VOLTAGE-DEPENDENT CALCIUM-PERMEABLE CHANNELS IN THE PLASMA-MEMBRANE OF A HIGHER-PLANT CELL

被引:112
作者
THULEAU, P
WARD, JM
RANJEVA, R
SCHROEDER, JI
机构
[1] UNIV CALIF SAN DIEGO,DEPT BIOL,LA JOLLA,CA 92093
[2] UNIV CALIF SAN DIEGO,CTR MOLEC GENET,LA JOLLA,CA 92093
[3] UNIV TOULOUSE 3,CNRS,F-31062 TOULOUSE,FRANCE
关键词
CALCIUM CHANNELS; CYTOSOLIC CA2+; ELICITOR; SIGNAL TRANSDUCTION;
D O I
10.1002/j.1460-2075.1994.tb06595.x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Numerous biological assays and pharmacological studies on various higher plant tissues have led to the suggestion that voltage-dependent plasma membrane Ca2+ channels play prominent roles in initiating signal transduction processes during plant growth and development. However, to date no direct evidence has been obtained for the existence of such depolarization-activated Ca2+ channels in the plasma membrane of higher plant cells. Carrot suspension cells (Daucus carota L.) provide a well-suited system to determine whether voltage-dependent Ca2+ channels are present in the plasma membrane of higher plants and to characterize the properties of putative Ca2+ channels. It is known that both depolarization, caused by raising extracellular K+, and exposure to fungal toxins or oligogalacturonides induce Ca2+ influx into carrot cells. By direct application of patch-clamp techniques to isolated carrot protoplasts, we show here that depolarization of the plasma membrane positive to -135 mV activates Ca2+-permeable channels. These voltage-dependent ion channels were more permeable to Ca2+ than K+, while displaying large permeabilities to Ba2+ and Mg2+ ions. Ca2+-permeable channels showed slow and reversible inactivation. The single-channel conductance was 13 pS in 40 mM CaCl2. These data provide;direct evidence for the existence of voltage-dependent Ca2+ channels in the plasma membrane of a higher plant cell and point to physiological mechanisms for plant Ca2+ channel regulation. The depolarization-activated Ca2+-permeable channels identified here could constitute a regulated pathway for Ca2+ influx in response to physiologically occurring stimulus-induced depolarizations in higher plant cells.
引用
收藏
页码:2970 / 2975
页数:6
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