Non-Markovian Modeling of Nonequilibrium Fluctuations and Dissipation in Active Viscoelastic Biomatter

ORAL

Abstract

We present a theoretical framework based on a Hamiltonian that models the elastic coupling between a tracer particle and the surrounding active viscoelastic biomatter. From this, we derive a generalized Langevin equation to describe the non-equilibrium mechanical response of the tracer. Our analytical expressions for the frequency-dependent tracer response function and the positional autocorrelation function align quantitatively with the available experimental data from red blood cells and actomyosin networks, both with and without adenosine triphosphate (ATP), across the entire frequency spectrum. Our model successfully reproduces the low-frequency violation of the fluctuation-dissipation theorem observed in the active systems. The extracted viscoelastic power laws, elastic constants, and effective friction coefficients from experimental data offer straightforward physical interpretations.

*A. A. and R. R. N. the European Research Council (ERC) Advanced Grant No. MaMemo Grant No. 835117, the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) Project ID 431232613—SFB 1449. A. N. acknowledges support from the ICTP (Trieste, Italy) through the Associates Programme and the Simon Foundation through Grant No. 284558FY19.

Publication: Abbasi, Amir, Roland R. Netz, and Ali Naji. "Non-markovian modeling of nonequilibrium fluctuations and dissipation in active viscoelastic biomatter." Physical Review Letters 131.22 (2023): 228202.

Presenters

  • Amir Abbasi

    • Free University of Berlin

Authors

  • Amir Abbasi

    • Free University of Berlin
  • Roland R Netz

    • Free University of Berlin
  • Ali Naji

    • Sultan Qaboos University