Abstract
Several recent studies have demonstrated that eukaryotic cells, including amoeboid cells of Dictyostelium discoideum and neutrophils, respond to chemoattractants by translocation of PH-domain proteins to the cell membrane, where these proteins participate in the modulation of the cytoskeleton and relay of the signal. When the chemoattractant is released from a pipette, the localization is found predominantly on the proximal side of the cell. The recruitment of PH-domain proteins, particularly for Dictyostelium cells, occurs very rapidly (<2 s). Thus, the mechanism responsible for the first step in the directional sensing process of a cell must be able to establish an asymmetry on the same time scale. Here, we propose a simple mechanism in which a second messenger, generated by local activation of the membrane, diffuses through the interior of the cell, suppresses the activation of the back of the cell, and converts the temporal gradient into an initial cellular asymmetry. Numerical simulations show that such a mechanism is plausible. Available evidence suggests that the internal inhibitor may be cGMP, which accumulates within less than a second following treatment of cells with external cAMP.
MeSH Terms
Animals
Biophysical Phenomena
Biophysics
Chemotaxis
Cyclic AMP/metabolism
Cyclic GMP/metabolism
Dictyostelium
Eukaryotic Cells/cytology,metabolism
Hydrogen-Ion Concentration
Models, Biological
Mutation
Neutrophils/metabolism
Protein Structure, Tertiary
Time Factors
Chemicals
Cyclic AMP
Cyclic GMP
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Rappel Wouter-Jan
Department of Physics, University of California, San Diego, La Jolla, California 92093-0319, USA. rappel@physics.ucsd.edu
Thomas Peter J
Levine Herbert
Loomis William F
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