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Retroactivity induced operating regime transition in an enzymatic futile cycle

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dc.contributor.author PARUNDEKAR A.
dc.contributor.author VISWANATHAN G.A.
dc.date.accessioned 2023-03-17T04:36:45Z
dc.date.available 2023-03-17T04:36:45Z
dc.date.issued 2021
dc.identifier.citation PLoS ONE,16(4 April) en_US
dc.identifier.issn 19326203
dc.identifier.uri https://dx.doi.org/10.1371/journal.pone.0250830
dc.identifier.uri http://localhost:8080/xmlui/handle/100/37481
dc.description.abstract Activated phosphorylation-dephosphorylation biochemical reaction cycles are a class of enzymatic futile cycles. A futile cycle such as a single mapk cascade governed by two underlying enzymatic reactions permits hyperbolic (h), signal transducing (st), thresholdhyperbolic (th) and ultrasensitive (u) operating regimes that characterize input-output behaviour. Retroactive signalling caused by load due to sequestration of phosphorylated or unphosphorylated form of the substrate in a single enzymatic cascade without explicit feedback can introduce two-way communication, a feature not possible otherwise. We systematically characterize the operating regimes of a futile cycle subject to retroactivity in either of the substrate forms. We demonstrate that increasing retroactivity strength, which quantifies the downstream load, can trigger five possible regime transitions. Retroactivity strength is a reflection of the fraction of the substrate sequestered by its downstream target. Remarkably, the minimum required retroactivity strength to evidence any sequestration triggered regime transition demands 23% of the substrate bound to its downstream target. This minimum retroactivity strength corresponds to the transition of the dose-response curve from st to h regime. We show that modulation of the saturation and unsaturation levels of the enzymatic reactions by retroactivity is the fundamental mechanism governing operating regime transition. © 2021 parundekar, viswanathan. This is an open access article distributed under the terms of the creative commons attribution license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. en_US
dc.language.iso English en_US
dc.publisher Public Library of Science en_US
dc.subject.other article en_US
dc.subject.other dose response en_US
dc.subject.other biological model en_US
dc.subject.other citric acid cycle en_US
dc.subject.other human en_US
dc.subject.other MAPK signaling en_US
dc.subject.other Markov chain en_US
dc.subject.other metabolism en_US
dc.subject.other phosphorylation en_US
dc.subject.other physiological feedback en_US
dc.subject.other signal transduction en_US
dc.subject.other phosphoprotein phosphatase en_US
dc.subject.other protein kinase en_US
dc.subject.other Feedback, Physiological en_US
dc.subject.other Humans en_US
dc.subject.other MAP Kinase Signaling System en_US
dc.subject.other Metabolic Networks and Pathways en_US
dc.subject.other Models, Biological en_US
dc.subject.other Phosphoprotein Phosphatases en_US
dc.subject.other Phosphorylation en_US
dc.subject.other Protein Kinases en_US
dc.subject.other Signal Transduction en_US
dc.subject.other Stochastic Processes en_US
dc.subject.other Substrate Cycling en_US
dc.title Retroactivity induced operating regime transition in an enzymatic futile cycle en_US
dc.type Article en_US


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