Note to users. If you're seeing this message, it means that your browser cannot find this page's style/presentation instructions -- or possibly that you are using a browser that does not support current Web standards. Find out more about why this message is appearing, and what you can do to make your experience of our site the best it can be.


Science 25 February 1983:
Vol. 219. no. 4587, pp. 991 - 993
DOI: 10.1126/science.6823563

Articles

Science, Vol 219, Issue 4587, 991-993
Copyright © 1983 by American Association for the Advancement of Science


articles

Action potentials in macrophages derived from human monocytes

FV McCann, JJ Cole, PM Guyre, and JA Russell

The electrical activity of macrophages derived from human blood monocytes was recorded in vitro with intracellular microelectrodes and was analyzed with computer-assisted data acquisition and analysis techniques. In cells impaled 6 to 8 days after the cultures were prepared, the resting potentials reached a maximum value of -72 millivolts. The cells were electrically excitable; spikes exhibited a slow upstroke, a fast downstroke, a discrete threshold, a large overshoot, and a brief undershoot. Repetitive firing was induced by a maintained depolarizing current. A positive relation was observed between transmembrane currents and resting potential. Voltage-current relations were nonrectifying for subthreshold current injections. Since these cells had not been treated with any specific activation factors, the electrical activity recorded is evidence for the presence of voltage-dependent inward and outward currents in the membranes of mature macrophages. The electrical signals generated by these cells may be useful for the assay of sensor and effector functions of macrophages, such as chemotaxis, receptor-ligand interactions, and phagocytosis.


THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
Fcgamma Receptor I Activation Triggers a Novel Ca2+-activated Current Selective for Monovalent Cations in the Human Monocytic Cell Line, U937.
R. A. Floto, B. Somasundaram, J. M. Allen, and M. P. Mahaut-Smith (1997)
J. Biol. Chem. 272, 4753-4758
   Abstract »    Full Text »    PDF »



To Advertise     Find Products


Science. ISSN 0036-8075 (print), 1095-9203 (online)