Biological design principles that guide self-organization, emergence, and hierarchical assembly: From complexity to tensegrity

被引:0
|
作者
Ingber, DE [1 ]
机构
[1] Harvard Univ, Sch Med, Dept Pathol, Cambridge, MA 02138 USA
关键词
D O I
暂无
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
A living organism represents the ultimate complex adaptive system. Our work focuses on the question of how groups of molecules self-organize to create living cells and tissues with emergent properties, such as the ability to change shape, move, and grow. Most complexity-based approaches focus on nodes, connections, and resultant pattern formation. We have extended this approach by taking into account the importance of architecture, mechanics and structure in the evolution of biological form. This work has led to the discovery of fundamental design principles that guide self-assembly in natural systems, from the simplest inorganic compounds to the most complex living cells and tissues. These building rules are based on the use of a particular form of geodesic architecture, known as tensegrity, which causes hierarchical collections of different interacting components to self-organize and mechanically stabilize in three dimensions. Shape and pattern stability emerge through establishment of a force balance between globally acting attractive (tensile) forces and locally acting repulsive (compressive) forces or, in simplest terms, through continuous tension and local compression (tensional integrity or "tensegrity"). Recent development of a mathematical explanation for the mechanical behavior of living cells and tissues based on tensegrity may provide a useful computational tool for analysis in other complex adaptive systems ranging from protein folding to cosmology.
引用
收藏
页码:269 / 280
页数:12
相关论文
共 50 条
  • [31] Hierarchical Self-Organization of Chiral Columns from Chiral Supramolecular Spheres
    Sahoo, Dipankar
    Imam, Mohammad R.
    Peterca, Mihai
    Partridge, Benjamin E.
    Wilson, Daniela A.
    Zeng, Xiangbing
    Ungar, Goran
    Heiney, Paul A.
    Percec, Virgil
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (41) : 13478 - 13487
  • [32] Principles of self-organization in young brain -: Viewed from Kohonen model
    Pallaver, T.
    Kroger, H.
    Parizeau, M.
    FRONTIERS OF FUNDAMENTAL AND COMPUTATIONAL PHYSICS, 2008, 1018 : 207 - +
  • [33] The emergence of design in pedestrian dynamics: Locomotion, self-organization, walking paths and constructal law
    Miguel, Antonio F.
    PHYSICS OF LIFE REVIEWS, 2013, 10 (02) : 168 - 190
  • [34] Self-assembly of non-biological polymeric strands undergoing enforced helical self-organization
    Schmitt, JL
    Lehn, JM
    HELVETICA CHIMICA ACTA, 2003, 86 (10) : 3417 - 3426
  • [35] Organisms, Machines, and Thunderstorms: A History of Self-Organization, Part Two. Complexity, Emergence, and Stable Attractors
    Keller, Evelyn Fox
    HISTORICAL STUDIES IN THE NATURAL SCIENCES, 2009, 39 (01) : 1 - 31
  • [36] Nanoparticle Assembly: From Self-Organization to Controlled Micropatterning for Enhanced Functionalities
    Jambhulkar, Sayli
    Ravichandran, Dharneedar
    Zhu, Yuxiang
    Thippanna, Varunkumar
    Ramanathan, Arunachalam
    Patil, Dhanush
    Fonseca, Nathan
    Thummalapalli, Sri Vaishnavi
    Sundaravadivelan, Barath
    Sun, Allen
    Xu, Weiheng
    Yang, Sui
    Kannan, Arunachala Mada
    Golan, Yuval
    Lancaster, Jessica
    Chen, Lei
    Joyee, Erina B.
    Song, Kenan
    SMALL, 2024, 20 (06)
  • [37] From design to self-organization, or: A proper structure for a proper function
    Semetsky I.
    Axiomathes, 2005, 15 (4): : 575 - 597
  • [38] From self-organization to evolution of RNA molecules: The origin of biological information
    Schuster, P
    SELF FORMATION THEORY AND APPLICATIONS, 2004, 97-98 : 27 - 36
  • [39] Surface self-organization: From wear to self-healing in biological and technical surfaces
    Nosonovsky, Michael
    Bhushan, Bharat
    APPLIED SURFACE SCIENCE, 2010, 256 (12) : 3982 - 3987
  • [40] Helical self-organization and hierarchical self-assembly of an oligoheterocyclic pyridine-pyridazine strand into extended supramolecular fibers
    Cuccia, LA
    Ruiz, E
    Lehn, JM
    Homo, JC
    Schmutz, M
    CHEMISTRY-A EUROPEAN JOURNAL, 2002, 8 (15) : 3448 - 3457