Abstract
Inositol-1,4,5-trisphosphate (InsP(3))-mediated calcium signals represent an important mechanism for transmitting external stimuli to the cell. However, information about intracellular spatial patterns of InsP(3) itself is not generally available. In particular, it has not been determined how the interplay of InsP(3) generation, diffusion, and degradation within complex cellular geometries can control the patterns of InsP(3) signaling. Here, we explore the spatial and temporal characteristics of [InsP(3)](cyt) during a bradykinin-induced calcium wave in a neuroblastoma cell. This is achieved by using a unique image-based computer modeling system, Virtual Cell, to integrate experimental data on the rates and spatial distributions of the key molecular components of the process. We conclude that the characteristic calcium dynamics requires rapid, high-amplitude production of [InsP(3)](cyt) in the neurite. This requisite InsP(3) spatiotemporal profile is provided, in turn, as an intrinsic consequence of the cell's morphology, demonstrating how geometry can locally and dramatically intensify cytosolic signals that originate at the plasma membrane. In addition, the model predicts, and experiments confirm, that stimulation of just the neurite, but not the soma or growth cone, is sufficient to generate a calcium response throughout the cell.
MeSH Terms
Animals
Bradykinin/pharmacology
Calcium Signaling/drug effects
Computer Simulation
Dogs
Image Processing, Computer-Assisted
Inositol 1,4,5-Trisphosphate/metabolism,physiology
Mice
Microscopy, Fluorescence
Models, Biological
Neurites/drug effects,physiology
Neuroblastoma
Signal Transduction/drug effects,physiology
Tumor Cells, Cultured
Chemicals
Inositol 1,4,5-Trisphosphate
Bradykinin
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Fink C C
Department of Physiology, University of Connecticut Health Center, Farmington, Connecticut 06030, USA.
Slepchenko B
Moraru I I
Schaff J
Watras J
Loew L M
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