Literature DB >> 33520431

The influence of estrogen deficiency on the structural and mechanical properties of rat cortical bone.

Anna Shipov1, Paul Zaslansky2, Heinrich Riesemeier3, Gilad Segev1, Ayelet Atkins4, Noga Kalish-Achrai1, Stephen Weiner5, Ron Shahar1.   

Abstract

BACKGROUND: Post-menopausal osteoporosis is a common health problem worldwide, most commonly caused by estrogen deficiency. Most of the information regarding the skeletal effects of this disease relates to trabecular bone, while cortical bone is less studied. The purpose of this study was to evaluate the influence of estrogen deficiency on the structure and mechanical properties of cortical bone.
METHODS: Eight ovariectomized (OVH) and eight intact (control) Sprague Dawley rats were used.Structural features of femoral cortical bone were studied by light microscopy, scanning electron microscopy and synchrotron-based microcomputer-tomography and their mechanical properties determined by nano-indentation.
RESULTS: Cortical bone of both study groups contains two distinct regions: organized circumferential lamellae and disordered bone with highly mineralized cartilaginous islands. Lacunar volume was lower in the OVH group both in the lamellar and disorganized regions (182 ± 75 µm3 vs 232 ± 106 µm3, P < 0.001 and 195 ± 86 µm3 vs. 247 ± 106 µm3, P < 0.001, respectively). Lacunar density was also lower in both bone regions of the OVH group (40 ± 18 ×103 lacunae/mm3 vs. 47 ± 9×103 lacunae/mm3 in the lamellar region, P = 0.003 and 63 ± 18×103lacunae/mm3 vs. 75 ± 13×103 lacunae/mm3 in the disorganized region, P < 0.001). Vascular canal volume was lower in the disorganized region of the bone in the OVH group compared to the same region in the control group (P < 0.001). Indentation moduli were not different between the study groups in both bone regions. DISCUSSION: Changes to cortical bone associated with estrogen deficiency in rats require high-resolution methods for detection. Caution is required in the application of these results to humans due to major structural differences between human and rat bone. ©2021 Shipov et al.

Entities:  

Keywords:  Disorganized bone; Estrogen; Lacunae; Ovariectomy; Rat

Year:  2021        PMID: 33520431      PMCID: PMC7811283          DOI: 10.7717/peerj.10213

Source DB:  PubMed          Journal:  PeerJ        ISSN: 2167-8359            Impact factor:   2.984


  38 in total

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Review 2.  The use of nanoindentation for characterizing the properties of mineralized hard tissues: state-of-the art review.

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Review 3.  Osteocytes, strain detection, bone modeling and remodeling.

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5.  Changes in intracortical microporosities induced by pharmaceutical treatment of osteoporosis as detected by high resolution micro-CT.

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Review 7.  Meta-analyses of therapies for postmenopausal osteoporosis. V. Meta-analysis of the efficacy of hormone replacement therapy in treating and preventing osteoporosis in postmenopausal women.

Authors:  George Wells; Peter Tugwell; Beverley Shea; Gordon Guyatt; Joan Peterson; Nicole Zytaruk; Vivian Robinson; David Henry; Diane O'Connell; Ann Cranney
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8.  A new open-source tool for measuring 3D osteocyte lacunar geometries from confocal laser scanning microscopy reveals age-related changes to lacunar size and shape in cortical mouse bone.

Authors:  Chelsea M Heveran; Adam Rauff; Karen B King; R Dana Carpenter; Virginia L Ferguson
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9.  Increased bone turnover in late postmenopausal women is a major determinant of osteoporosis.

Authors:  P Garnero; E Sornay-Rendu; M C Chapuy; P D Delmas
Journal:  J Bone Miner Res       Date:  1996-03       Impact factor: 6.741

10.  Reduced iliac cancellous osteocyte density in patients with osteoporotic vertebral fracture.

Authors:  Shijing Qiu; D Sudhaker Rao; Saroj Palnitkar; A Michael Parfitt
Journal:  J Bone Miner Res       Date:  2003-09       Impact factor: 6.741

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