Osmotically driven tensile stress in collagen-based mineralized tissues

被引:52
作者
Bertinetti, Luca [1 ]
Masic, Admir [1 ]
Schuetz, Roman [1 ]
Barbetta, Aurelio [1 ,2 ]
Seidt, Britta [1 ]
Wagermaier, Wolfgang [1 ]
Fratzl, Peter [1 ]
机构
[1] Max Planck Inst Colloids & Interfaces, Dept Biomat, D-14424 Potsdam, Germany
[2] CEA CNRS UM2 ENSCM, UMR5257, Inst Chim Separat Marcoule, F-30207 Bagnols Sur Ceze, France
关键词
Collagen; Water; Mechanical properties; Contraction; Synchrotron X-ray diffraction; In-situ tensile testing; X-RAY; MECHANICAL-PROPERTIES; ELASTIC PROPERTIES; BONE; ORIENTATION; DEFORMATION; ANISOTROPY; PACKING; TENDON; WATER;
D O I
10.1016/j.jmbbm.2015.03.010
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Collagen is the most abundant protein in mammals and its primary role is to serve as mechanical support in many extracellular matrices such as those of bones, tendons, skin or blood vessels. Water is an integral part of the collagen structure, but its role is still poorly understood, though it is well-known that the mechanical properties of collagen depend on hydration. Recently, it was shown that the conformation of the collagen triple helix changes upon water removal, leading to a contraction of the molecule with considerable forces. Here we investigate the influence of mineralization on this effect by studying bone and turkey leg tendon (TLT) as model systems. Indeed, TLT partially mineralizes so that well-aligned collagen with various mineral contents can be found in the same tendon. We show that water removal leads to collagen contraction in all cases generating tensile stresses up to 80 MPa. Moreover, this contraction of collagen puts mineral particles under compression leading to strains of around 1%, which implies localized compressive loads in mineral of up to 800 MPa. This suggests that collagen dehydration upon mineralization is at the origin of the compressive pre-strains commonly observed in bone mineral. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:14 / 21
页数:8
相关论文
共 35 条
[1]   Molecular nanomechanics of nascent bone: fibrillar toughening by mineralization [J].
Buehler, Markus J. .
NANOTECHNOLOGY, 2007, 18 (29)
[2]   Atomistic and continuum modeling of mechanical properties of collagen: Elasticity, fracture, and self-assembly [J].
Buehler, Markus J. .
JOURNAL OF MATERIALS RESEARCH, 2006, 21 (08) :1947-1961
[3]   COLLAGEN PACKING AND MINERALIZATION - AN X-RAY-SCATTERING INVESTIGATION OF TURKEY LEG TENDON [J].
FRATZL, P ;
FRATZLZELMAN, N ;
KLAUSHOFER, K .
BIOPHYSICAL JOURNAL, 1993, 64 (01) :260-266
[4]  
Fratzl P., 2008, P1, DOI 10.1007/978-0-387-73906-9_1
[5]   Hierarchical Structure and Nanomechanics of Collagen Microfibrils from the Atomistic Scale Up [J].
Gautieri, Alfonso ;
Vesentini, Simone ;
Redaelli, Alberto ;
Buehler, Markus J. .
NANO LETTERS, 2011, 11 (02) :757-766
[6]   Intrafibrillar plasticity through mineral/collagen sliding is the dominant mechanism for the extreme toughness of antler bone [J].
Gupta, H. S. ;
Krauss, S. ;
Kerschnitzki, M. ;
Karunaratne, A. ;
Dunlop, J. W. C. ;
Barber, A. H. ;
Boesecke, P. ;
Funari, S. S. ;
Fratzl, P. .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2013, 28 :366-382
[7]  
Gupta H. S., 2008, P155, DOI 10.1007/978-0-387-73906-9_7
[8]   Cooperative deformation of mineral and collagen in bone at the nanoscale [J].
Gupta, Himadri S. ;
Seto, Jong ;
Wagermaier, Wolfgang ;
Zaslansky, Paul ;
Boesecke, Peter ;
Fratzl, Peter .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (47) :17741-17746
[9]   Synchrotron diffraction study of deformation mechanisms in mineralized tendon [J].
Gupta, HS ;
Messmer, P ;
Roschger, P ;
Bernstorff, S ;
Klaushofer, K ;
Fratzl, P .
PHYSICAL REVIEW LETTERS, 2004, 93 (15) :158101-1
[10]   Nanoscale deformation mechanisms in bone [J].
Gupta, HS ;
Wagermaier, W ;
Zickler, GA ;
Aroush, DRB ;
Funari, SS ;
Roschger, P ;
Wagner, HD ;
Fratzl, P .
NANO LETTERS, 2005, 5 (10) :2108-2111