Skip to main navigation Skip to search Skip to main content

Broken detailed balance and non-equilibrium dynamics in living systems: A review

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

Living systems operate far from thermodynamic equilibrium. Enzymatic activity can induce broken detailed balance at the molecular scale. This molecular scale breaking of detailed balance is crucial to achieve biological functions such as high-fidelity transcription and translation, sensing, adaptation, biochemical patterning, and force generation. While biological systems such as motor enzymes violate detailed balance at the molecular scale, it remains unclear how non-equilibrium dynamics manifests at the mesoscale in systems that are driven through the collective activity of many motors. Indeed, in several cellular systems the presence of non-equilibrium dynamics is not always evident at large scales. For example, in the cytoskeleton or in chromosomes one can observe stationary stochastic processes that appear at first glance thermally driven. This raises the question how non-equilibrium fluctuations can be discerned from thermal noise. We discuss approaches that have recently been developed to address this question, including methods based on measuring the extent to which the system violates the fluctuation-dissipation theorem. We also review applications of this approach to reconstituted cytoskeletal networks, the cytoplasm of living cells, and cell membranes. Furthermore, we discuss a more recent approach to detect actively driven dynamics, which is based on inferring broken detailed balance. This constitutes a non-invasive method that uses time-lapse microscopy data, and can be applied to a broad range of systems in cells and tissue. We discuss the ideas underlying this method and its application to several examples including flagella, primary cilia, and cytoskeletal networks. Finally, we briefly discuss recent developments in stochastic thermodynamics and non-equilibrium statistical mechanics, which offer new perspectives to understand the physics of living systems.
Original languageEnglish
Article number066601
JournalReports on Progress in Physics
Volume81
Issue number6
DOIs
Publication statusPublished - 18 Apr 2018
Externally publishedYes

Funding

This work was supported by the German Excellence Initiative via the program NanoSystems Initiative Munich (NIM) and by the German Research Council (DFG) within the frame-work of the Transregio 174 ‘Spatiotemporal dynamics of bacterial cells’. FM is supported by a DFG Fellowship through the Graduate School of Quantitative Biosciences Munich (QBM). This project has received funding from the European Union’s Horizon 2020 research and innovation programme under European Training Network (ETN) grant 674979-NANOTRANS (JG) and was performed in part at the Aspen Center for Physics (CPB), which is supported by National Science Foundation grant PHY-1607611. We thank T Betz, G Berman, W Bialek, D Braun, D Brückner, C Brangwynne, G Crooks, N Fakhri, B Fabry, E Frey, N Gov, M Guo, G Gradziuk, R Granek, L Jawerth, F Jülicher, G Koenderink, K Kroy, M Lenz, T Liverpool, T Lubensky, B Machta, F MacKintosh, J Messelink, K Miermans, J Rädler, P Ronceray, J Shaevitz, D Schwab, M Sheinman, Y Shokef, C Schmidt, C Storm, J Tailleur, M Tikhonov, D Weitz, M Wigbers, and N Wingreen, for many stimulating discussions.

FundersFunder number
European Training Network674979-NANOTRANS
German Excellence Initiative
German Research Council
Graduate School of Quantitative Biosciences Munich
Nanosystems Initiative Munich
QBM
National Science FoundationPHY-1607611
Horizon 2020 Framework Programme674979
Deutsche Forschungsgemeinschaft
Horizon 2020

    Keywords

    • active living matter
    • cellular biophysics
    • detailed balance
    • fluctuation-dissipation theorem
    • fluctuations
    • non-equilibrium

    Fingerprint

    Dive into the research topics of 'Broken detailed balance and non-equilibrium dynamics in living systems: A review'. Together they form a unique fingerprint.

    Cite this