,本研究发现和鉴定了果蝇瞬时受体电位通道上一个新的钙依赖的钙调蛋白结合位点,这一发现将为研究瞬时受体电位通道的体内功能提供生化基础,为阐明钙离子通过钙调蛋白调节瞬时受体电位通道的分子机制做出贡献。  相似文献   

8.
大电导钙离子激活钾通道(BK)是细胞膜上唯一接受细胞内Ca2+和膜电位双重调控的离子通道.最新发表的关于BK通道电镜结构及其胞质功能域的晶体结构的文章,第一次展示了BK通道各亚基的组装,并证实通道各功能域在通道门控机制中存在紧密的相互作用.近年来,针对BK通道的功能调节及其门控动力学模拟的研究取得较多进展,有助于更好地理解BK通道发挥生理功能的门控机制,并揭示BK通道相关疾病的病理生理学基础.  相似文献   

9.
芋螺毒素与钙离子通道相互作用的计算机模拟   总被引:5,自引:1,他引:4  
电压门控N-型钙离子通道是与神经元中释放的神经信号传递有关的跨细胞膜的特殊蛋白质分子,它由好几个蛋白质亚基组成,其中的α1亚基包含了电压敏感器和钙离子的选择性孔道,该亚基的一级结构已经发表,一般认为α1亚基包含4个重复单位(I-Ⅳ),每个重复单位包括6段跨膜区(S1-S6),其中跨膜区S4上有很多正电荷,被认为是通道的电压敏感器,S5和S6之间的连接区(P区)被认为是形成通道的门孔的部分,N-型钙离子通道能够被一些w-芋螺毒素特异性在阻断,这些ω-芋螺毒素的三维结构已经由二维核磁共振方法测定,尽管还没有被证实,但一般认为w-芋螺毒素占据了通道的孔道,有实验证明,钙离子第三个重复单位的P区(ⅢP区)是通道的芋螺毒素结合的主要部位,在本中,我们用分子模拟程序建模了ⅢP区的结构,为了通道的阻断机理有一个清楚的了解,我们利用分子对接程序模拟了IIIP区和三种芋螺毒素GVA,MVIIA和S03作用的理论模型,在我们的模型中,GVIA与钙通道的作用方式可能与MVIIA不同,而M VII A和SO3与钙通道的作用方式可能相同,我们还讨论了这些芋螺毒素中的关键残基的作用。  相似文献   

10.
刘永锋  孔文娟  王伟 《生物磁学》2014,(9):1759-1762,1692
离子通道可以与其他蛋白质耦合形成稳定的大分子复合物,以确保信号转导的效率和准确性。大电导、钙离子激活的钾离子通道(BK通道)的核心是由形成孔区的d亚基组成的四聚体,它具有BK通道的基本生理功能。在不同的组织内,BKα可以与不同的辅助性亚基结合,使通道功能变得复杂多样。BK通道可以将细胞兴奋性与细胞内的钙离子信号联接在一起,在血流、泌尿、免疫、神经递质释放等许多生命过程中发挥着重要的调节作用。近年来,大量的研究工作表明。BK通道可以与钙离子通道、细胞骨架蛋白、蛋白激酶等生物大分子形成功能性复合物,这对通道功能调控和信号转导等生命活动具有重要的生理意义。本文综述了这些BK通道功能复合体的主要分类、功能特性以及生理学意义,并对其未来的研究前景进行展望。  相似文献   

11.
The Ca2+ transport ATPase (SERCA) of sarcoplasmic reticulum (SR) plays an important role in muscle cytosolic signaling, as it stores Ca2+ in intracellular membrane bound compartments, thereby lowering cytosolic Ca2+ to induce relaxation. The stored Ca2+ is in turn released upon membrane excitation to trigger muscle contraction. SERCA is activated by high affinity binding of cytosolic Ca2+, whereupon ATP is utilized by formation of a phosphoenzyme intermediate, which undergoes protein conformational transitions yielding reduced affinity and vectorial translocation of bound Ca2+. We review here biochemical and biophysical evidence demonstrating that release of bound Ca2+ into the lumen of SR requires Ca2+/H+ exchange at the low affinity Ca2+ sites. Rise of lumenal Ca2+ above its dissociation constant from low affinity sites, or reduction of the H+ concentration by high pH, prevent Ca2+/H+ exchange. Under these conditions Ca2+ release into the lumen of SR is bypassed, and hydrolytic cleavage of phosphoenzyme may yield uncoupled ATPase cycles. We clarify how such Ca2+pump slippage does not occur within the time length of muscle twitches, but under special conditions and in special cells may contribute to thermogenesis.  相似文献   

