Tensegrity and mechanoregulation: from skeleton to cytoskeleton

被引:136
作者
Chen, CS
Ingber, DE
机构
[1] Childrens Hosp, Dept Surg, Boston, MA 02115 USA
[2] Childrens Hosp, Dept Pathol, Boston, MA 02115 USA
[3] Harvard Univ, Sch Med, Boston, MA 02115 USA
基金
美国国家卫生研究院; 美国国家航空航天局;
关键词
tensegrity; mechanotransduction; cytoskeleton; extracellular matrix; integrins; anatomy;
D O I
10.1053/joca.1998.0164
中图分类号
R826.8 [整形外科学]; R782.2 [口腔颌面部整形外科学]; R726.2 [小儿整形外科学]; R62 [整形外科学(修复外科学)];
学科分类号
摘要
Objective: To elucidate how mechanical stresses that are applied to the whole organism are transmitted to individual cells and transduced into a biochemical response. Design: In this article, we describe fundamental design principles that are used to stabilize the musculoskeletal system at many different size scales and show that these design features are embodied in one particular form of architecture that is known as tensegrity. Results: Tensegrity structures are characterized by use of continuous tension and local compression; architecture, prestress (internal stress prior to application of external force), and triangulation play the most critical roles in terms of determining their mechanical stability. In living organisms, use of a hierarchy of tensegrity networks both optimizes structural efficiency and provides a mechanism to mechanically couple the parts with the whole: mechanical stresses applied at the macroscale result in structural rearrangements at the cell and molecular level. Conclusion: Due to use of tensegrity architecture, mechanical stress is concentrated and focused on signal transducing molecules that physically associate with cell surface molecules that anchor cells to extracellular matrix, such as integrins, and with load-bearing elements within the internal cytoskeleton and nucleus. Mechanochemical transduction may then proceed through local stress-dependent changes in molecular mechanics, thermodynamics, and kinetics within the cell. In this manner, the entire cellular response to stress may be orchestrated and tuned by altering the prestress in the cell, just as changing muscular tone can alter mechanical stability and structural coordination throughout the whole musculoskeletal system.
引用
收藏
页码:81 / 94
页数:14
相关论文
共 76 条
  • [1] Changes in proteoglycan synthesis of chondrocytes in articular cartilage are associated with the time-dependent changes in their mechanical environment
    Bachrach, NM
    Valhmu, WB
    Stazzone, E
    Ratcliffe, A
    Lai, WM
    Mow, VC
    [J]. JOURNAL OF BIOMECHANICS, 1995, 28 (12) : 1561 - 1569
  • [2] BAROCAS VH, 1994, CELL MECHANICS AND CELLULAR ENGINEERING, P185
  • [3] THE PROLIFERATIVE AND SYNTHETIC RESPONSE OF ISOLATED CALVARIAL BONE-CELLS OF RATS TO CYCLIC BIAXIAL MECHANICAL STRAIN
    BRIGHTON, CT
    STRAFFORD, B
    GROSS, SB
    LEATHERWOOD, DF
    WILLIAMS, JL
    POLLACK, SR
    [J]. JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1991, 73A (03) : 320 - 331
  • [4] FOCAL ADHESIONS - TRANSMEMBRANE JUNCTIONS BETWEEN THE EXTRACELLULAR-MATRIX AND THE CYTOSKELETON
    BURRIDGE, K
    FATH, K
    KELLY, T
    NUCKOLLS, G
    TURNER, C
    [J]. ANNUAL REVIEW OF CELL BIOLOGY, 1988, 4 : 487 - 525
  • [5] A THERMODYNAMIC MODEL FOR FORCE INTEGRATION AND MICROTUBULE ASSEMBLY DURING AXONAL ELONGATION
    BUXBAUM, RE
    HEIDEMANN, SR
    [J]. JOURNAL OF THEORETICAL BIOLOGY, 1988, 134 (03) : 379 - 390
  • [6] Mechanical factors in bone growth and development
    Carter, DR
    VanderMeulen, MCH
    Beaupre, GS
    [J]. BONE, 1996, 18 (01) : S5 - S10
  • [7] INTEGRINS AND MODULATION OF TRANSMITTER RELEASE FROM MOTOR-NERVE TERMINALS BY STRETCH
    CHEN, BM
    GRINNELL, AD
    [J]. SCIENCE, 1995, 269 (5230) : 1578 - 1580
  • [8] Geometric control of cell life and death
    Chen, CS
    Mrksich, M
    Huang, S
    Whitesides, GM
    Ingber, DE
    [J]. SCIENCE, 1997, 276 (5317) : 1425 - 1428
  • [9] Comper W. D., 1996, EXTRACELLULAR MATRIX, VII
  • [10] Comper W. D., 1996, EXTRACELLULAR MATRIX, V1