Diffusion in crowded biological environments: applications of Brownian dynamics

被引:52
|
作者
Dlugosz, Maciej [1 ]
Trylska, Joanna [1 ]
机构
[1] Univ Warsaw, Interdisciplinary Ctr Math & Computat Modeling, PL-02089 Warsaw, Poland
关键词
PROTEIN-PROTEIN ASSOCIATION; HYDRODYNAMIC INTERACTIONS; FLUORESCENCE RECOVERY; CONCENTRATED PROTEIN; RIGID PARTICLES; SIMULATION; CHARGE; MACROMOLECULES; CONFINEMENT; DISPERSION;
D O I
10.1186/2046-1682-4-3
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Biochemical reactions in living systems occur in complex, heterogeneous media with total concentrations of macromolecules in the range of 50 - 400 mg/ml. Molecular species occupy a significant fraction of the immersing medium, up to 40% of volume. Such complex and volume-occupied environments are generally termed 'crowded' and/or 'confined'. In crowded conditions non-specific interactions between macromolecules may hinder diffusion a major process determining metabolism, transport, and signaling. Also, the crowded media can alter, both qualitatively and quantitatively, the reactions in vivo in comparison with their in vitro counterparts. This review focuses on recent developments in particle-based Brownian dynamics algorithms, their applications to model diffusive transport in crowded systems, and their abilities to reproduce and predict the behavior of macromolecules under in vivo conditions.
引用
收藏
页数:9
相关论文
共 50 条
  • [41] Non-Gaussian Brownian Diffusion in Dynamically Disordered Thermal Environments
    Tyagi, Neha
    Cherayil, Binny J.
    JOURNAL OF PHYSICAL CHEMISTRY B, 2017, 121 (29): : 7204 - 7209
  • [42] Diffusion processes in Brownian environments on disconnected selfsimilar fractal sets in R
    Takahashi, Hiroshi
    Tamura, Yozo
    STATISTICS & PROBABILITY LETTERS, 2023, 193
  • [43] Brownian Motion of Stiff Filaments in a Crowded Environment
    Fakhri, Nikta
    MacKintosh, Frederick C.
    Lounis, Brahim
    Cognet, Laurent
    Pasquali, Matteo
    SCIENCE, 2010, 330 (6012) : 1804 - 1807
  • [44] Facilitated dynamics of an active polymer in 2D crowded environments with obstacles
    Wu, Song
    Li, Jia-Xiang
    Lei, Qun-Li
    SOFT MATTER, 2022, 18 (48) : 9263 - 9272
  • [45] Translational and rotational dynamics of a self-propelled Janus probe in crowded environments
    Theeyancheri, Ligesh
    Chaki, Subhasish
    Samanta, Nairhita
    Goswami, Rohit
    Chelakkot, Raghunath
    Chakrabarti, Rajarshi
    SOFT MATTER, 2020, 16 (36) : 8482 - 8491
  • [46] DIFFUSION IN CROWDED SOLUTIONS
    Phillies, George D. J.
    ADVANCES IN CHEMICAL PHYSICS, VOL 161, 2016, 161 : 277 - 358
  • [47] Structure and dynamics of water in crowded environments slows down peptide conformational changes
    Lu, Cheng
    Prada-Gracia, Diego
    Rao, Francesco
    JOURNAL OF CHEMICAL PHYSICS, 2014, 141 (04):
  • [48] Diffusion in a crowded environment
    Fanelli, Duccio
    McKane, Alan J.
    PHYSICAL REVIEW E, 2010, 82 (02):
  • [49] Anomalous, non-Gaussian tracer diffusion in crowded two-dimensional environments
    Ghosh, Surya K.
    Cherstvy, Andrey G.
    Grebenkov, Denis S.
    Metzler, Ralf
    NEW JOURNAL OF PHYSICS, 2016, 18
  • [50] Multi-Scale Simulations Yield Insight into Protein Diffusion and Stability in Crowded Environments
    Timr, Stepan
    Melchionna, Simone
    Derreumaux, Philippe
    Sterpone, Fabio
    BIOPHYSICAL JOURNAL, 2019, 116 (03) : 38A - 38A