Nonequilibrium Dynamics at Cellular Interfaces: Insights From Simulation and Theory

被引:0
|
作者
Jiao, Zheng [1 ]
Gao, Lijuan [1 ]
Jin, Xueqing [1 ]
Li, Jiaqi [1 ]
Wang, Yuming [1 ]
Chen, Wenlong [1 ]
Yan, Li-Tang [1 ]
机构
[1] Tsinghua Univ, Dept Chem Engn, State Key Lab Chem Engn, Beijing, Peoples R China
关键词
active matter; Brownian dynamics simulations; cellular interface; nonequilibrium dynamics; statistical mechanics; CARGO TRANSPORT; COARSENING DYNAMICS; BROWNIAN-MOTION; MYOSIN VC; MOTORS; CHEMOTAXIS; DIFFUSION; PROTEIN; MICRODOMAINS; MEMBRANES;
D O I
10.1002/wcms.1736
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Active matters, which consume energy to exert mechanical forces, include molecular motors, synthetic nanomachines, actively propelled bacteria, and viruses. A series of unique phenomena emerge when active matters interact with cellular interfaces. Activity changes the mechanism of nanoparticle intracellular delivery, while active mechanical processes generated in the cytoskeleton play a major role in membrane protein distribution and transport. This review provides a comprehensive overview of the theoretical and simulation models used to study these nonequilibrium phenomena, offering insights into how activity enhances cellular uptake, influences membrane deformation, and governs surface transport dynamics. Furthermore, we explore the impact of membrane properties, such as fluidity and viscosity, on transport efficiency and discuss the slippage dynamics and active rotation behaviors on the membrane surface. The interplay of active particles and membranes highlights the essential role of nonequilibrium dynamics in cellular transport processes, with potential applications in drug delivery and nanotechnology. Finally, we provide an outlook highlighting the significance of deeper theoretical and simulation-based investigations to optimize active particles and understand their behavior in complex biological environments.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] NANO HEAT PIPE: NONEQUILIBRIUM MOLECULAR DYNAMICS SIMULATION
    Moulod, Mohammad
    Hwang, Gisuk
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2016, VOL. 8, 2017,
  • [42] Insights into RNA catalysis, ionic atmosphere, and dynamics from simulation
    Giambasu, George M.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245
  • [43] Nonequilibrium molecular dynamics method for thermal conductivity simulation
    Key Laboratory for Thermal Science and Power Engineering, Department of Engineering Mechanics, Tsinghua University, Beijing 100084, China
    Jisuan Wuli, 2007, 4 (463-466):
  • [44] Strategic insights from simulation gaming of AI race dynamics
    Gruetzemacher, Ross
    Avin, Shahar
    Fox, James
    Saeri, Alexander K.
    FUTURES, 2025, 167
  • [45] NONEQUILIBRIUM MHD CHANNEL THEORY AND NUMERICAL-SIMULATION
    KARDITSAS, PJ
    ENERGY CONVERSION AND MANAGEMENT, 1994, 35 (05) : 375 - 384
  • [46] Thermodynamics of Currents in Nonequilibrium Diffusive Systems: Theory and Simulation
    Hurtado, Pablo I.
    Espigares, Carlos P.
    del Pozo, Jesus J.
    Garrido, Pedro L.
    JOURNAL OF STATISTICAL PHYSICS, 2014, 154 (1-2) : 214 - 264
  • [47] Novel mechanism of membrane fusion: Insights from simulation and theory
    Mueller, M
    Katsov, K
    Schick, M
    BIOPHYSICAL JOURNAL, 2003, 84 (02) : 331A - 331A
  • [48] Theory and simulation of the loss of coherence in thermal and nonequilibrium environments
    Martens, Craig C.
    JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2012, 45 (15)
  • [49] Thermodynamics of Currents in Nonequilibrium Diffusive Systems: Theory and Simulation
    Pablo I. Hurtado
    Carlos P. Espigares
    Jesús J. del Pozo
    Pedro L. Garrido
    Journal of Statistical Physics, 2014, 154 : 214 - 264
  • [50] Floquet theory: a useful tool for understanding nonequilibrium dynamics
    Christopher A. Klausmeier
    Theoretical Ecology, 2008, 1 : 153 - 161