TY - JOUR
T1 - Intercellular delay regulates the collective period of repressively coupled gene regulatory oscillator networks
AU - Wang, Yongqiang
AU - Hori, Yutaka
AU - Hara, Shinji
AU - Doyle, Francis J.
PY - 2014/1
Y1 - 2014/1
N2 - Most biological rhythms are generated by a population of cellular oscillators coupled through intercellular signaling. Recent experimental evidence shows that the collective period may differ significantly from the autonomous period in the presence of intercellular delays. The phenomenon has been investigated using delay-coupled phase oscillators, but the proposed phase model contains no direct biological mechanism, which may weaken the model's reliability in unraveling biophysical principles. Based on a published gene regulatory oscillator model, we analyze the collective period of delay-coupled biological oscillators using the multivariable harmonic balance technique. We prove that, in contradiction to the common intuition that the collective period increases linearly with the coupling delay, the collective period turns out to be a periodic function of the intercellular delay. More surprisingly, the collective period may even decrease with the intercellular delay when the delay resides in certain regions. The collective period is given in a closed-form in terms of biochemical reaction constants and thus provides biological insights as well as guidance in synthetic-biological-oscillator design. Simulation results are given based on a segmentation clock model to confirm the theoretical predictions.
AB - Most biological rhythms are generated by a population of cellular oscillators coupled through intercellular signaling. Recent experimental evidence shows that the collective period may differ significantly from the autonomous period in the presence of intercellular delays. The phenomenon has been investigated using delay-coupled phase oscillators, but the proposed phase model contains no direct biological mechanism, which may weaken the model's reliability in unraveling biophysical principles. Based on a published gene regulatory oscillator model, we analyze the collective period of delay-coupled biological oscillators using the multivariable harmonic balance technique. We prove that, in contradiction to the common intuition that the collective period increases linearly with the coupling delay, the collective period turns out to be a periodic function of the intercellular delay. More surprisingly, the collective period may even decrease with the intercellular delay when the delay resides in certain regions. The collective period is given in a closed-form in terms of biochemical reaction constants and thus provides biological insights as well as guidance in synthetic-biological-oscillator design. Simulation results are given based on a segmentation clock model to confirm the theoretical predictions.
KW - Collective period
KW - Gene regulatory oscillators
KW - Intercellular delay
KW - Repressive coupling
UR - http://www.scopus.com/inward/record.url?scp=84891615813&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=84891615813&partnerID=8YFLogxK
U2 - 10.1109/TAC.2013.2270072
DO - 10.1109/TAC.2013.2270072
M3 - Article
AN - SCOPUS:84891615813
SN - 0018-9286
VL - 59
SP - 211
EP - 216
JO - IRE Transactions on Automatic Control
JF - IRE Transactions on Automatic Control
IS - 1
M1 - 6544203
ER -