Literature DB >> 24998454

PTH1-34 alleviates radiotherapy-induced local bone loss by improving osteoblast and osteocyte survival.

Abhishek Chandra1, Tiao Lin2, Mary Beth Tribble1, Ji Zhu1, Allison R Altman1, Wei-Ju Tseng1, Yejia Zhang3, Sunday O Akintoye4, Keith Cengel5, X Sherry Liu1, Ling Qin6.   

Abstract

Cancer radiotherapy is often complicated by a spectrum of changes in the neighboring bone from mild osteopenia to osteoradionecrosis. We previously reported that parathyroid hormone (PTH, 1-34), an anabolic agent for osteoporosis, reversed bone structural deterioration caused by multiple microcomputed tomography (microCT) scans in adolescent rats. To simulate clinical radiotherapy for cancer patients and to search for remedies, we focally irradiated the tibial metaphyseal region of adult rats with a newly available small animal radiation research platform (SARRP) and treated these rats with intermittent injections of PTH1-34. Using a unique 3D image registration method that we recently developed, we traced the local changes of the same trabecular bone before and after treatments, and observed that, while radiation caused a loss of small trabecular elements leading to significant decreases in bone mass and strength, PTH1-34 preserved all trabecular elements in irradiated bone with remarkable increases in bone mass and strength. Histomorphometry demonstrated that SARRP radiation severely reduced osteoblast number and activity, which were impressively reversed by PTH treatment. In contrast, suppressing bone resorption by alendronate failed to rescue radiation-induced bone loss and to block the rescue effect of PTH1-34. Furthermore, histological analyses revealed that PTH1-34 protected osteoblasts and osteocytes from radiation-induced apoptosis and attenuated radiation-induced bone marrow adiposity. Taken together, our data strongly support a robust radioprotective effect of PTH on trabecular bone integrity through preserving bone formation and shed light on further investigations of an anabolic therapy for radiation-induced bone damage.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Apoptosis; Image registration; Osteoblast; Parathyroid hormone; Radiotherapy; Trabecular bone

Mesh:

Substances:

Year:  2014        PMID: 24998454      PMCID: PMC4154509          DOI: 10.1016/j.bone.2014.06.030

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


  40 in total

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Authors:  Hisataka Kondo; Nancy D Searby; Rose Mojarrab; Jonathan Phillips; Joshua Alwood; Kenji Yumoto; Eduardo A C Almeida; Charles L Limoli; Ruth K Globus
Journal:  Radiat Res       Date:  2009-03       Impact factor: 2.841

3.  Long-term treatment of 12 children with chronic hypoparathyroidism: a randomized trial comparing synthetic human parathyroid hormone 1-34 versus calcitriol and calcium.

Authors:  Karen K Winer; Ninet Sinaii; James Reynolds; Donna Peterson; Karen Dowdy; Gordon B Cutler
Journal:  J Clin Endocrinol Metab       Date:  2010-04-14       Impact factor: 5.958

4.  A murine model for bone loss from therapeutic and space-relevant sources of radiation.

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5.  Intermittent parathyroid hormone administration counteracts the adverse effects of glucocorticoids on osteoblast and osteocyte viability, bone formation, and strength in mice.

Authors:  Robert S Weinstein; Robert L Jilka; Maria Almeida; Paula K Roberson; Stavros C Manolagas
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6.  Early increase in osteoclast number in mice after whole-body irradiation with 2 Gy X rays.

Authors:  Jeffrey S Willey; Shane A J Lloyd; Michael E Robbins; J Daniel Bourland; Hope Smith-Sielicki; Laura C Bowman; Robert W Norrdin; Ted A Bateman
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7.  Oxidative stress and gamma radiation-induced cancellous bone loss with musculoskeletal disuse.

Authors:  Hisataka Kondo; Kenji Yumoto; Joshua S Alwood; Rose Mojarrab; Angela Wang; Eduardo A C Almeida; Nancy D Searby; Charles L Limoli; Ruth K Globus
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Authors:  Tara C Brennan; René Rizzoli; Patrick Ammann
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9.  High-resolution, small animal radiation research platform with x-ray tomographic guidance capabilities.