12.
This review explores the relationships between electrical long-distance signalling, Ca2+ influx coincident with propagation of electropotential waves, and cellular responses to Ca2+ influx including the consequences for sieve-tube conductivity and mass flow. Ca2+ influx is inherent to electropotential waves and appears to constitute the key link between rapid physical signals and resultant chemical cascades in sieve tubes and adjacent cells. Members of several channel groups are likely involved the regulation of Ca2+ levels in sieve elements. Among them are hyperpolarization-activated, depolarization-activated, and mechanosensitive Ca2+ channels located in the plasma membrane and Ca2+ dependent Ca2+ channels that reside in ER-membranes of sieve elements. These channels collectively determine intracellular Ca2+ levels in sieve elements and their neighbour cells. The latter cells react to Ca2+ elevation by inducing diverse functional responses dependent on the cell type. If the Ca2+ concentration in sieve elements surpasses a threshold level, dual sieve-plate occlusion by proteins and callose deposition is triggered. Occlusion is reversed when Ca2+ levels subside. Electrical messages may regulate the degree of sieve plate hydraulic conductivity in intact plants by partial sieve-plate occlusion that has a major impact on volume flow through sieve tubes. Furthermore, complete but temporary occlusion of sieve tubes may modify mass flow patterns in intact plants.  相似文献   

13.
Astrocytes can exocytotically release the gliotransmitter glutamate from vesicular compartments. Increased cytosolic Ca2+ concentration is necessary and sufficient for this process. The predominant source of Ca2+ for exocytosis in astrocytes resides within the endoplasmic reticulum (ER). Inositol 1,4,5-trisphosphate and ryanodine receptors of the ER provide a conduit for the release of Ca2+ to the cytosol. The ER store is (re)filled by the store-specific Ca2+-ATPase. Ultimately, the depleted ER is replenished by Ca2+ which enters from the extracellular space to the cytosol via store-operated Ca2+ entry; the TRPC1 protein has been implicated in this part of the astrocytic exocytotic process. Voltage-gated Ca2+ channels and plasma membrane Na+/Ca2+ exchangers are additional means for cytosolic Ca2+ entry. Cytosolic Ca2+ levels can be modulated by mitochondria, which can take up cytosolic Ca2+ via the Ca2+ uniporter and release Ca2+ into cytosol via the mitochondrial Na+/Ca2+ exchanger, as well as by the formation of the mitochondrial permeability transition pore. The interplay between various Ca2+ sources generates cytosolic Ca2+ dynamics that can drive Ca2+-dependent exocytotic release of glutamate from astrocytes. An understanding of this process in vivo will reveal some of the astrocytic functions in health and disease of the brain. This article is part of a Special Issue entitled: 11th European Symposium on Calcium.  相似文献   

14.
Fedirko  N. V.  Klevets  M. Yu.  Kruglikov  I. A.  Voitenko  N. V. 《Neurophysiology》2001,33(4):216-223
Using a Ca2+-sensitive fluorescent indicator, fura-2/AM, we recorded calcium transients in secretory cells of isolated acini of the rat submandibular salivary gland; these transients were induced by hyperpotassium-induced depolarization (after an increase in [K+] e up to 50 mM) of the plasma membrane of the above cells. Calcium transients were significantly suppressed by 50 M nifedipine. Addition of 10 M carbonyl cyanide m-chlorophenylhydrazone to the normal extracellular solution was accompanied by a rise in [Ca2+] i , whereas when hyperpotassium solution is used the effect was less expressed. Blockers of CA2+-ATPase in the cellular membrane and in the endoplasmic reticulum, eosin Y (5 M) and cyclopiazonic acid (CPA, 5 M), respectively, evoked a significant increase in [Ca2+] i and a decrease in the K+-depolarization-induced calcium transient. Extracellular application of caffeine (2, 10, or 30 mM) was accompanied by a concentration-dependent rise in [Ca2+] i . Therefore, potassium depolarization of the plasma membrane of acinar cells of the rat submandibular salivary gland activates both the voltage-dependent Ca2+ influx and Ca2+-induced Ca2+ release from the endoplasmic reticulum; the initial level of [Ca2+] i was restored at the joint involvement of Ca2+-ATPases in the plasma membrane and the membranes of the endoplasmic reticulum and mitochondria.  相似文献   

