Microcrack density and nanomechanical properties in the subchondral region of the immature piglet femoral head following ischemic osteonecrosis

被引:20
作者
Aruwajoye, Olumide O. [1 ,2 ]
Patel, Mihir K. [2 ]
Allen, Matthew R. [3 ]
Burr, David B. [3 ,4 ]
Aswath, Pranesh B. [2 ]
Kim, Harry K. W. [1 ,5 ]
机构
[1] Texas Scottish Rite Hosp Children, Ctr Excellence Hip Disorders, Dallas, TX 75219 USA
[2] Univ Texas Arlington, Mat Sci & Engn Dept, Arlington, TX 76019 USA
[3] Indiana Univ Sch Med, Dept Anat & Cell Biol, Indianapolis, IN 46202 USA
[4] Indiana Univ Purdue Univ, Dept Biomed Engn, Indianapolis, IN 46202 USA
[5] Univ Texas SW Med Ctr Dallas, Dept Orthopaed Surg, Dallas, TX 75390 USA
关键词
Ischemic osteonecrosis; Microdamage; Mineralization; Nanoindentation; MICRODAMAGE ACCUMULATION; BONE MICRODAMAGE; BIOMECHANICAL PROPERTIES; MECHANICAL-PROPERTIES; TRABECULAR BONE; VERTEBRAL BONE; MINERALIZATION; NECROSIS; MODEL; NANOINDENTATION;
D O I
10.1016/j.bone.2012.07.028
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Development of a subchondral fracture is one of the earliest signs of structural failure of the immature femoral head following ischemic osteonecrosis, and this eventually leads to a flattening deformity of the femoral head. The mechanical and mineralization changes in the femoral head preceding subchondral fracture have not been elucidated. We hypothesized that ischemic osteonecrosis leads to early material and mechanical alterations in the bone of the subchondral region. The purpose of this investigation was to assess the bone of the subchondral region for changes in the histology of bone cells, microcrack density, mineral content, and nanoindentation properties at an early stage of ischemic osteonecrosis in a piglet model. This large animal model has been shown to develop a subchondral fracture and femoral head deformity resembling juvenile femoral head osteonecrosis. The unoperated, left femoral head of each piglet (n=8) was used as a normal control, while the right side had a surgical ischemia induced by disrupting the femoral neck vessels with a ligature. Hematoxylin and eosin (H&E) staining and TUNEL assay were performed on femoral heads from 3 piglets. Quantitative backscattered electron imaging, nanoindentation, and microcrack assessments were performed on the subchondral region of both control and ischemic femoral heads from 5 piglets. H&E staining and TUNEL assay showed extensive cell death and an absence of osteoblasts in the ischemic side compared to the normal control. Microcrack density in the ischemic side (3.2 +/- 0.79 cracks/mm(2)) was significantly higher compared to the normal side (0.27 +/- 0.27 cracks/mm(2)) in the subchondral region (p<0.05). The weighted mean of the weight percent distribution of calcium (CaMean) also was significantly higher in the ischemic subchondral region (p<0.05). Furthermore, the nanoindentation modulus within localized areas of subchondral bone was significantly increased in the ischemic side (16.8 +/- 2.7 GPa) compared to the normal control (13.3 +/- 3.2 GPa) (p<0.05). Taken together, these results support the hypothesis that the nanoindentation modulus of the subchondral trabecular bone is increased in the early stage of ischemic osteonecrosis of the immature femoral head and makes it more susceptible to microcrack formation. We postulate that continued loading of the hip joint when there is a lack of bone cells to repair the microcracks due to ischemic osteonecrosis leads to microcrack accumulation and subsequent subchondral fracture. (C) 2012 Published by Elsevier Inc.
引用
收藏
页码:632 / 639
页数:8
相关论文
共 34 条
[1]   Raloxifene enhances vertebral mechanical properties independent of bone density [J].
Allen, Matthew R. ;
Iwata, Ken ;
Sato, Masahiko ;
Burr, David B. .
BONE, 2006, 39 (05) :1130-1135
[2]   Alterations in canine vertebral bone turnover, microdamage accumulation, and biomechanical properties following 1-year treatment with clinical treatment doses of risedronate or alendronate [J].
Allen, Matthew R. ;
Iwata, Ken ;
Phipps, Roger ;
Burr, David B. .
BONE, 2006, 39 (04) :872-879
[3]  
Allen MR., 2007, IBMS BoneKEy, V4, P49, DOI [DOI 10.1138/20060248, 10.1138/20060248]
[4]   Intracellular precipitation of hydroxyapatite mineral and implications for pathologic calcification [J].
Azari, Fereshteh ;
Vali, Hojatollah ;
Guerquin-Kern, Jean-Luc ;
Wu, Ting-Di ;
Croisy, Alain ;
Sears, S. Kelly ;
Tabrizian, Maryam ;
Mckee, Marc D. .
JOURNAL OF STRUCTURAL BIOLOGY, 2008, 162 (03) :468-479
[5]   The real response of bone to exercise [J].
Boyde, A .
JOURNAL OF ANATOMY, 2003, 203 (02) :173-189
[6]   Does microdamage accumulation affect the mechanical properties of bone? [J].
Burr, DB ;
Turner, CH ;
Naick, P ;
Forwood, MR ;
Ambrosius, W ;
Hasan, MS ;
Pidaparti, R .
JOURNAL OF BIOMECHANICS, 1998, 31 (04) :337-345
[7]   VALIDITY OF THE BULK-STAINING TECHNIQUE TO SEPARATE ARTIFACTUAL FROM INVIVO BONE MICRODAMAGE [J].
BURR, DB ;
STAFFORD, T .
CLINICAL ORTHOPAEDICS AND RELATED RESEARCH, 1990, (260) :305-308
[8]   Nanoindentation of bone: Comparison of specimens tested in liquid and embedded in polymethylmethacrylate [J].
Bushby, AJ ;
Ferguson, VL ;
Boyde, A .
JOURNAL OF MATERIALS RESEARCH, 2004, 19 (01) :249-259
[9]   EARLY ROENTGENOGRAPHIC CHANGES IN ESSENTIAL COXA PLANA - THEIR SIGNIFICANCE IN PATHOGENESIS [J].
CAFFEY, J .
AMERICAN JOURNAL OF ROENTGENOLOGY RADIUM THERAPY AND NUCLEAR MEDICINE, 1968, 103 (03) :620-&
[10]   Bone microdamage: a clinical perspective [J].
Chapurlat, R. D. ;
Delmas, P. D. .
OSTEOPOROSIS INTERNATIONAL, 2009, 20 (08) :1299-1308