Biological self-organization by way of microtubule reaction-diffusion processes

被引:34
|
作者
Tabony, J
Glade, N
Demongeot, J
Papaseit, C
机构
[1] CEA Grenoble, ICH, Dept Reponse & Dynam Cellulaire, Lab Immunochim,INSERM,U548,DSV, F-38054 Grenoble 9, France
[2] Inst Informat & Math Appl Grenoble, Lab Tech Imagerie Modelisat & Cognit, Fac Med, F-38706 La Tronche, France
关键词
D O I
10.1021/la0255875
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This article addresses the physical chemical processes underlying biological self-organization by which a homogeneous solution of reacting chemicals spontaneously self-organizes. Theoreticians have predicted that self-organization can arise from a coupling of reactive processes with molecular diffusion. In addition, the presence of an external field such as gravity, at a critical moment early in the process may determine the morphology that subsequently develops. The formation, in vitro, of microtubules, a constituent of the cellular skeleton, shows this type of behavior. Preparations spontaneously self-organize by reaction-diffusion, and the morphology that develops depends on the presence of gravity at a critical bifurcation time early in the process. Numerical simulations of a population of microtubules involving only reactive and diffusive terms reproduce this behavior. Microtubules can grow from one end while shrinking from the other. The shrinking end leaves behind itself a chemical trail of high tubulin concentration. Neighboring microtubules preferentially grow into these regions, while avoiding regions of low concentration. The chemical trails produced by individual microtubules thus activate and inhibit the formation of their neighbors, and this progressively leads to self-organization. Gravity acts by way of its directional interaction with the macroscopic density fluctuations present in the solution arising from microtubule disassembly. Evidence is presented that similar processes might occur both during the cell cycle and the early stages of Drosophila fruit fly embryogenesis.
引用
收藏
页码:7196 / 7207
页数:12
相关论文
共 50 条
  • [31] Robustness of the microtubule network self-organization in epithelia
    Plochocka, Aleksandra Z.
    Moreno, Miguel Ramirez
    Davie, Alexander M.
    Bulgakova, Natalia A.
    Chumakova, Lyubov
    ELIFE, 2021, 10 : 1 - 25
  • [32] Self-Organization of the Biological Evolution
    Arber, Werner
    GENES, 2019, 10 (11)
  • [33] SELF-ORGANIZATION OF BIOCHEMICAL PROCESSES
    MOISEEVA, LN
    APPLIED BIOCHEMISTRY AND MICROBIOLOGY, 1995, 31 (01) : 63 - 65
  • [34] Reaction-diffusion processes with nonlinear diffusion
    Krapivsky, P. L.
    PHYSICAL REVIEW E, 2012, 86 (04)
  • [35] Comparison of reaction-diffusion simulations with experiment in self-organised microtubule solutions
    Glade, N
    Demongeot, J
    Tabony, J
    COMPTES RENDUS BIOLOGIES, 2002, 325 (04) : 283 - 294
  • [36] SELF-ORGANIZATION IN AN EXCITABLE REACTION-DIFFUSION SYSTEM .3. MOTIONLESS LOCALIZED VERSUS PROPAGATING-PULSE SOLUTIONS
    ITO, A
    OHTA, T
    PHYSICAL REVIEW A, 1992, 45 (12): : 8374 - 8382
  • [37] Nonlocal Mechanism of Self-Organization and Centering of Microtubule Asters
    E. N. Cytrynbaum
    V. Rodionov
    A. Mogilner
    Bulletin of Mathematical Biology, 2006, 68 : 1053 - 1072
  • [38] Self-organization of interphase microtubule arrays in fission yeast
    Carazo-Salas, Rafael E.
    Nurse, Paul
    NATURE CELL BIOLOGY, 2006, 8 (10) : 1102 - U94
  • [39] Nonlocal mechanism of self-organization and centering of microtubule asters
    Cytrynbaum, E. N.
    Rodionov, V.
    Mogilner, A.
    BULLETIN OF MATHEMATICAL BIOLOGY, 2006, 68 (05) : 1053 - 1072
  • [40] Physical interpretation of microtubule self-organization in gravitational fields
    Tuszynski, J
    Sataric, MV
    Portet, S
    Dixon, JM
    PHYSICS LETTERS A, 2005, 340 (1-4) : 175 - 180