Literature DB >> 26960578

Parathyroid hormone attenuates radiation-induced increases in collagen crosslink ratio at periosteal surfaces of mouse tibia.

Megan E Oest1, Bo Gong2, Karen Esmonde-White3, Kenneth A Mann1, Nicholas D Zimmerman1, Timothy A Damron1, Michael D Morris2.   

Abstract

As part of our ongoing efforts to understand underlying mechanisms contributing to radiation-associated bone fragility and to identify possible treatments, we evaluated the longitudinal effects of parathyroid hormone (PTH) treatment on bone quality in a murine model of limited field irradiation. We hypothesized PTH would mitigate radiation-induced changes in the chemical composition and structure of bone, as measured by microscope-based Raman spectroscopy. We further hypothesized that collagen crosslinking would be especially responsive to PTH treatment. Raman spectroscopy was performed on retrieved tibiae (6-7/group/time point) to quantify metrics associated with bone quality, including: mineral-to-matrix ratio, carbonate-to-phosphate ratio, mineral crystallinity, collagen crosslink (trivalent:divalent) ratio, and the mineral and matrix depolarization ratios. Irradiation disrupted the molecular structure and orientation of bone collagen, as evidenced by a higher collagen crosslink ratio and lower matrix depolarization ratio (vs. non-irradiated control bones), persisting until 12weeks post-irradiation. Radiation transiently affected the mineral phase, as evidenced by increased mineral crystallinity and mineral-to-matrix ratio at 4weeks compared to controls. Radiation decreased bone mineral depolarization ratios through 12weeks, indicating increased mineral alignment. PTH treatment partially attenuated radiation-induced increases in collagen crosslink ratio, but did not restore collagen or mineral alignment. These post-radiation matrix changes are consistent with our previous studies of radiation damage to bone, and suggest that the initial radiation damage to bone matrix has extensive effects on the quality of tissue deposited thereafter. In addition to maintaining bone quality, preventing initial radiation damage to the bone matrix (i.e. crosslink ratio, matrix orientation) may be critical to preventing late-onset fragility fractures.
Copyright © 2016 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Bone; Collagen crosslinking; Extracellular matrix; Parathyroid hormone; Radiation therapy; Raman spectroscopy

Mesh:

Substances:

Year:  2016        PMID: 26960578      PMCID: PMC4833661          DOI: 10.1016/j.bone.2016.03.003

Source DB:  PubMed          Journal:  Bone        ISSN: 1873-2763            Impact factor:   4.398


  36 in total

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6.  Changes in Structural-Mechanical Properties and Degradability of Collagen during Aging-associated Modifications.

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10.  Abnormal bone architecture and biomechanical properties with near-lifetime treatment of rats with PTH.

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  11 in total

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Authors:  E P Paschalis; S Gamsjaeger; K Klaushofer
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2.  Effects of ex vivo ionizing radiation on collagen structure and whole-bone mechanical properties of mouse vertebrae.

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Journal:  Bone       Date:  2019-08-21       Impact factor: 4.398

3.  The High-cycle Fatigue Life of Cortical Bone Allografts Is Radiation Sterilization Dose-dependent: An In Vitro Study.

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4.  Orchestrated delivery of PTH [1-34] followed by zoledronic acid prevents radiotherapy-induced bone loss but does not abrogate marrow damage.

Authors:  Ashley R Sweeney-Ambros; Amy E Biggs; Nicholas D Zimmerman; Kenneth A Mann; Timothy A Damron; Megan E Oest
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5.  Longitudinal Effects of Single Hindlimb Radiation Therapy on Bone Strength and Morphology at Local and Contralateral Sites.

Authors:  Megan E Oest; Connor G Policastro; Kenneth A Mann; Nicholas D Zimmerman; Timothy A Damron
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6.  Assessing glycation-mediated changes in human cortical bone with Raman spectroscopy.

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7.  In Vitro Radiosensitivity of Murine Marrow Stromal Cells Varies Across Donor Strains.

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8.  Radiation-induced changes to bone composition extend beyond periosteal bone.

Authors:  Gurjit S Mandair; Megan E Oest; Kenneth A Mann; Michael D Morris; Timothy A Damron; David H Kohn
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9.  Altered mechanical behavior of demineralized bone following therapeutic radiation.

Authors:  Christopher M Bartlow; Kenneth A Mann; Timothy A Damron; Megan E Oest
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10.  Limited field radiation therapy results in decreased bone fracture toughness in a murine model.

Authors:  Christopher M Bartlow; Kenneth A Mann; Timothy A Damron; Megan E Oest
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