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Items: 1 to 20 of 67

1.

Nanomechanical mapping of the osteochondral interface with contact resonance force microscopy and nanoindentation.

Campbell SE, Ferguson VL, Hurley DC.

Acta Biomater. 2012 Dec;8(12):4389-96. doi: 10.1016/j.actbio.2012.07.042. Epub 2012 Aug 6.

PMID:
22877818
2.

The interaction of the zone of calcified cartilage and subchondral bone in osteoarthritis.

Oegema TR Jr, Carpenter RJ, Hofmeister F, Thompson RC Jr.

Microsc Res Tech. 1997 May 15;37(4):324-32. Review.

PMID:
9185154
3.

Structural and functional changes of the articular surface in a post-traumatic model of early osteoarthritis measured by atomic force microscopy.

Desrochers J, Amrein MA, Matyas JR.

J Biomech. 2010 Dec 1;43(16):3091-8. doi: 10.1016/j.jbiomech.2010.08.009.

PMID:
20817164
4.

Disease-specific clinical problems associated with the subchondral bone.

Pape D, Filardo G, Kon E, van Dijk CN, Madry H.

Knee Surg Sports Traumatol Arthrosc. 2010 Apr;18(4):448-62. doi: 10.1007/s00167-010-1052-1. Epub 2010 Feb 12. Review.

PMID:
20151111
5.

Nanomechanical properties and mineral concentration in articular calcified cartilage and subchondral bone.

Ferguson VL, Bushby AJ, Boyde A.

J Anat. 2003 Aug;203(2):191-202.

PMID:
12924819
7.

Articular cartilage and biomechanical properties of the long bones in Frzb-knockout mice.

Lories RJ, Peeters J, Bakker A, Tylzanowski P, Derese I, Schrooten J, Thomas JT, Luyten FP.

Arthritis Rheum. 2007 Dec;56(12):4095-103.

PMID:
18050203
8.
9.

Porous bioactive glass matrix in reconstruction of articular osteochondral defects.

Ylänen HO, Helminen T, Helminen A, Rantakokko J, Karlsson KH, Aro HT.

Ann Chir Gynaecol. 1999;88(3):237-45.

PMID:
10532567
10.

The measurement of biomechanical properties of porcine articular cartilage using atomic force microscopy.

Imer R, Akiyama T, F de Rooij N, Stolz M, Aebi U, F Friederich N, Staufer U.

Arch Histol Cytol. 2009;72(4-5):251-9.

PMID:
21471660
11.

Osteochondral alterations in osteoarthritis.

Suri S, Walsh DA.

Bone. 2012 Aug;51(2):204-11. doi: 10.1016/j.bone.2011.10.010. Epub 2011 Oct 17. Review.

PMID:
22023932
12.

Viscoelastic property mapping with contact resonance force microscopy.

Killgore JP, Yablon DG, Tsou AH, Gannepalli A, Yuya PA, Turner JA, Proksch R, Hurley DC.

Langmuir. 2011 Dec 6;27(23):13983-7. doi: 10.1021/la203434w. Epub 2011 Nov 4.

PMID:
22054300
13.

[Mechanical behavior of the subchondral bone in the experimentally induced osteoarthritis].

Miyanaga Y.

Nihon Seikeigeka Gakkai Zasshi. 1979 Jun;53(6):681-95. Japanese.

PMID:
490015
14.

Evaluation of a new modulus mapping technique to investigate microstructural features of human teeth.

Balooch G, Marshall GW, Marshall SJ, Warren OL, Asif SA, Balooch M.

J Biomech. 2004 Aug;37(8):1223-32.

PMID:
15212928
15.

Spatially resolved frequency-dependent elasticity measured with pulsed force microscopy and nanoindentation.

Sweers KK, van der Werf KO, Bennink ML, Subramaniam V.

Nanoscale. 2012 Mar 21;4(6):2072-7. doi: 10.1039/c2nr12066f. Epub 2012 Feb 13.

PMID:
22331128
17.

Cartilage damage involving extrusion of mineralisable matrix from the articular calcified cartilage and subchondral bone.

Boyde A, Riggs CM, Bushby AJ, McDermott B, Pinchbeck GL, Clegg PD.

Eur Cell Mater. 2011 May 28;21:470-8; discussion 478.

PMID:
21623571
18.

Mapping of donor and recipient site properties for osteochondral graft reconstruction of subchondral cystic lesions in the equine stifle joint.

Changoor A, Hurtig MB, Runciman RJ, Quesnel AJ, Dickey JP, Lowerison M.

Equine Vet J. 2006 Jul;38(4):330-6.

PMID:
16866200
19.

Calcified cartilage morphometry and its relation to subchondral bone remodeling in equine arthrosis.

Norrdin RW, Kawcak CE, Capwell BA, McIlwraith CW.

Bone. 1999 Feb;24(2):109-14.

PMID:
9951778
20.

Material and functional properties of articular cartilage and patellofemoral contact mechanics in an experimental model of osteoarthritis.

Herzog W, Diet S, Suter E, Mayzus P, Leonard TR, Müller C, Wu JZ, Epstein M.

J Biomech. 1998 Dec;31(12):1137-45.

PMID:
9882046

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