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Dissipation and energy propagation across scales in an active cytoskeletal material

Living systems are intrinsically nonequilibrium: They use metabolically derived chemical energy to power their emergent dynamics and self-organization. A crucial driver of these dynamics is the cellular cytoskeleton, a defining example of an active material where the energy injected by molecular mot...

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Autores principales: Foster, Peter J., Bae, Jinhye, Lemma, Bezia, Zheng, Juanjuan, Ireland, William, Chandrakar, Pooja, Boros, Rémi, Dogic, Zvonimir, Needleman, Daniel J., Vlassak, Joost J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10083585/
https://www.ncbi.nlm.nih.gov/pubmed/37000847
http://dx.doi.org/10.1073/pnas.2207662120
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author Foster, Peter J.
Bae, Jinhye
Lemma, Bezia
Zheng, Juanjuan
Ireland, William
Chandrakar, Pooja
Boros, Rémi
Dogic, Zvonimir
Needleman, Daniel J.
Vlassak, Joost J.
author_facet Foster, Peter J.
Bae, Jinhye
Lemma, Bezia
Zheng, Juanjuan
Ireland, William
Chandrakar, Pooja
Boros, Rémi
Dogic, Zvonimir
Needleman, Daniel J.
Vlassak, Joost J.
author_sort Foster, Peter J.
collection PubMed
description Living systems are intrinsically nonequilibrium: They use metabolically derived chemical energy to power their emergent dynamics and self-organization. A crucial driver of these dynamics is the cellular cytoskeleton, a defining example of an active material where the energy injected by molecular motors cascades across length scales, allowing the material to break the constraints of thermodynamic equilibrium and display emergent nonequilibrium dynamics only possible due to the constant influx of energy. Notwithstanding recent experimental advances in the use of local probes to quantify entropy production and the breaking of detailed balance, little is known about the energetics of active materials or how energy propagates from the molecular to emergent length scales. Here, we use a recently developed picowatt calorimeter to experimentally measure the energetics of an active microtubule gel that displays emergent large-scale flows. We find that only approximately one-billionth of the system’s total energy consumption contributes to these emergent flows. We develop a chemical kinetics model that quantitatively captures how the system’s total thermal dissipation varies with ATP and microtubule concentrations but that breaks down at high motor concentration, signaling an interference between motors. Finally, we estimate how energy losses accumulate across scales. Taken together, these results highlight energetic efficiency as a key consideration for the engineering of active materials and are a powerful step toward developing a nonequilibrium thermodynamics of living systems.
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spelling pubmed-100835852023-10-01 Dissipation and energy propagation across scales in an active cytoskeletal material Foster, Peter J. Bae, Jinhye Lemma, Bezia Zheng, Juanjuan Ireland, William Chandrakar, Pooja Boros, Rémi Dogic, Zvonimir Needleman, Daniel J. Vlassak, Joost J. Proc Natl Acad Sci U S A Physical Sciences Living systems are intrinsically nonequilibrium: They use metabolically derived chemical energy to power their emergent dynamics and self-organization. A crucial driver of these dynamics is the cellular cytoskeleton, a defining example of an active material where the energy injected by molecular motors cascades across length scales, allowing the material to break the constraints of thermodynamic equilibrium and display emergent nonequilibrium dynamics only possible due to the constant influx of energy. Notwithstanding recent experimental advances in the use of local probes to quantify entropy production and the breaking of detailed balance, little is known about the energetics of active materials or how energy propagates from the molecular to emergent length scales. Here, we use a recently developed picowatt calorimeter to experimentally measure the energetics of an active microtubule gel that displays emergent large-scale flows. We find that only approximately one-billionth of the system’s total energy consumption contributes to these emergent flows. We develop a chemical kinetics model that quantitatively captures how the system’s total thermal dissipation varies with ATP and microtubule concentrations but that breaks down at high motor concentration, signaling an interference between motors. Finally, we estimate how energy losses accumulate across scales. Taken together, these results highlight energetic efficiency as a key consideration for the engineering of active materials and are a powerful step toward developing a nonequilibrium thermodynamics of living systems. National Academy of Sciences 2023-03-31 2023-04-04 /pmc/articles/PMC10083585/ /pubmed/37000847 http://dx.doi.org/10.1073/pnas.2207662120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Foster, Peter J.
Bae, Jinhye
Lemma, Bezia
Zheng, Juanjuan
Ireland, William
Chandrakar, Pooja
Boros, Rémi
Dogic, Zvonimir
Needleman, Daniel J.
Vlassak, Joost J.
Dissipation and energy propagation across scales in an active cytoskeletal material
title Dissipation and energy propagation across scales in an active cytoskeletal material
title_full Dissipation and energy propagation across scales in an active cytoskeletal material
title_fullStr Dissipation and energy propagation across scales in an active cytoskeletal material
title_full_unstemmed Dissipation and energy propagation across scales in an active cytoskeletal material
title_short Dissipation and energy propagation across scales in an active cytoskeletal material
title_sort dissipation and energy propagation across scales in an active cytoskeletal material
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10083585/
https://www.ncbi.nlm.nih.gov/pubmed/37000847
http://dx.doi.org/10.1073/pnas.2207662120
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