Directed cytoskeleton self-organization

被引:98
作者
Vignaud, Timothee [1 ]
Blanchoin, Laurent [1 ]
Thery, Manuel [1 ]
机构
[1] CNRS UJF INRA CEA, Lab Physiol Cellulaire & Vegetale, Inst Rech Technol & Sci Vivant, F-38054 Grenoble, France
关键词
actin; microtubule; architecture; polarity; microfabrication; micropatterning; ACTIN-BASED MOTILITY; MITOTIC SPINDLE; CELL POLARITY; SPATIAL-ORGANIZATION; MICROTUBULE ASTERS; SYMMETRY-BREAKING; ARP2/3; COMPLEX; SHAPE; ORIENTATION; GEOMETRY;
D O I
10.1016/j.tcb.2012.08.012
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The cytoskeleton architecture supports many cellular functions. Cytoskeleton networks form complex intracellular structures that vary during the cell cycle and between different cell types according to their physiological role. These structures do not emerge spontaneously. They result from the interplay between intrinsic self-organization properties and the conditions imposed by spatial boundaries. Along these boundaries, cytoskeleton filaments are anchored, repulsed, aligned, or reoriented. Such local effects can propagate altorations throughout the network and guide cytoskeleton assembly over relatively large distances. The experimental manipulation of spatial boundaries using microfabrication methods has revealed the underlying physical processes directing cytoskeleton self-organization. Here we review, step-by-step, from molecules to tissues, how the rules that govern assembly have been identified. We describe how complementary approaches, all based on controlling geometric conditions, from in vitro reconstruction to in vivo observation, shed new light on these fundamental organizing principles.
引用
收藏
页码:671 / 682
页数:12
相关论文
共 50 条
  • [21] Self-organization in evolution: a mathematical perspective
    Stewart, I
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2003, 361 (1807): : 1101 - 1123
  • [22] Self-organization of kinetochore-fibers in human mitotic spindles
    Conway, William
    Kiewisz, Robert
    Fabig, Gunar
    Kelleher, Colm P.
    Wu, Hai-Yin
    Anjur-Dietrich, Maya
    Mueller-Reichert, Thomas
    Needleman, Daniel J.
    ELIFE, 2022, 11
  • [23] Microtubule choreography: spindle self-organization during cell division
    Sridhara, Amruta
    Shimamoto, Yuta
    BIOPHYSICAL REVIEWS, 2024, 16 (05) : 613 - 624
  • [24] Actomyosin-based Self-organization of cell internalization during C. elegans gastrulation
    Pohl, Christian
    Tiongson, Michael
    Moore, Julia L.
    Santella, Anthony
    Bao, Zhirong
    BMC BIOLOGY, 2012, 10
  • [25] Morphological growth dynamics, mechanical stability, and active microtubule mechanics underlying spindle self-organization
    Fukuyama, Tatsuya
    Yan, Lucan
    Tanaka, Masahito
    Yamaoka, Megumi
    Saito, Kei
    Ti, Shih-Chieh
    Liao, Chung-Chi
    Hsia, Kuo-Chiang
    Maeda, Yusuke T.
    Shimamoto, Yuta
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2022, 119 (44)
  • [26] Self-organization of intracellular gradients during mitosis
    Fuller, Brian G.
    CELL DIVISION, 2010, 5
  • [27] Complexity and self-organization in the evolution of cell polarization
    Glazenburg, Marieke M.
    Laan, Liedewij
    JOURNAL OF CELL SCIENCE, 2023, 136 (02)
  • [28] Effects of Confinement on the Self-Organization of Microtubules and Motors
    Pinot, M.
    Chesnel, F.
    Kubiak, J. Z.
    Arnal, I.
    Nedelec, F. J.
    Gueroui, Z.
    CURRENT BIOLOGY, 2009, 19 (11) : 954 - 960
  • [29] Self-organization of nanospheres in trenches on silicon surfaces
    Brassat, Katharina
    Assion, Fabian
    Hilleringmann, Ulrich
    Lindner, Joerg K. N.
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2013, 210 (08): : 1485 - 1489
  • [30] Topology and structural self-organization in folded proteins
    Lundgren, M.
    Krokhotin, Andrey
    Niemi, Antti J.
    PHYSICAL REVIEW E, 2013, 88 (04):