Connectivity and plasticity determine collagen network fracture

被引:54
作者
Burla, Federica [1 ]
Dussi, Simone [2 ]
Martinez-Torres, Cristina [1 ,3 ]
Tauber, Justin [2 ]
van der Gucht, Jasper [2 ]
Koenderink, Gijsje H. [1 ,3 ]
机构
[1] AMOLF, Dept Living Matter, Biol Soft Matter Grp, NL-1098 XG Amsterdam, Netherlands
[2] Wageningen Univ & Res, Phys Chem & Soft Matter, NL-6708 WE Wageningen, Netherlands
[3] Delft Univ Technol, Kavli Inst Nanosci Delft, Dept Bionanosci, NL-2629 HZ Delft, Netherlands
基金
欧洲研究理事会;
关键词
collagen; fracture; network; connectivity; MECHANICAL-PROPERTIES; DEFORMATION; FAILURE; FIBRIN; DAMAGE;
D O I
10.1073/pnas.1920062117
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Collagen forms the structural scaffold of connective tissues in all mammals. Tissues are remarkably resistant against mechanical deformations because collagen molecules hierarchically self-assemble in fibrous networks that stiffen with increasing strain. Nevertheless, collagen networks do fracture when tissues are overloaded or subject to pathological conditions such as aneurysms. Prior studies of the role of collagen in tissue fracture have mainly focused on tendons, which contain highly aligned bundles of collagen. By contrast, little is known about fracture of the orientationally more disordered collagen networks present in many other tissues such as skin and cartilage. Here, we combine shear rheology of reconstituted collagen networks with computer simulations to investigate the primary determinants of fracture in disordered collagen networks. We show that the fracture strain is controlled by the coordination number of the network junctions, with less connected networks fracturing at larger strains. The hierarchical structure of collagen fine-tunes the fracture strain by providing structural plasticity at the network and fiber level. Our findings imply that low connectivity and plasticity provide protective mechanisms against network fracture that can optimize the strength of biological tissues.
引用
收藏
页码:8326 / 8334
页数:9
相关论文
共 62 条
[1]   Statistical models of fracture [J].
Alava, Mikko J. ;
Nukalaz, Phani K. V. V. ;
Zapperi, Stefano .
ADVANCES IN PHYSICS, 2006, 55 (3-4) :349-476
[2]  
Anne M., 2016, ANN BIOMED ENG, V25, P289
[3]  
[Anonymous], 1864, LOND EDINBURGH DUBLI
[4]   Colorful Protein-Based Fluorescent Probes for Collagen Imaging [J].
Aper, Stijn J. A. ;
van Spreeuwel, Ariane C. C. ;
van Turnhout, Mark C. ;
van der Linden, Ardjan J. ;
Pieters, Pascal A. ;
van der Zon, Nick L. L. ;
de la Rambelje, Sander L. ;
Bouten, Carlijn V. C. ;
Merkx, Maarten .
PLOS ONE, 2014, 9 (12)
[5]   Size-Dependent Rheology of Type-I Collagen Networks [J].
Arevalo, Richard C. ;
Urbach, Jeffrey S. ;
Blair, Daniel L. .
BIOPHYSICAL JOURNAL, 2010, 99 (08) :L65-L67
[6]   Hydraulic fracturing in cells and tissues: fracking meets cell biology [J].
Arroyo, Marino ;
Trepat, Xavier .
CURRENT OPINION IN CELL BIOLOGY, 2017, 44 :1-6
[7]   Mechanisms of Plastic Deformation in Collagen Networks Induced by Cellular Forces [J].
Ban, Ehsan ;
Franklin, J. Matthew ;
Nam, Sungmin ;
Smith, Lucas R. ;
Wang, Hailong ;
Wells, Rebecca G. ;
Chaudhuri, Ovijit ;
Liphardt, Jan T. ;
Shenoy, Vivek B. .
BIOPHYSICAL JOURNAL, 2018, 114 (02) :450-461
[8]   3-DIMENSIONAL RECONSTRUCTION OF FIBRIN CLOT NETWORKS FROM STEREOSCOPIC INTERMEDIATE VOLTAGE ELECTRON-MICROSCOPE IMAGES AND ANALYSIS OF BRANCHING [J].
BARADET, TC ;
HASELGROVE, JC ;
WEISEL, JW .
BIOPHYSICAL JOURNAL, 1995, 68 (04) :1551-1560
[9]   Rigidity percolation control of the brittle-ductile transition in disordered networks [J].
Berthier, Estelle ;
Kollmer, Jonathan E. ;
Henkes, Silke E. ;
Liu, Kuang ;
Schwarz, J. M. ;
Daniels, Karen E. .
PHYSICAL REVIEW MATERIALS, 2019, 3 (07)
[10]  
Bircher K., 2019, NAT COMMUN, V10, P1