Measuring mechanical stress in living tissues

被引:93
作者
Gomez-Gonzalez, Manuel [1 ]
Latorre, Ernest [1 ,2 ]
Arroyo, Marino [1 ,2 ]
Trepat, Xavier [1 ,3 ,4 ,5 ]
机构
[1] Barcelona Inst Sci & Technol BIST, Inst Bioengn Catalonia IBEC, Barcelona, Spain
[2] Univ Politecn Catalunya BarcelonaTech, LaCaN, Barcelona, Spain
[3] Ctr Invest Biomed Red Bioingn Biomat & Nanomed, Barcelona, Spain
[4] Univ Barcelona, Unitat Biofis & Bioengn, Barcelona, Spain
[5] Inst Catalana Recerca Estudis Avancats ICREA, Barcelona, Spain
基金
欧洲研究理事会;
关键词
TRACTION FORCE MICROSCOPY; CELL-SHAPE; E-CADHERIN; EPITHELIAL MONOLAYERS; LASER MICROSURGERY; FINITE-ELEMENT; TENSION; PRESSURE; MIGRATION; ADHESION;
D O I
10.1038/s42254-020-0184-6
中图分类号
O59 [应用物理学];
学科分类号
摘要
Living tissues are active, multifunctional materials capable of generating, sensing, withstanding and responding to mechanical stress. These capabilities enable tissues to adopt complex shapes during development, to sustain those shapes during homeostasis and to restore them during healing and regeneration. Abnormal stress is associated with a broad range of pathological conditions, including developmental defects, inflammatory diseases, tumour growth and metastasis. A number of techniques are available to measure mechanical stress in living tissues at cellular and subcellular resolution. 2D techniques that map stress in cultured cell monolayers provide the highest resolution and accessibility, and include 2D traction force microscopy, micropillar arrays, monolayer stress microscopy and monolayer stretching between flexible cantilevers. Mapping stresses in tissues cultured in 3D can be achieved using 3D traction force microscopy and the microbulge test. Techniques for measuring stress in vivo include servo-null methods for measuring luminal pressure, deformable inclusions, Forster resonance energy transfer tension sensors, laser ablation and computational methods for force inference. Although these techniques are far from becoming everyday tools in biomedical laboratories, their rapid development is fostering key advances in our understanding of the role of mechanics in morphogenesis, homeostasis and disease. Methods for measuring stress in living cells, tissues and organs are advancing steadily and are increasingly being used for biomedical applications. In this Review, we discuss the concept of tissue stress and the techniques available to measure it in 2D and 3D cell and tissue cultures and in vivo.
引用
收藏
页码:300 / 317
页数:18
相关论文
共 208 条
  • [1] Cellular capsules as a tool for multicellular spheroid production and for investigating the mechanics of tumor progression in vitro
    Alessandri, Kevin
    Sarangi, Bibhu Ranjan
    Gurchenkov, Vasily Valerievitch
    Sinha, Bidisha
    Kiessling, Tobias Reinhold
    Fetler, Luc
    Rico, Felix
    Scheuring, Simon
    Lamaze, Christophe
    Simon, Anthony
    Geraldo, Sara
    Vignjevic, Danijela
    Domejean, Hugo
    Rolland, Leslie
    Funfak, Anette
    Bibette, Jerome
    Bremond, Nicolas
    Nassoy, Pierre
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (37) : 14843 - 14848
  • [2] Vertex models: from cell mechanics to tissue morphogenesis
    Alt, Silvanus
    Ganguly, Poulami
    Salbreux, Guillaume
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2017, 372 (1720)
  • [3] Two-Layer Elastographic 3-D Traction Force Microscopy
    Alvarez-Gonzalez, Begona
    Zhang, Shun
    Gomez-Gonzalez, Manuel
    Meili, Ruedi
    Firtel, Richard A.
    Lasheras, Juan C.
    del Alamo, Juan C.
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [4] Three-Dimensional Balance of Cortical Tension and Axial Contractility Enables Fast Amoeboid Migration
    Alvarez-Gonzalez, Begona
    Meili, Ruedi
    Bastounis, Effie
    Firtel, Richard A.
    Lasheras, Juan C.
    del Alamo, Juan C.
    [J]. BIOPHYSICAL JOURNAL, 2015, 108 (04) : 821 - 832
  • [5] Cytoskeletal Mechanics Regulating Amoeboid Cell Locomotion
    Alvarez-Gonzalez, Begona
    Bastounis, Effie
    Meili, Ruedi
    del Alamo, Juan C.
    Firtel, Richard
    Lasheras, Juan C.
    [J]. APPLIED MECHANICS REVIEWS, 2014, 66 (05)
  • [6] OBSERVATION OF A SINGLE-BEAM GRADIENT FORCE OPTICAL TRAP FOR DIELECTRIC PARTICLES
    ASHKIN, A
    DZIEDZIC, JM
    BJORKHOLM, JE
    CHU, S
    [J]. OPTICS LETTERS, 1986, 11 (05) : 288 - 290
  • [7] ACCELERATION AND TRAPPING OF PARTICLES BY RADIATION PRESSURE
    ASHKIN, A
    [J]. PHYSICAL REVIEW LETTERS, 1970, 24 (04) : 156 - &
  • [8] 3D Traction Stresses Activate Protease-Dependent Invasion of Cancer Cells
    Aung, Aereas
    Seo, Young N.
    Lu, Shaoying
    Wang, Yingxiao
    Jamora, Colin
    del Alamo, Juan C.
    Varghese, Shyni
    [J]. BIOPHYSICAL JOURNAL, 2014, 107 (11) : 2528 - 2537
  • [9] Avila MY, 2001, INVEST OPHTH VIS SCI, V42, P1841
  • [10] Force and focal adhesion assembly: a close relationship studied using elastic micropatterned substrates
    Balaban, NQ
    Schwarz, US
    Riveline, D
    Goichberg, P
    Tzur, G
    Sabanay, I
    Mahalu, D
    Safran, S
    Bershadsky, A
    Addadi, L
    Geiger, B
    [J]. NATURE CELL BIOLOGY, 2001, 3 (05) : 466 - 472