Synchronized oscillations in a mathematical model of segmentation in zebrafish
Somitogenesis is a process for the development of somites which are transient, segmental structures that lie along the anterior-posterior axis of vertebrate embryos. The pattern of somites is governed by the segmentation clock and its timing is controlled by the clock genes which undergo synchronous...
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| Published in | Nonlinearity Vol. 25; no. 4; pp. 869 - 904 |
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| Main Authors | , , |
| Format | Journal Article |
| Language | English |
| Published |
Bristol
Institute of Physics
01.04.2012
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| Subjects | |
| Online Access | Get full text |
| ISSN | 0951-7715 1361-6544 |
| DOI | 10.1088/0951-7715/25/4/869 |
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| Abstract | Somitogenesis is a process for the development of somites which are transient, segmental structures that lie along the anterior-posterior axis of vertebrate embryos. The pattern of somites is governed by the segmentation clock and its timing is controlled by the clock genes which undergo synchronous oscillation over adjacent cells in the posterior presomitic mesoderm (PSM). In this paper, we analyze a mathematical model which depicts the kinetics of the zebrafish segmentation clock genes subject to direct autorepression by their own products under time delay, and cell-to-cell interaction through Delta-Notch signalling. Our goal is to elucidate how synchronous oscillations are generated for the cells in the posterior PSM, and how oscillations are arrested for the cells in the anterior PSM. For this system of delayed equations, an iteration technique is employed to derive the global convergence to the synchronous equilibrium, which corresponds to the oscillation-arrested. By applying the delay Hopf bifurcation theory and the center manifold theorem, we derive the criteria for the existence of stable synchronous oscillations for the cells at the tail bud of the PSM. Our analysis provides the basic parameter ranges and delay magnitudes for stable synchronous, asynchronous oscillation and oscillation-arrested. We exhibit how synchronous oscillations are affected by the degradation rates and delays. Extended from the analytic theory, further numerical findings linked to the segmentation process are presented. |
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| AbstractList | Somitogenesis is a process for the development of somites which are transient, segmental structures that lie along the anterior-posterior axis of vertebrate embryos. The pattern of somites is governed by the segmentation clock and its timing is controlled by the clock genes which undergo synchronous oscillation over adjacent cells in the posterior presomitic mesoderm (PSM). In this paper, we analyze a mathematical model which depicts the kinetics of the zebrafish segmentation clock genes subject to direct autorepression by their own products under time delay, and cell-to-cell interaction through Delta-Notch signalling. Our goal is to elucidate how synchronous oscillations are generated for the cells in the posterior PSM, and how oscillations are arrested for the cells in the anterior PSM. For this system of delayed equations, an iteration technique is employed to derive the global convergence to the synchronous equilibrium, which corresponds to the oscillation-arrested. By applying the delay Hopf bifurcation theory and the center manifold theorem, we derive the criteria for the existence of stable synchronous oscillations for the cells at the tail bud of the PSM. Our analysis provides the basic parameter ranges and delay magnitudes for stable synchronous, asynchronous oscillation and oscillation-arrested. We exhibit how synchronous oscillations are affected by the degradation rates and delays. Extended from the analytic theory, further numerical findings linked to the segmentation process are presented. |
| Author | Tseng, Jui-Pin Liao, Kang-Ling Shih, Chih-Wen |
| Author_xml | – sequence: 1 givenname: Kang-Ling surname: Liao fullname: Liao, Kang-Ling – sequence: 2 givenname: Chih-Wen surname: Shih fullname: Shih, Chih-Wen – sequence: 3 givenname: Jui-Pin surname: Tseng fullname: Tseng, Jui-Pin |
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| CitedBy_id | crossref_primary_10_3934_dcdsb_2012_17_2789 crossref_primary_10_1007_s00285_017_1138_1 crossref_primary_10_1007_s00332_023_09989_9 crossref_primary_10_1109_TNNLS_2015_2404801 crossref_primary_10_1007_s11538_013_9921_7 crossref_primary_10_1007_s11538_021_00883_7 crossref_primary_10_3934_dcds_2013_33_4693 crossref_primary_10_1137_130907720 |
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| Keywords | Asynchronous Segmentation Nonlinear analysis Notch Iteration Bifurcation theory Equilibrium Delay Transients Degradation Kinetic model Oscillation Development Delay time Timing Hopf bifurcation Mathematical model Cell By product Posterior distribution Mathematical physics |
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| References | 22 24 25 26 27 28 29 31 10 32 11 33 12 34 13 35 14 36 37 16 38 17 39 18 19 Shih C W (30) 2008; 21 Liao K L Shih C W (23) 2012 1 2 3 4 5 6 7 8 9 Hassard B D (15) 1981 20 21 |
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| SubjectTerms | Applications Clocks Danio rerio Delay Exact sciences and technology Freshwater Global analysis, analysis on manifolds Insurance, economics, finance Mathematical analysis Mathematical methods in physics Mathematical models Mathematics Nonlinear algebraic and transcendental equations Numerical analysis Numerical analysis. Scientific computation Oscillations Other topics in mathematical methods in physics Physics Probability and statistics Sciences and techniques of general use Segmentation Statistics Synchronous Topology. Manifolds and cell complexes. Global analysis and analysis on manifolds Zebrafish |
| Title | Synchronized oscillations in a mathematical model of segmentation in zebrafish |
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