A mathematical model of pacemaker activity recorded from mouse small intestine

Author:

Youm Jae Boum1,Kim Nari1,Han Jin1,Kim Euiyong1,Joo Hyun1,Leem Chae Hun2,Goto Gazunori3,Noma Akinori3,Earm Yung E4

Affiliation:

1. Mitochondrial Signaling Laboratory, Department of Physiology and Biophysics, College of Medicine, 2020 Cardiovascular Institute, Inje UniversityBusan 614-735, South Korea

2. Department of Physiology, University of Ulsan College of Medicine388-1 Poongnap-Dong Songpa-Ku, Seoul 138-736, South Korea

3. Department of Physiology, Faculty of Medicine, Kyoto UniversityYoshida-Konoe, Sakyo-ku, Kyoto 606-8501, Japan

4. Department of Physiology and National Research Laboratory for Cellular Signalling, Seoul National University College of Medicine28 Yonkeun-Dong, Chongno-Ku 110-799, Seoul, South Korea

Abstract

The pacemaker activity of interstitial cells of Cajal (ICCs) has been known to initiate the propagation of slow waves along the whole gastrointestinal tract through spontaneous and repetitive generation of action potentials. We studied the mechanism of the pacemaker activity of ICCs in the mouse small intestine and tested it using a mathematical model. The model includes ion channels, exchanger, pumps and intracellular machinery for Ca 2+ regulation. The model also incorporates inositol 1,4,5-triphosphate (IP 3 ) production and IP 3 -mediated Ca 2+ release activities. Most of the parameters were obtained from the literature and were modified to fit the experimental results of ICCs from mouse small intestine. We were then able to compose a mathematical model that simulates the pacemaker activity of ICCs. The model generates pacemaker potentials regularly and repetitively as long as the simulation continues. The frequency was set at 20 min −1 and the duration at 50% repolarization was 639 ms. The resting and overshoot potentials were −78 and +1.2 mV, respectively. The reconstructed pacemaker potentials closely matched those obtained from animal experiments. The model supports the idea that cyclic changes in [Ca 2+ ] i and [IP 3 ] play key roles in the generation of ICC pacemaker activity in the mouse small intestine.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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