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Electrophysiological properties ofDictyostelium derived from membrane potential measurements with microelectrodes
Authors:Bert Van Duijn  Dirk L Ypey  Loek G Van der Molen
Institution:(1) Cell Biology and Genetics Unit, Zoological Laboratory, University of Leiden, NL-2300 RA Leiden, The Netherlands;(2) Department of Physiology and Physiological Physics, University of Leiden, NL-2333 AL Leiden, The Netherlands
Abstract:Summary Electrical membrane properties of the cellular slime moldDictyostelium discoideum were investigated with the use of intracellular microelectrodes. The rapid potential transients (1 msec) upon microelectrode penetration of normal cells had a negative-going peak-shaped time course. This indicates that penetration of a cell with a microelectrode causes a rapid depolarization, which can just be recorded by the microelectrode itself. Therefore, the initial (negative) peak potential transient valueE p (–19 mV) should be used as an indicator of the resting membrane potentialE m ofD. discoideum before impalement, rather than the subsequent semistationary depolarized valueE n (–5 mV). Using enlarged cells such as giant mutant cells (E p=–39 mV) and electrofused normal cells (E p=–30 mV) improved the reliability ofE p as an indicator ofE m. From the data we concluded thatE m ofD. discoideum cells bathed in (mm) 40 NaCl, 5 KCl and 1 CaCl2 is at least –50 mV. This potential was shown to be dependent on extracellular potassium. The average input resistanceR i of the impaled cells was 56 MOHgr for normalD. discoideum. However, our analysis indicates that the membrane resistance of these cells before impalement is >1 GOHgr. Specific membrane capacitance was 1–3 pF/cm2. Long-term recording of the membrane potential showed the existence of a transient hyperpolarization following the rapid impalement transient. This hyperpolarization was associated with an increase inR i of the impaled cell. It was followed by a depolarization, which was associated with a decrease inR i. The depolarization time was dependent on the filling of the microelectrode. The present characterization of the electrical membrane properties ofDictyostelium cells is a first step in a membrane electrophysiological analysis of signal transduction in cellular slime molds.
Keywords:membrane potential  Dictyostelium discoideum  microelectrode  peak transient  hyperpolarization  potassium conductance
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