Demidchik V., Sokolik A., Yurin V.
Department of Physiology and Biochemistry of Plants, Biological Faculty, Belarus State University, Skaryna Avenue 4, 220050, Minsk, Republic of Belarus.
Plant Physiol. 1997 Aug;114(4):1313-1325. doi: 10.1104/pp.114.4.1313.
Changes in plasmalemma permeability caused by excessive Cu2+ levels were examined in cells of a freshwater alga (Nitella flexilis) using a conventional microelectrode voltage-clamp technique. A rapid Cu2+-induced increase of plasmalemma conductance starting from 5 [mu]M Cu2+ was shown. Cu2+-induced plasmalemma conductance (ClGm) was nonselective and potential-independent, resembling the conductance of nonselective ionic leakage of the plasmalemma. The K+ channel conductance was shown to be unaltered by Cu2+, and a decrease in plasmalemma Cl- channel conductance at Cu2+ concentrations above 5 [mu]M was found. The depression of Cl- channels and ClGm were time-, dosage-, and Ca2+-dependent processes, revealing a great similarity in all parameters, with Ca2+ causing the preventive effect by shifting the effective Cu2+ concentrations to higher levels. This phenomenon may be explained by the same Cu2+-modified target on the plasmalemma both for ClGm and Cl- channel depression. In addition, a reversible, inhibitory effect of Cu2+ (>10 [mu]M) on the light-stimulated H+-ATPase electrogenic pump in the plasmalemma was demonstrated. This effect was Ca2+- independent, which made it possible to distinguish it from ClGm. Therefore, the Cu2+-induced dramatic alterations in plant cell plasmalemma permeability are caused mainly by nonselective conductance increases and electrogenic pump inhibition.
利用传统的微电极电压钳技术,在一种淡水藻类(柔膜丽藻)的细胞中检测了过量铜离子(Cu2+)水平引起的质膜通透性变化。结果显示,从5 μM Cu2+开始,Cu2+诱导质膜电导迅速增加。Cu2+诱导的质膜电导(ClGm)是非选择性的且与电位无关,类似于质膜非选择性离子泄漏的电导。结果表明,K+通道电导不受Cu2+影响,而在Cu2+浓度高于5 μM时,质膜Cl-通道电导降低。Cl-通道和ClGm的抑制是时间、剂量和Ca2+依赖性过程,所有参数都显示出很大的相似性,Ca2+通过将有效Cu2+浓度转移到更高水平而产生预防作用。这种现象可以用质膜上相同的Cu2+修饰靶点来解释,该靶点同时导致ClGm和Cl-通道抑制。此外,还证明了Cu2+(>10 μM)对质膜上光刺激的H+-ATPase生电泵具有可逆的抑制作用。这种作用与Ca2+无关,这使得它能够与ClGm区分开来。因此,Cu2+诱导的植物细胞质膜通透性的显著变化主要是由非选择性电导增加和生电泵抑制引起的。