Literature DB >> 33191952

Phase-field modeling of constrained interactive fungal networks.

F Ghanbari1, F Costanzo1, D P Hughes2, C Peco1.   

Abstract

Fungi develop structures that interact with their surroundings and evolve adaptively in the presence of geometrical constraints, finding optimal solutions for complex combinatorial problems. The pathogenic fungus Ophiocordyceps constitutes a perfect model for the study of constrained interactive networks. Modeling these networks is challenging due to the highly coupled physics involved and their interaction with moving boundaries. In this work, we develop a computational phase-field model to elucidate the mechanics of the emerging properties observed in fungal networks. We use a variational approach to derive the equations governing the evolution in time of the mycelium biomass and the nutrients in the medium. We present an extensive testing of our model, reproduce growing and decaying phenomena, and capture spatial and temporal scales. We explore the variables interplay mechanism that leads to different colony morphologies, and explain abrupt changes of patterns observed in the laboratory. We apply our model to simulate analogous processes to the evolution of Ophiocordyceps as it grows through confined geometry and depletes available resources, demonstrating the suitability of the formulation to study this class of biological networks.

Keywords:  Constrained interactive network; Fungal infection; Growth mechanics; Mycelia simulation

Year:  2020        PMID: 33191952      PMCID: PMC7665083          DOI: 10.1016/j.jmps.2020.104160

Source DB:  PubMed          Journal:  J Mech Phys Solids        ISSN: 0022-5096            Impact factor:   5.471


  27 in total

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Authors:  S Bartnicki-Garcia; C E Bracker; G Gierz; R López-Franco; H Lu
Journal:  Biophys J       Date:  2000-11       Impact factor: 4.033

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Authors:  Audrius Meskauskas; Mark D Fricker; David Moore
Journal:  Mycol Res       Date:  2004-11

3.  Influence of surface tension in the surfactant-driven fracture of closely-packed particulate monolayers.

Authors:  Christian Peco; Wei Chen; Yingjie Liu; M M Bandi; John E Dolbow; Eliot Fried
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4.  Zombie ant death grip due to hypercontracted mandibular muscles.

Authors:  Colleen A Mangold; Melissa J Ishler; Raquel G Loreto; Missy L Hazen; David P Hughes
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5.  The diffusive vesicle supply center model for tip growth in fungal hyphae.

Authors:  Simon H Tindemans; Norbert Kern; Bela M Mulder
Journal:  J Theor Biol       Date:  2005-08-18       Impact factor: 2.691

6.  The life of a dead ant: the expression of an adaptive extended phenotype.

Authors:  Sandra B Andersen; Sylvia Gerritsma; Kalsum M Yusah; David Mayntz; Nigel L Hywel-Jones; Johan Billen; Jacobus J Boomsma; David P Hughes
Journal:  Am Nat       Date:  2009-09       Impact factor: 3.926

7.  Concerted regulation of all hyphal tips generates fungal fruit body structures: experiments with computer visualizations produced by a new mathematical model of hyphal growth.

Authors:  Audrius Meskauskas; Liam J McNulty; David Moore
Journal:  Mycol Res       Date:  2004-04

8.  Behavioral mechanisms and morphological symptoms of zombie ants dying from fungal infection.

Authors:  David P Hughes; Sandra B Andersen; Nigel L Hywel-Jones; Winanda Himaman; Johan Billen; Jacobus J Boomsma
Journal:  BMC Ecol       Date:  2011-05-09       Impact factor: 2.964

9.  Tumor angiogenesis and vascular patterning: a mathematical model.

Authors:  Rui D M Travasso; Eugenia Corvera Poiré; Mario Castro; Juan Carlos Rodríguez-Manzaneque; Juan Carlos Rodrguez-Manzaneque; A Hernández-Machado
Journal:  PLoS One       Date:  2011-05-27       Impact factor: 3.240

10.  The hexagonal shape of the honeycomb cells depends on the construction behavior of bees.

Authors:  Francesco Nazzi
Journal:  Sci Rep       Date:  2016-06-20       Impact factor: 4.379

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