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引用本文的文献

1
Direct measurement of the reversal potential and current-voltage characteristics in the acid and alkaline regions of Chara corallina.直接测量珊瑚 Chara corallina 在酸碱区域的反转电位和电流-电压特性。
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Transitions from alkaline spots to regular bands during pH pattern formation at the plasmalemma of Chara cells.在轮藻细胞质膜pH模式形成过程中,从碱性斑点到规则条带的转变。
Eur Biophys J. 2003 May;32(2):144-53. doi: 10.1007/s00249-003-0280-4. Epub 2003 Mar 6.
3
Spatial organization of transport domains and subdomain formation in the plasma membrane of Chara corallina.轮藻质膜中运输结构域的空间组织和亚结构域形成
J Membr Biol. 1995 Oct;147(3):275-81. doi: 10.1007/BF00234525.
4
Simulation of the light-induced oscillations of the membrane potential in Potamogeton leaf cells.菹草叶片细胞中光诱导膜电位振荡的模拟。
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5
United States--Australia workshop on membrane biophysics.美国-澳大利亚膜生物物理学研讨会
Biophys J. 1992 Jun;61(6):1454-61. doi: 10.1016/S0006-3495(92)81951-3.
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Reaction kinetic model of a proposed plasma membrane two-cycle H(+)-transport system of Chara corallina.拟议的轮藻质膜双循环H(+)运输系统的反应动力学模型。
Proc Natl Acad Sci U S A. 1992 Apr 15;89(8):3261-5. doi: 10.1073/pnas.89.8.3261.

本文引用的文献

1
Potassium Channels in Chara corallina: CONTROL AND INTERACTION WITH THE ELECTROGENIC H PUMP.轮藻中的钾离子通道:与质子电动泵的调控及相互作用
Plant Physiol. 1982 Apr;69(4):781-8. doi: 10.1104/pp.69.4.781.
2
HCO(3) Influx across the Plasmalemma of Chara corallina: Physiological and Biophysical Influence of 10 mm K.碳酸氢根(HCO₃⁻)跨珊瑚轮藻质膜的内流:10 mM钾的生理和生物物理影响
Plant Physiol. 1978 Apr;61(4):487-93. doi: 10.1104/pp.61.4.487.
3
A two-dimensional vibrating probe with a computerized graphics display.一种带有计算机图形显示的二维振动探头。
Prog Clin Biol Res. 1986;210:13-20.
4
Periodic band pattern as a dissipative structure in ion transport systems with cylindrical shape.周期性带状图案作为具有圆柱形状的离子传输系统中的一种耗散结构。
Bull Math Biol. 1988;50(3):255-88. doi: 10.1007/BF02458883.
5
Wavelike isomorphic prepatterns in development.发育过程中的波状同构预模式。
J Theor Biol. 1989 Mar 21;137(2):127-62. doi: 10.1016/s0022-5193(89)80202-4.
6
Sulfhydryl-reactive heavy metals increase cell membrane K+ and Ca2+ transport in renal proximal tubule.巯基反应性重金属会增加肾近端小管细胞膜上钾离子和钙离子的转运。
J Membr Biol. 1990 Jan;113(1):1-12. doi: 10.1007/BF01869600.

轮藻节间细胞中膜运输的自主局部区域控制

Autonomous Local Area Control over Membrane Transport in Chara Internodal Cells.

作者信息

Fisahn J, Lucas W J

机构信息

Department of Botany, University of California, Davis, Davis, California 95616.

出版信息

Plant Physiol. 1991 Apr;95(4):1138-43. doi: 10.1104/pp.95.4.1138.

DOI:10.1104/pp.95.4.1138
PMID:16668102
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1077663/
Abstract

Internodal cells of Chara were separated with a Plexiglas divider into two segments and the vibrating probe was used to investigate the extracellular current profiles that formed along these two surfaces. Treating one segment of the Chara cell with K(+) concentrations greater than 2 millimolar caused a dramatic reduction in the extracellular current pattern in this compartment. Concentrations of 5, 10, and 20 millimolar K(+) were used to establish that a normal current profile could be maintained along the cell surface in the control compartment, whereas the extracellular current profile was strongly reduced along the entire cell surface that was located in the second, high-K(+) compartment. Simultaneous measurements of the membrane potential in the two segments of the divided Chara cell established that, in the presence of elevated K(+) concentrations, a longitudinal voltage gradient of up to 60 millivolts was maintained. Experiments in which the pH value in one compartment was either decreased (pH 6.0) or increased (pH 11) gave rise to a reduced extracellular current profile along this segment of the cell, whereas the pattern in the control segment remained unaltered. These results are discussed in terms of the cellular spatial control system that must function to regulate the regions of outward and inward current, and the concept of autonomous local area (domain) control is presented.

摘要

用有机玻璃隔板将轮藻的节间细胞分隔成两段,并用振动探针研究沿这两个表面形成的细胞外电流分布。用浓度大于2毫摩尔的钾离子处理轮藻细胞的一段,会导致该隔室内细胞外电流模式显著降低。使用5、10和20毫摩尔的钾离子浓度来确定在对照隔室内细胞表面可维持正常的电流分布,而在第二个高钾离子隔室内,沿整个细胞表面的细胞外电流分布则显著降低。对分隔的轮藻细胞两段的膜电位进行同步测量表明,在钾离子浓度升高的情况下,可维持高达60毫伏的纵向电压梯度。在一个隔室内将pH值降低(pH 6.0)或升高(pH 11)的实验导致沿细胞该段的细胞外电流分布降低,而对照段的模式保持不变。根据必须发挥作用以调节向外和向内电流区域的细胞空间控制系统对这些结果进行了讨论,并提出了自主局部区域(域)控制的概念。