On the growth of non-motile bacteria colonies: an agent-based model for pattern formation

被引:2
|
作者
Vassallo, Lautaro [1 ,2 ]
Hansmann, David [1 ,2 ]
Braunstein, Lidia A. [1 ,2 ,3 ,4 ]
机构
[1] Univ Nacl Mar del Plata, Dept Fis, Fac Ciencias Exactas & Nat, Dean Funes 3350, RA-7600 Mar Del Plata, Buenos Aires, Argentina
[2] Inst Invest Fis Mar Plata IFIMAR CONICET, Dean Funes 3350, RA-7600 Mar Del Plata, Buenos Aires, Argentina
[3] Boston Univ, Dept Phys, 590 Commonwealth Ave, Boston, MA 02215 USA
[4] Boston Univ, Ctr Polymer Studies, Boston, MA 02215 USA
来源
EUROPEAN PHYSICAL JOURNAL B | 2019年 / 92卷 / 09期
关键词
Statistical and Nonlinear Physics; PROBABILITY-DISTRIBUTION; SPATIOTEMPORAL PATTERNS; BRANCHING GROWTH;
D O I
10.1140/epjb/e2019-100265-0
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
In the growth of bacterial colonies, a great variety of complex patterns are observed in experiments, depending on external conditions and the bacterial species. Typically, existing models employ systems of reaction-diffusion equations or consist of growth processes based on rules, and are limited to a discrete lattice. In contrast, the two-dimensional model proposed here is an off-lattice simulation, where bacteria are modelled as rigid circles and nutrients are point-like, Brownian particles. Varying the nutrient diffusion and concentration, we simulate a wide range of morphologies compatible with experimental observations, from round and compact to extremely branched patterns. A scaling relationship is found between the number of cells in the interface and the total number of cells, with two characteristic regimes. These regimes correspond to the compact and branched patterns, which are exhibited for sufficiently small and large colonies, respectively. In addition, we characterise the screening effect observed in the structures by analysing the multifractal properties of the growth probability.
引用
收藏
页数:8
相关论文
共 50 条
  • [11] Swimming bacteria promote dispersal of non-motile staphylococcal species
    Samad, Tahoura
    Billings, Nicole
    Birjiniuk, Alona
    Crouzier, Thomas
    Doyle, Patrick S.
    Ribbeck, Katharina
    [J]. ISME JOURNAL, 2017, 11 (08): : 1933 - 1937
  • [12] Distribution of aerobic motile and non-motile bacteria within the capillary fringe of silica sand
    Jost, Daniel
    Winter, Josef
    Gallert, Claudia
    [J]. WATER RESEARCH, 2010, 44 (04) : 1279 - 1287
  • [13] X-RAY AND RELATED STUDIES OF THE FLAGELLA OF NON-MOTILE BACTERIA
    BEIGHTON, E
    PORTER, AM
    STOCKER, BAD
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA, 1958, 29 (01) : 8 - 13
  • [14] THERMAL FLUCTUATIONS OF NON-MOTILE MAGNETOTACTIC BACTERIA IN AC MAGNETIC FIELDS
    Erglis, K.
    Alberte, L.
    Cebers, A.
    [J]. MAGNETOHYDRODYNAMICS, 2008, 44 (03): : 223 - 236
  • [15] An agent-based behavioural model of monomorium pharaonis colonies
    Jackson, D
    Gheorghe, M
    Holcombe, M
    Bernardini, N
    [J]. MEMBRANE COMPUTING, 2004, 2933 : 232 - 239
  • [16] POSSIBLE MECHANISMS FOR CLEAR ZONE FORMATION BETWEEN COLONIES OF MOTILE BACTERIA
    NOVIKOVA, IY
    [J]. MICROBIOLOGY, 1989, 58 (01) : 122 - 126
  • [17] Agent-based model for developmental pattern formation with multiscale dynamics and varying cell geometry
    Christley, Scott
    Newman, Stuart A.
    Alber, Mark S.
    [J]. MATHEMATICAL MODELING OF BIOLOGICAL SYSTEMS, VOL I: CELLULAR BIOPHYSICS, REGULATORY NETWORKS, DEVELOPMENT, BIOMEDICINE, AND DATA ANALYSIS, 2007, : 149 - +
  • [18] An Agent-Based Model of Discourse Pattern Formation in Small Groups of Competing and Cooperating Members
    Koponen, Ismo T.
    Nousiainen, Maija
    [J]. JASSS-THE JOURNAL OF ARTIFICIAL SOCIETIES AND SOCIAL SIMULATION, 2018, 21 (02):
  • [19] A modified agent-based model of slum formation
    McGrath, Alexander
    [J]. JOURNAL OF PLANNING LITERATURE, 2020, 35 (03) : 320 - 320
  • [20] BPMN PATTERN FOR AGENT-BASED SIMULATION MODEL REPRESENTATION
    Onggo, Bhakti S. S.
    [J]. 2012 WINTER SIMULATION CONFERENCE (WSC), 2012,