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首页> 外文期刊>Brain and Neuroscience Advances >Voltage-gated calcium channels: Their discovery, function and importance as drug targets:
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Voltage-gated calcium channels: Their discovery, function and importance as drug targets:

机译:电压门控钙通道:它们作为药物靶标的发现,功能和重要性:

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This review will first describe the importance of Ca2+ entry for function of excitable cells, and the subsequent discovery of voltage-activated calcium conductances in these cells. This finding was rapidly followed by the identification of multiple subtypes of calcium conductance in different tissues. These were initially termed low- and high-voltage activated currents, but were then further subdivided into L-, N-, PQ-, R- and T-type calcium currents on the basis of differing pharmacology, voltage-dependent and kinetic properties, and single channel conductance. Purification of skeletal muscle calcium channels allowed the molecular identification of the pore-forming and auxiliary α2δ, β and ? subunits present in these calcium channel complexes. These advances then led to the cloning of the different subunits, which permitted molecular characterisation, to match the cloned channels with physiological function. Studies with knockout and other mutant mice then allowed further investigation of physiological and pathophysiological roles of calcium channels. In terms of pharmacology, cardiovascular L-type channels are targets for the widely used antihypertensive 1,4-dihydropyridines and other calcium channel blockers, N-type channels are a drug target in pain, and α2δ-1 is the therapeutic target of the gabapentinoid drugs, used in neuropathic pain. Recent structural advances have allowed a deeper understanding of Ca2+ permeation through the channel pore and the structure of both the pore-forming and auxiliary subunits. Voltage-gated calcium channels are subject to multiple pathways of modulation by G-protein and second messenger regulation. Furthermore, their trafficking pathways, subcellular localisation and functional specificity are the subjects of active investigation.
机译:这篇综述将首先描述Ca2 +进入对于可兴奋细胞功能的重要性,以及随后在这些细胞中发现电压激活的钙电导率。这一发现很快被不同组织中多种钙电导亚型所鉴定。这些最初被称为低压和高压激活电流,但随后根据药理,电压依赖性和动力学特性的不同,又分为L型,N型,PQ型,R型和T型钙电流。和单通道电导。骨骼肌钙通道的纯化可以鉴定成孔和辅助α2δ,β和β的分子。这些钙通道复合物中存在的亚基。这些进展随后导致了不同亚基的克隆,从而允许分子表征,以使克隆的通道具有生理功能。然后用基因敲除小鼠和其他突变小鼠进行研究,可以进一步研究钙通道的生理和病理生理作用。在药理学方面,心血管L型通道是广泛使用的降压1,4-二氢吡啶和其他钙通道阻滞剂的靶标,N型通道是止痛药的靶标,α2δ-1是加巴喷丁的治疗靶标药物,用于神经性疼痛。最近的结构进展使人们可以更深入地了解Ca2 +通过通道孔的渗透以及孔形成和辅助亚基的结构。电压门控的钙通道受G蛋白和第二信使调节的多种调节途径。此外,它们的运输途径,亚细胞定位和功能特异性是积极研究的主题。

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