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本文引用的文献

1
Conductances and selective permeability of connexin43 gap junction channels examined in neonatal rat heart cells.在新生大鼠心脏细胞中检测连接蛋白43间隙连接通道的电导和选择性通透性。
Circ Res. 1997 May;80(5):708-19. doi: 10.1161/01.res.80.5.708.
2
Biophysical properties of heterotypic gap junctions newly formed between two types of insect cells.两种昆虫细胞之间新形成的异型间隙连接的生物物理特性。
J Physiol. 1997 Mar 15;499 ( Pt 3)(Pt 3):701-13. doi: 10.1113/jphysiol.1997.sp021962.
3
Connections with connexins: the molecular basis of direct intercellular signaling.与连接蛋白的连接:直接细胞间信号传导的分子基础。
Eur J Biochem. 1996 May 15;238(1):1-27. doi: 10.1111/j.1432-1033.1996.0001q.x.
4
Voltage gating and permeation in a gap junction hemichannel.间隙连接半通道中的电压门控与通透
Proc Natl Acad Sci U S A. 1996 Jun 11;93(12):5836-41. doi: 10.1073/pnas.93.12.5836.
5
Connexin43 gap junctions exhibit asymmetrical gating properties.连接蛋白43间隙连接表现出不对称的门控特性。
Pflugers Arch. 1996 Mar;431(5):775-85. doi: 10.1007/BF02253843.
6
Heterotypic gap junction channels (connexin26-connexin32) violate the paradigm of unitary conductance.异型间隙连接通道(连接蛋白26-连接蛋白32)违背了单一电导的范式。
Pflugers Arch. 1995 Apr;429(6):870-2. doi: 10.1007/BF00374812.
7
Biophysical properties of gap junction channels formed by mouse connexin40 in induced pairs of transfected human HeLa cells.小鼠连接蛋白40在诱导的转染人HeLa细胞对中形成的间隙连接通道的生物物理特性。
Biophys J. 1995 Jun;68(6):2289-98. doi: 10.1016/S0006-3495(95)80411-X.
8
Kinetic properties of a voltage-dependent junctional conductance.电压依赖性连接电导的动力学特性
J Gen Physiol. 1981 Jan;77(1):95-117. doi: 10.1085/jgp.77.1.95.

基于对同型和异型通道的电学测量得出的脊椎动物间隙连接的数学模型。

Mathematical model of vertebrate gap junctions derived from electrical measurements on homotypic and heterotypic channels.

作者信息

Vogel R, Weingart R

机构信息

Department of Physiology, University of Bern, Buhlplatz 5, CH-3012 Bern, Switzerland.

出版信息

J Physiol. 1998 Jul 1;510 ( Pt 1)(Pt 1):177-89. doi: 10.1111/j.1469-7793.1998.177bz.x.

DOI:10.1111/j.1469-7793.1998.177bz.x
PMID:9625876
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2231023/
Abstract
  1. A mathematical model has been developed which describes the conductive and kinetic properties of homotypic and heterotypic gap junction channels of vertebrates. 2. The model consists of two submodels connected in series. Each submodel simulates a hemichannel and consists of two conductances corresponding to a high (H) and low (L) conductance state and a switch, which simulates the voltage-dependent channel gating. 3. It has been assumed that the conductances of the high state and low state vary exponentially with the voltage across the hemichannel. 4. The parameters of the exponentials can be derived from data of heterotypic or homotypic channels. As a result, the behaviour of heterotypic channels can be predicted from homotypic channel data and vice versa. 5. The two switches of a channel are governed by the voltage drop across the respective hemichannel. The switches of a channel work independently, thus giving rise to four conformational states, i.e. HH, LH, HL and LL. 6. The computations show that the dogma of a constant conductance for homotypic channels results from the limited physiological range of transjunctional voltages (Vj) and the kinetic properties of the channel, so a new fitting procedure is presented. 7. Simulation of the kinetic properties at the multichannel level revealed current time courses which are consistent with a contingent gating. 8. The calculations have also shown that the channel state LL is rare and of short duration, and hence easy to miss experimentally. 9. The design of the model has been kept flexible. It can be easily expanded to include additional features, such as channel substates or a closed state.
摘要
  1. 已开发出一种数学模型,该模型描述了脊椎动物同型和异型间隙连接通道的传导和动力学特性。2. 该模型由两个串联的子模型组成。每个子模型模拟一个半通道,由对应于高(H)和低(L)电导状态的两个电导以及一个模拟电压依赖性通道门控的开关组成。3. 假设高状态和低状态的电导随半通道两端的电压呈指数变化。4. 指数参数可从异型或同型通道的数据中推导得出。因此,异型通道的行为可从同型通道数据中预测,反之亦然。5. 通道的两个开关由各自半通道上的电压降控制。通道的开关独立工作,从而产生四种构象状态,即HH、LH、HL和LL。6. 计算表明,同型通道恒定电导的教条是由于跨连接电压(Vj)的生理范围有限以及通道的动力学特性所致,因此提出了一种新的拟合程序。7. 在多通道水平上对动力学特性的模拟揭示了与偶然门控一致的电流时间进程。8. 计算还表明,通道状态LL很少见且持续时间短,因此在实验中很容易错过。9. 模型的设计保持灵活。它可以很容易地扩展以包括其他特征,如通道亚状态或关闭状态。