Suppr超能文献

模型离子通道:短杆菌肽和缬氨霉素。

Model ion channels: gramicidin and alamethicin.

作者信息

Woolley G A, Wallace B A

机构信息

Department of Crystallography, Birkbeck College, University of London, United Kingdom.

出版信息

J Membr Biol. 1992 Aug;129(2):109-36. doi: 10.1007/BF00219508.

Abstract

We have discussed in some detail a variety of experimental studies which were designed to elucidate the conformational and dynamic properties of gramicidin and alamethicin. Although the behavior of these peptides is by no means fully characterized, these studies have already permitted aspects of ion channel activity to be understood in molecular terms. Studies with gramicidin in a variety of organic solutions have revealed conformational heterogeneity of this peptide; at least five major isomers exist, several of which have been characterized in detail using NMR spectroscopy and X-ray crystallography. When added to lipid membranes gramicidin undergoes a further conformational conversion. Although the conformation of gramicidin in membranes is not as well characterized as the solution conformation(s) and an X-ray structure is not yet available, detailed data, particularly from solid-state NMR studies, continue to become available and a right-handed beta 6.3 helical conformation of the peptide backbone is now generally accepted. Two of these beta 6.3 helices joined at their N-termini are believed to form the conducting channel. The conformational behavior of the side-chains of gramicidin in the membrane-bound form is not well established and several NMR, CD, fluorescence and theoretical studies are now focussed on this. Although the side-chains do not directly contact the permeating ions, they can have distinct effects on conductance and selectivity by altering the electrostatic environment sensed by the ion. The dynamics of both side-chain and backbone conformations of gramicidin appear critical to a detailed understanding of the ion transport process in this channel. As the description of the membrane-bound conformation of gramicidin becomes more detailed, simulations of ion transport using computational methods are likely to improve and will further our understanding of the processes of ion transport. As well as internal motion of the backbone and side-chains, gramicidin undergoes rotational and translational motion in the plane of the membrane. These motions do not appear to be essential for the process of ion transport but can affect channel lifetime since lifetime is determined by the rate of association and dissociation of gramicidin monomers. Gramicidin-membrane interactions are also likely to be involved in the frequency of occurrence of channel subconductance states, the frequency of channel flickering and fundamentally in the stability of the membrane-bound gramicidin conformation. Alamethicin forms channels in membranes which are strongly voltage-dependent. The molecular origin of voltage-dependent conductances has been a fundamental problem in biophysics for many years.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

我们已经较为详细地讨论了一系列旨在阐明短杆菌肽和阿拉霉素的构象及动力学性质的实验研究。尽管这些肽的行为远未得到充分表征,但这些研究已经使我们能够从分子层面理解离子通道活性的一些方面。对短杆菌肽在多种有机溶液中的研究揭示了该肽的构象异质性;至少存在五种主要异构体,其中几种已通过核磁共振光谱法和X射线晶体学进行了详细表征。当添加到脂质膜中时,短杆菌肽会发生进一步的构象转变。尽管短杆菌肽在膜中的构象不如其在溶液中的构象那样得到充分表征,且尚未获得X射线结构,但详细数据,特别是来自固态核磁共振研究的数据,不断涌现,现在普遍认为肽主链具有右手β6.3螺旋构象。据信,两个在N端相连的β6.3螺旋形成了导电通道。短杆菌肽膜结合形式的侧链构象行为尚未明确确立,目前有几项核磁共振、圆二色性、荧光和理论研究都聚焦于此。尽管侧链并不直接接触渗透离子,但它们可以通过改变离子所感知的静电环境对电导率和选择性产生明显影响。短杆菌肽侧链和主链构象的动力学对于详细理解该通道中的离子传输过程似乎至关重要。随着对短杆菌肽膜结合构象的描述变得更加详细,使用计算方法对离子传输进行模拟可能会得到改进,并将进一步增进我们对离子传输过程的理解。除了主链和侧链的内部运动外,短杆菌肽在膜平面内还会发生旋转和平移运动。这些运动似乎对于离子传输过程并非必不可少,但会影响通道寿命,因为寿命由短杆菌肽单体的缔合和解离速率决定。短杆菌肽与膜的相互作用也可能涉及通道亚电导状态的出现频率、通道闪烁频率,并且从根本上涉及膜结合短杆菌肽构象的稳定性。阿拉霉素在膜中形成强烈依赖电压的通道。多年来,电压依赖性电导率的分子起源一直是生物物理学中的一个基本问题。(摘要截取自400字)

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验