Reconciling periodic rhythms of large-scale biological networks by optimal control
Periodic rhythms are ubiquitous phenomena that illuminate the underlying mechanism of cyclic activities in biological systems, which can be represented by cyclic attractors of the related biological network. Disorders of periodic rhythms are detrimental to the natural behaviours of living organisms....
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Online Access: | https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191698 |
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doaj-10c9883e66644c3d8172c54b83f055852020-11-25T03:52:37ZengThe Royal SocietyRoyal Society Open Science2054-57032020-01-017110.1098/rsos.191698191698Reconciling periodic rhythms of large-scale biological networks by optimal controlMeichen YuanJunlin QuWeirong HongPu LiPeriodic rhythms are ubiquitous phenomena that illuminate the underlying mechanism of cyclic activities in biological systems, which can be represented by cyclic attractors of the related biological network. Disorders of periodic rhythms are detrimental to the natural behaviours of living organisms. Previous studies have shown that the state transition from one to another attractor can be accomplished by regulating external signals. However, most of these studies until now have mainly focused on point attractors while ignoring cyclic ones. The aim of this study is to investigate an approach for reconciling abnormal periodic rhythms, such as diminished circadian amplitude and phase delay, to the regular rhythms of complex biological networks. For this purpose, we formulate and solve a mixed-integer nonlinear dynamic optimization problem simultaneously to identify regulation variables and to determine optimal control strategies for state transition and adjustment of periodic rhythms. Numerical experiments are implemented in three examples including a chaotic system, a mammalian circadian rhythm system and a gastric cancer gene regulatory network. The results show that regulating a small number of biochemical molecules in the network is sufficient to successfully drive the system to the target cyclic attractor by implementing an optimal control strategy.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191698periodic rhythmscyclic attractorsstate transitionoptimal control |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Meichen Yuan Junlin Qu Weirong Hong Pu Li |
spellingShingle |
Meichen Yuan Junlin Qu Weirong Hong Pu Li Reconciling periodic rhythms of large-scale biological networks by optimal control Royal Society Open Science periodic rhythms cyclic attractors state transition optimal control |
author_facet |
Meichen Yuan Junlin Qu Weirong Hong Pu Li |
author_sort |
Meichen Yuan |
title |
Reconciling periodic rhythms of large-scale biological networks by optimal control |
title_short |
Reconciling periodic rhythms of large-scale biological networks by optimal control |
title_full |
Reconciling periodic rhythms of large-scale biological networks by optimal control |
title_fullStr |
Reconciling periodic rhythms of large-scale biological networks by optimal control |
title_full_unstemmed |
Reconciling periodic rhythms of large-scale biological networks by optimal control |
title_sort |
reconciling periodic rhythms of large-scale biological networks by optimal control |
publisher |
The Royal Society |
series |
Royal Society Open Science |
issn |
2054-5703 |
publishDate |
2020-01-01 |
description |
Periodic rhythms are ubiquitous phenomena that illuminate the underlying mechanism of cyclic activities in biological systems, which can be represented by cyclic attractors of the related biological network. Disorders of periodic rhythms are detrimental to the natural behaviours of living organisms. Previous studies have shown that the state transition from one to another attractor can be accomplished by regulating external signals. However, most of these studies until now have mainly focused on point attractors while ignoring cyclic ones. The aim of this study is to investigate an approach for reconciling abnormal periodic rhythms, such as diminished circadian amplitude and phase delay, to the regular rhythms of complex biological networks. For this purpose, we formulate and solve a mixed-integer nonlinear dynamic optimization problem simultaneously to identify regulation variables and to determine optimal control strategies for state transition and adjustment of periodic rhythms. Numerical experiments are implemented in three examples including a chaotic system, a mammalian circadian rhythm system and a gastric cancer gene regulatory network. The results show that regulating a small number of biochemical molecules in the network is sufficient to successfully drive the system to the target cyclic attractor by implementing an optimal control strategy. |
topic |
periodic rhythms cyclic attractors state transition optimal control |
url |
https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191698 |
work_keys_str_mv |
AT meichenyuan reconcilingperiodicrhythmsoflargescalebiologicalnetworksbyoptimalcontrol AT junlinqu reconcilingperiodicrhythmsoflargescalebiologicalnetworksbyoptimalcontrol AT weironghong reconcilingperiodicrhythmsoflargescalebiologicalnetworksbyoptimalcontrol AT puli reconcilingperiodicrhythmsoflargescalebiologicalnetworksbyoptimalcontrol |
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