15.
16.
The regulatory role of Ca2+-stimulated adenosine 5-triphosphatase (Ca2+-ATPase) in Ca2+ transport system of rat liver nuclei was investigated. Ca2+ uptake and release were determined with a Ca2+ electrode. Ca2+-ATPase activity was calculated by subtracting Mg2+-ATPase activity from (Ca2+–Mg2+)-ATPase activity. The release of Ca2+ from the Ca2+-loaded nuclei was evoked progressively after Ca2+ uptake with 1.0 mM ATP addition, while it was only slightly in the case of 2.0 mM ATP addition, indicating that the consumption of ATP causes a leak of Ca2+ from the Ca2+-loaded nuclei. The presence of N-ethylmaleimide (NEM; 0.1 mM) caused an inhibition of nuclear Ca2+ uptake and induced a promotion of Ca2+ release from the Ca2+-loaded nuclei. NEM (0.1 and 0.2 mM) markedly inhibited nuclear Ca2+-ATPase activity. This inhibition was completely blocked by the presence of dithiothreitol (DTT; 0.1 and 0.5 mM). Also, DTT inhibited the effect of NEM (0.1 mM) on nuclear Ca2+ uptake and release. Meanwhile, verapamil and diltiazem (10 M), a blocker of Ca2+ channels, did not prevent the NAD+ (1.0 and 2.0 mM), zinc sulfate (1.0 and 2.5 M) and arachidonic acid (10 M)-induced increase in nuclear Ca2+ release, suggesting that Ca2+ channels do not involve on Ca2+ release from the nuclei. These results indicates that an inhibition of nuclear Ca2+-ATPase activity causes the decrease in nuclear Ca2+ uptake and the release of Ca2+ from the Ca2+-loaded nuclei. The present finding suggests that Ca2+-ATPase plays a critical role in the regulatory mechanism of Ca2+ uptake and release in rat liver nuclei.  相似文献   

17.
The functional effect of activating Ca2+-permeable neuronal nicotinic acetylcholine receptors (nAChRs) on vesicle secretion was studied in PC12 cells. Single cells were patch-clamped in the whole-cell configuration and stimulated with either brief pulses of nicotine to activate the Ca2+-permeable nAChRs or with voltage steps to activate voltage-dependent Ca2+ channels. Membrane capacitance was used as a measure of vesicle secretion. Activation of nAChRs by nicotine application to cells voltage clamped at −80 mV evoked secretion. This secretion was completely abolished by nicotinic antagonists. When the cells were voltage clamped at +20 mV in the presence of Cd2+ to block voltage-activated Ca2+ channels, nicotine elicited a small amount of secretion. Most interestingly, when the nAChRs were activated coincidentally with voltage-dependent Ca2+ channels, secretion was augmented approximately twofold over the secretion elicited with voltage-dependent Ca2+ channels alone. Our data suggest that Ca2+ influx via nAChRs affects Ca2+-dependent cellular functions, including vesicle secretion. In addition to the secretion evoked by nAChR activation at hyperpolarized potentials, we demonstrate that even at depolarized potentials, nAChRs provide an important Ca2+ entry pathway underlying Ca2+-dependent cellular processes such as exocytosis.  相似文献   

18.
The acquisition of cell motility plays a critical role in the spread of prostate cancer (PC), therefore, identifying a sensitive step that regulates PC cell migration should provide a promising target to block PC metastasis. Here, we report that a mechanosensitive Ca2+-permeable cation channel (MscCa) is expressed in the highly migratory/invasive human PC cell line, PC-3 and that inhibition of MscCa by Gd3+ or GsMTx-4 blocks PC-3 cell migration and associated elevations in [Ca2+]i. Genetic suppression or overexpression of specific members of the canonical transient receptor potential Ca2+ channel family (TRPC1 and TRPC3) also inhibit PC-3 cell migration, but they do so by mechanisms other that altering MscCa activity. Although LNCaP cells are nonmigratory, they also express relatively large MscCa currents, indicating that MscCa expression alone cannot confer motility on PC cells. MscCa in both cell lines show similar conductance and ion selectivity and both are functionally coupled via Ca2+ influx to a small Ca2+-activated K+ channel. However, MscCa in PC-3 and LNCaP cell patches show markedly different gating dynamics—while PC-3 cells typically express a sustained, non-inactivating MscCa current, LNCaP cells express a mechanically-fragile, rapidly inactivating MscCa current. Moreover, mechanical forces applied to the patch, can induce an irreversible transition from the transient to the sustained MscCa gating mode. Given that cancer cells experience increasing compressive and shear forces within a growing tumor, a similar shift in channel gating in situ would have significant effects on Ca2+ signaling that may play a role in tumor progression.  相似文献   

