• Title of article

    Minimal model of a cell connecting amoebic motion and adaptive transport networks

  • Author/Authors

    Gunji، نويسنده , , Yukio-Pegio and Shirakawa، نويسنده , , Tomohiro and Niizato، نويسنده , , Takayuki and Haruna، نويسنده , , Taichi، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2008
  • Pages
    9
  • From page
    659
  • To page
    667
  • Abstract
    A cell is a minimal self-sustaining system that can move and compute. Previous work has shown that a unicellular slime mold, Physarum, can be utilized as a biological computer based on cytoplasmic flow encapsulated by a membrane. Although the interplay between the modification of the boundary of a cell and the cytoplasmic flow surrounded by the boundary plays a key role in Physarum computing, no model of a cell has been developed to describe this interplay. Here we propose a toy model of a cell that shows amoebic motion and can solve a maze, Steiner minimum tree problem and a spanning tree problem. Only by assuming that cytoplasm is hardened after passing external matter (or softened part) through a cell, the shape of the cell and the cytoplasmic flow can be changed. Without cytoplasm hardening, a cell is easily destroyed. This suggests that cytoplasmic hardening and/or sol–gel transformation caused by external perturbation can keep a cell in a critical state leading to a wide variety of shapes and motion.
  • Keywords
    Physarum , Cell model , Natural computing , Amoebic motion , Adaptive network
  • Journal title
    Journal of Theoretical Biology
  • Serial Year
    2008
  • Journal title
    Journal of Theoretical Biology
  • Record number

    1539358