Morphological Entanglement in Living Systems

被引:0
作者
Day, Thomas C. [1 ]
Zamani-Dahaj, S. Alireza [1 ]
Bozdag, G. Ozan [2 ]
Burnetti, Anthony J. [2 ]
Bingham, Emma P. [1 ]
Conlin, Peter L. [2 ]
Ratcliff, William C. [2 ]
Yunker, Peter J. [1 ]
机构
[1] Georgia Inst Technol, Sch Phys, Atlanta, GA 30332 USA
[2] Georgia Inst Technol, Sch Biol Sci, Atlanta, GA USA
关键词
PERCOLATION; EVOLUTION; PACKING; SERIES;
D O I
10.1103/PhysRevX.14.011008
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Many organisms exhibit branching morphologies that twist around each other and become entangled. Entanglement occurs when different objects interlock with each other, creating complex and often irreversible configurations. This physical phenomenon is well studied in nonliving materials, such as granular matter, polymers, and wires, where it has been shown that entanglement is highly sensitive to the geometry of the component parts. However, entanglement is not yet well understood in living systems, despite its presence in many organisms. In fact, recent work has shown that entanglement can evolve rapidly and play a crucial role in the evolution of tough, macroscopic multicellular groups. Here, through a combination of experiments, simulations, and numerical analyses, we show that growth generically facilitates entanglement for a broad range of geometries. We find that experimentally grown entangled branches can be difficult or even impossible to disassemble through translation and rotation of rigid components, suggesting that there are many configurations of branches that growth can access that agitation cannot. We use simulations to show that branching trees readily grow into entangled configurations. In contrast to nongrowing entangled materials, these trees entangle for a broad range of branch geometries. We, thus, propose that entanglement via growth is largely insensitive to the geometry of branched trees but, instead, depends sensitively on timescales, ultimately achieving an entangled state once sufficient growth has occurred. We test this hypothesis in experiments with snowflake yeast, a model system of undifferentiated, branched multicellularity, showing that lengthening the time of growth leads to entanglement and that entanglement via growth can occur for a wide range of geometries. Taken together, our work demonstrates that entanglement is more readily achieved in living systems than in their nonliving counterparts, providing a widely accessible and powerful mechanism for the evolution of novel biological material properties.
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页数:19
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共 45 条
  • [1] [Anonymous], 2008, US
  • [2] Active entanglement enables stochastic, topological grasping
    Becker, Kaitlyn
    Teeple, Clark
    Charles, Nicholas
    Jung, Yeonsu
    Baum, Daniel
    Weaver, James C.
    Mahadevan, L.
    Wood, Robert
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2022, 119 (42)
  • [3] De novo evolution of macroscopic multicellularity
    Bozdag, G. Ozan
    Zamani-Dahaj, Seyed Alireza
    Day, Thomas C.
    Kahn, Penelope C.
    Burnetti, Anthony J.
    Lac, Dung T.
    Tong, Kai
    Conlin, Peter L.
    Balwani, Aishwarya H.
    Dyer, Eva L.
    Yunker, Peter J.
    Ratcliff, William C.
    [J]. NATURE, 2023, 617 (7962) : 747 - +
  • [4] Strain Stiffening in Random Packings of Entangled Granular Chains
    Brown, Eric
    Nasto, Alice
    Athanassiadis, Athanasios G.
    Jaeger, Heinrich M.
    [J]. PHYSICAL REVIEW LETTERS, 2012, 108 (10)
  • [5] Connectivity and plasticity determine collagen network fracture
    Burla, Federica
    Dussi, Simone
    Martinez-Torres, Cristina
    Tauber, Justin
    van der Gucht, Jasper
    Koenderink, Gijsje H.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (15) : 8326 - 8334
  • [6] Bud-site selection and cell polarity in budding yeast
    Casamayor, A
    Snyder, M
    [J]. CURRENT OPINION IN MICROBIOLOGY, 2002, 5 (02) : 179 - 186
  • [7] cstremblog, ABOUT US
  • [8] davidrumsey, About us
  • [9] Day TC, 2024, PHYS REV X, V14, DOI [10.1103/PhysRevX.14.011008, 10.1103/physrevx.14.011008]
  • [10] Varied solutions to multicellularity: The biophysical and evolutionary consequences of diverse intercellular bonds
    Day, Thomas C.
    Marquez-Zacarias, Pedro
    Bravo, Pablo
    Pokhrel, Aawaz R.
    MacGillivray, Kathryn A.
    Ratcliff, William C.
    Yunker, Peter J.
    [J]. BIOPHYSICS REVIEWS, 2022, 3 (02):