Fr. 69.00

Mathematical Analysis of Complex Cellular Activity

English · Paperback / Softback

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Description

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This book contains two review articles on mathematical physiology that deal with closely related topics but were written and can be read independently.
The first article reviews the basic theory of calcium oscillations (common to almost all cell types), including spatio-temporal behaviors such as waves. The second article uses, and expands on, much of this basic theory to show how the interaction of cytosolic calcium oscillators with membrane ion channels can result in highly complex patterns of electrical spiking. Through these examples one can see clearly how multiple oscillatory processes interact within a cell, and how mathematical methods can be used to understand such interactions better. The two reviews provide excellent examples of how mathematics and physiology can learn from each other, and work jointly towards a better understanding of complex cellular processes.
Review 1: Richard Bertram, Joel Tabak, Wondimu Teka, Theodore Vo, Martin Wechselberger: Geometric Singular Perturbation Analysis of Bursting Oscillations in Pituitary Cells
Review 2: Vivien Kirk, James Sneyd: Nonlinear Dynamics of Calcium

List of contents

Preface.- Bursting Oscillations in Pituitary Cells: Z-Curves, Folded Nodes, Calcium Stores and Mixed-Mode Oscillations.- The Nonlinear Dynamics of Calcium.

About the author

Professor Richard Bertram is a Mathematics Professor at Florida State University. His current academic interests include the intersection between biology and mathematics.
Professor James Sneyd is a Professor in Applied Mathematics at The University of Auckland and his current research interests include mathematical physiology and nonlinear dynamical systems.

Summary

This book contains two review articles on mathematical physiology that deal with closely related topics but were written and can be read independently.
The first article reviews the basic theory of calcium oscillations (common to almost all cell types), including spatio-temporal behaviors such as waves. The second article uses, and expands on, much of this basic theory to show how the interaction of cytosolic calcium oscillators with membrane ion channels can result in highly complex patterns of electrical spiking. Through these examples one can see clearly how multiple oscillatory processes interact within a cell, and how mathematical methods can be used to understand such interactions better. The two reviews provide excellent examples of how mathematics and physiology can learn from each other, and work jointly towards a better understanding of complex cellular processes.
Review 1: Richard Bertram, Joel Tabak, Wondimu Teka, Theodore Vo, Martin Wechselberger: Geometric Singular Perturbation Analysis of Bursting Oscillations in Pituitary Cells
Review 2: Vivien Kirk, James Sneyd: Nonlinear Dynamics of Calcium

Product details

Authors Richar Bertram, Richard Bertram, Vivien Kirk, James Sneyd, Joe Tabak, Joel Tabak, Wondimu Teka, Wondimu et al Teka, Theodore Vo, Martin Wechselberger
Assisted by Christopher Jones (Editor), Bjorn Standstede (Editor), Lai-Sang Young (Editor)
Publisher Springer, Berlin
 
Languages English
Product format Paperback / Softback
Released 01.01.2015
 
EAN 9783319181134
ISBN 978-3-31-918113-4
No. of pages 107
Dimensions 156 mm x 235 mm x 7 mm
Weight 217 g
Illustrations XII, 107 p. 37 illus., 25 illus. in color.
Series Frontiers in Applied Dynamical Systems: Reviews and Tutorials
Frontiers in Applied Dynamical Systems: Reviews and Tutorials
Subject Natural sciences, medicine, IT, technology > Mathematics > Analysis

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