19.
There is evidence that the complex process of sarcopenia in human aged skeletal muscle is linked to the modification of mechanisms controlling Ca2+ homeostasis. To further clarify this issue, we assessed the changes in the kinetics of activation and inactivation of T- and L-type Ca2+ currents in in vitro differentiated human myotubes, derived from satellite cells of healthy donors aged 2, 12, 76 and 86 years. The results showed an age-related decrease in the occurrence of T- and L-type currents. Moreover, significant age-dependent alterations were found in L-(but not T) type current density, and activation and inactivation kinetics, although an interesting alteration in the kinetics of T-current inactivation was observed. The T- and L-type Ca2+ currents play a crucial role in regulating Ca2+ entry during satellite cells differentiation and fusion into myotubes. Also, the L-type Ca2+ channels underlie the skeletal muscle excitation–contraction coupling mechanism. Thus, our results support the hypothesis that the aging process could negatively affect the Ca2+ homeostasis of these cells, by altering Ca2+ entry through T- and L-type Ca2+ channels, thereby putting a strain on the ability of human satellite cells to regenerate skeletal muscle in elderly people.  相似文献   

20.
Summary Basolateral plasma membranes from rat kidney cortex have been purified 40-fold by a combination of differential centrifugation, centrifugation in a discontinuous sucrose gradient followed by centrifugation in 8% percoll. The ratio of leaky membrane vesicles (L) versus right-side-out (RO) and inside-out (IO) resealed vesicles appeared to be LROIO=431. High-affinity Ca2+-ATPase, ATP-dependent Ca2+ transport and Na+/Ca2+ exchange have been studied with special emphasis on the relative transport capacities of the two Ca2+ transport systems. The kinetic parameters of Ca2+-ATPase activity in digitonin-treated membranes are:K m =0.11 m Ca2+ andV max=81±4 nmol Pi/min·mg protein at 37°C. ATP-dependent Ca2+ transport amounts to 4.3±0.2 and 7.4±0.3 nmol Ca2+/min·mg protein at 25 and 37°C, respectively, with an affinity for Ca2+ of 0.13 and 0.07 m at 25 and 37°C. After correction for the percentage of IO-resealed vesicles involved in ATP-dependent Ca2+ transport, a stoichiometry of 0.7 mol Ca2+ transported per mol ATP is found for the Ca2+-ATPase. In the presence of 75mm Na+ in the incubation medium ATP-dependent Ca2+ uptake is inhibited 22%. When Na+ is present at 5mm an extra Ca2+ accumulation is observed which amounts to 15% of the ATP-dependent Ca2+ transport rate. This extra Ca2+ accumulation induced by low Na+ is fully inhibited by preincubation of the vesicles with 1mm ouabain, which indicates that (Na+–K+)-ATPase generates a Na+ gradient favorable for Ca2+ accumulation via the Na+/Ca2+ exchanger. In the absence of ATP, a Na+ gradient-dependent Ca2+ uptake is measured which rate amounts to 5% of the ATP-dependent Ca2+ transport capacity. The Na+ gradient-dependent Ca2+ uptake is abolished by the ionophore monensin but not influenced by the presence of valinomycin. The affinity of the Na+/Ca2+ exchange system for Ca2+ is between 0.1 and 0.2 m Ca2+, in the presence as well as in the absence of ATP. This affinity is surprisingly close to the affinity measured for the ATP-dependent Ca2+ pump. Based on these observations it is concluded that in isolated basolateral membranes from rat kidney cortex the Ca2+-ATPase system exceeds the capacity of the Na+/Ca2+ exchanger four- to fivefold and it is therefore unlikely that the latter system plays a primary role in the Ca2+ homeostasis of rat kidney cortex cells.  相似文献   

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