Computational Modeling of Auxin: A Foundation for Plant Engineering

被引:8
|
作者
Morales-Tapia, Alejandro [1 ]
Cruz-Ramirez, Alfredo [1 ]
机构
[1] Langebio Cinvestav, Mol & Dev Complex Grp, Unidad Genom Avanzada, Irapuato, Mexico
来源
关键词
auxin; computational modeling; development; morphodynamics; plants; ARABIDOPSIS-THALIANA; ROOT GRAVITROPISM; PATTERN-FORMATION; CELL-DIVISION; TRANSPORT; LEAF; GRADIENT; GROWTH; EXPRESSION; SCARECROW;
D O I
10.3389/fpls.2016.01881
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Since the development of agriculture, humans have relied on the cultivation of plants to satisfy our increasing demand for food, natural products, and other raw materials. As we understand more about plant development, we can better manipulate plants to fulfill our particular needs. Auxins are a class of simple metabolites that coordinate many developmental activities like growth and the appearance of functional structures in plants. Computational modeling of auxin has proven to be an excellent tool in elucidating many mechanisms that underlie these developmental events. Due to the complexity of these mechanisms, current modeling efforts are concerned only with single phenomena focused on narrow spatial and developmental contexts; but a general model of plant development could be assembled by integrating the insights from all of them. In this perspective, we summarize the current collection of auxin -driven computational models, focusing on how they could come together into a single model for plant development. A model of this nature would allow researchers to test hypotheses in sit/co and yield accurate predictions about the behavior of a plant under a given set of physical and biochemical constraints. It would also provide a solid foundation toward the establishment of plant engineering, a proposed discipline intended to enable the design and production of plants that exhibit an arbitrarily defined set of features.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] THE ENGINEERING FOUNDATION AND FOUNDATION CONFERENCES
    TOTH, D
    BIOLOGIA, 1994, 49 (06) : 840 - 840
  • [22] Modeling Auxin Signaling in Roots: Auxin Computations
    Rutten, Jaap
    van den Berg, Thea
    Ten Tusscher, Kirsten
    COLD SPRING HARBOR PERSPECTIVES IN BIOLOGY, 2022, 14 (02):
  • [23] Computational Morphodynamics: A Modeling Framework to Understand Plant Growth
    Chickarmane, Vijay
    Roeder, Adrienne H. K.
    Tarr, Paul T.
    Cunha, Alexandre
    Tobin, Cory
    Meyerowitz, Elliot M.
    ANNUAL REVIEW OF PLANT BIOLOGY, VOL 61, 2010, 61 : 65 - 87
  • [24] Computational model for a Belgian chemical engineering plant cost index
    Pintelon, L
    Geeroms, K
    INTERNATIONAL JOURNAL OF PRODUCTION ECONOMICS, 1997, 49 (02) : 101 - 115
  • [25] The engineering foundation
    Flinn, AD
    SCIENCE, 1933, 78 : 424 - 428
  • [26] Foundation engineering
    Dept. of Civil Engineering, Imperial College London
    Struct Eng, 2008, 14 (45-51):
  • [27] Seismic analysis of turbo machinery foundation: Shaking table test and computational modeling
    Tripathy, Sungyani
    Desai, Atul K.
    EARTHQUAKES AND STRUCTURES, 2017, 12 (06) : 629 - 641
  • [28] COMPUTATIONAL GRIDS FOR ENGINEERING MODELING OF THE LAMINAR-TURBULENT FLOW
    Boiko, A. V.
    Kirilovskiy, S. V.
    Poplavskaya, T. V.
    JOURNAL OF APPLIED MECHANICS AND TECHNICAL PHYSICS, 2022, 63 (06) : 984 - 987
  • [29] Implementing Computational Modeling in Tissue Engineering: Where Disciplines Meet
    Post, Janine N.
    Loerakker, Sandra
    Merks, Roeland M. H.
    Carlier, Aurelie
    TISSUE ENGINEERING PART A, 2022, 28 (11-12) : 542 - 554
  • [30] Computational chemical engineering modeling applied to energy and reactor design
    Nougier, Luc
    18TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2008, 25 : 19 - 19