Authors:  John Wong; Elwood Armour; Peter Kazanzides; Iulian Iordachita; Erik Tryggestad; Hua Deng; Mohammad Matinfar; Christopher Kennedy; Zejian Liu; Timothy Chan; Owen Gray; Frank Verhaegen; Todd McNutt; Eric Ford; Theodore L DeWeese
Journal:  Int J Radiat Oncol Biol Phys       Date:  2008-08-01       Impact factor: 7.038

10.  Risedronate prevents early radiation-induced osteoporosis in mice at multiple skeletal locations.

Authors:  Jeffrey S Willey; Eric W Livingston; Michael E Robbins; J Daniel Bourland; Leidamarie Tirado-Lee; Hope Smith-Sielicki; Ted A Bateman
Journal:  Bone       Date:  2009-09-09       Impact factor: 4.398

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  39 in total

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2.  Nonvascularized Bone Graft Reconstruction of the Irradiated Murine Mandible: An Analogue of Clinical Head and Neck Cancer Treatment.

Authors:  Kevin M Urlaub; Russell E Ettinger; Noah S Nelson; Jessie M Hoxie; Alicia E Snider; Joseph E Perosky; Yekaterina Polyatskaya; Alexis Donneys; Steven R Buchman
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3.  Targeted Reduction of Senescent Cell Burden Alleviates Focal Radiotherapy-Related Bone Loss.

Authors:  Abhishek Chandra; Anthony B Lagnado; Joshua N Farr; David G Monroe; Sean Park; Christine Hachfeld; Tamar Tchkonia; James L Kirkland; Sundeep Khosla; João F Passos; Robert J Pignolo
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4.  Reproducibility and Radiation Effect of High-Resolution In Vivo Micro Computed Tomography Imaging of the Mouse Lumbar Vertebra and Long Bone.

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5.  PTH1-34 blocks radiation-induced osteoblast apoptosis by enhancing DNA repair through canonical Wnt pathway.

Authors:  Abhishek Chandra; Tiao Lin; Ji Zhu; Wei Tong; Yanying Huo; Haoruo Jia; Yejia Zhang; X Sherry Liu; Keith Cengel; Bing Xia; Ling Qin
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6.  Proteasome inhibitor bortezomib is a novel therapeutic agent for focal radiation-induced osteoporosis.

Authors:  Abhishek Chandra; Luqiang Wang; Tiffany Young; Leilei Zhong; Wei-Ju Tseng; Michael A Levine; Keith Cengel; X Sherry Liu; Yejia Zhang; Robert J Pignolo; Ling Qin
Journal:  FASEB J       Date:  2017-08-31       Impact factor: 5.191

Review 7.  Chemical and Radiation-Associated Jaw Lesions.

Authors:  Temitope T Omolehinwa; Sunday O Akintoye
Journal:  Dent Clin North Am       Date:  2016-01

8.  Periosteal Mesenchymal Progenitor Dysfunction and Extraskeletally-Derived Fibrosis Contribute to Atrophic Fracture Nonunion.

Authors:  Luqiang Wang; Robert J Tower; Abhishek Chandra; Lutian Yao; Wei Tong; Zekang Xiong; Kai Tang; Yejia Zhang; X Sherry Liu; Joel D Boerckel; Xiaodong Guo; Jaimo Ahn; Ling Qin
Journal:  J Bone Miner Res       Date:  2019-01-02       Impact factor: 6.741

9.  Quantification of skeletal growth, modeling, and remodeling by in vivo micro computed tomography.

Authors:  Allison R Altman; Wei-Ju Tseng; Chantal M J de Bakker; Abhishek Chandra; Shenghui Lan; Beom Kang Huh; Shiming Luo; Mary B Leonard; Ling Qin; X Sherry Liu
Journal:  Bone       Date:  2015-08-06       Impact factor: 4.398

10.  PTH(1-34) and zoledronic acid have differing longitudinal effects on juvenile mouse femur strength and morphology.

Authors:  Christopher M Bartlow; Megan E Oest; Kenneth A Mann; Nicholas D Zimmerman; Bilal B Butt; Timothy A Damron
Journal:  J Orthop Res       Date:  2016-10-03       Impact factor: 3.494

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