Contribution of the advanced glycation end product pentosidine and of maturation of type I collagen to compressive biomechanical properties of human lumbar vertebrae
被引:165
作者:
Viguet-Carrin, S.
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机构:Univ Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, France
Viguet-Carrin, S.
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Roux, J. P.
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Arlot, M. E.
Merabet, Z.
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机构:Univ Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, France
Merabet, Z.
Leeming, D. J.
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机构:Univ Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, France
Leeming, D. J.
Byrjalsen, I.
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机构:Univ Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, France
Byrjalsen, I.
Delmas, P. D.
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Univ Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, FranceUniv Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, France
Delmas, P. D.
[1
]
Bouxsein, M. L.
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机构:Univ Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, France
Bouxsein, M. L.
机构:
[1] Univ Lyon 1, INSERM, Res Unit 403, F-69365 Lyon, France
[2] Nord Biosci, DK-2730 Herlev, Denmark
[3] Beth Israel Deaconess Med Ctr, Orthopaed Biomech Lab, Boston, MA 02215 USA
osteoporosis;
enzymatic crosslinks;
advanced glycation end products;
isomerization;
bone strength;
collagen;
D O I:
10.1016/j.bone.2006.05.013
中图分类号:
R5 [内科学];
学科分类号:
1002 [临床医学];
100201 [内科学];
摘要:
Collagen characteristics contribute to bone biomechanical properties. Yet, few studies have analyzed the independent contributions of bone mineral density (BMD) and post-translational modifications of type I collagen to whole bone strength. Thus, the aim of this study was to determine the relative contributions of BMD and both enzymatic and non-enzymatic collagen crosslink concentration to the biomechanical properties of human vertebrae. Nineteen L3 vertebrae were collected after necropsy (age 26-93; 10 males, 9 females). BMD of the vertebral body was measured by DXA, and the vertebrae were compressed to failure to assess the stiffness, failure load and work to fracture. After mechanical testing, the concentration of both enzymatic crosslinks pyridinoline (PYD), and deoxypyridinoline (DPD) as well as, and the non-enzymatic crosslinks pentosidine (PEN) were analyzed in trabecular and cortical bone by reversed-phase HPLC. The extent of aspartic acid isomerization of type I collagen C telopeptide (CTX) was evaluated by ELISA of native (alpha CTX) and isomerized (beta CTX) forms. BMD was significantly positively related with stiffness (R-2 = 0.74; P < 0.0001), failure load (R-2 = 0.69; P < 0.0001) and work to fracture (R-2 = 0.44; P = 0.002). Bivariate regression analysis showed no association between collagen traits and biomechanical properties. However, in a multiple regression model, BMD and trabecular PEN were both significantly associated with failure load and work to fracture (multiple R-2 = 0.83, P = 0.00 1 and R-2 = 0.67, P = 0.001, respectively). Similarly, BMD and trabecular alpha/beta CTX ratio were both associated with stiffness (multiple R-2 = 0.83, P = 0.015). These findings indicate that post-translational modifications of type I collagen have an impact on skeletal fragility. (C) 2006 Elsevier Inc. All rights reserved.