Literature DB >> 24440514

Bone embrittlement and collagen modifications due to high-dose gamma-irradiation sterilization.

Brianne Burton1, Anne Gaspar1, David Josey2, Jindra Tupy2, Marc D Grynpas3, Thomas L Willett4.   

Abstract

Bone allografts are often used in orthopedic reconstruction of skeletal defects resulting from trauma, bone cancer or revision of joint arthroplasty. γ-Irradiation sterilization is a widely-used biological safety measure; however it is known to embrittle bone. Irradiation has been shown to affect the post-yield properties, which are attributed to the collagen component of bone. In order to find a solution to the loss of toughness in irradiated bone allografts, it is important to fully understand the effects of irradiation on bone collagen. The objective of this study was to evaluate changes in the structure and integrity of bone collagen as a result of γ-irradiation, with the hypothesis that irradiation fragments collagen molecules leading to a loss of collagen network connectivity and therefore loss of toughness. Using cortical bone from bovine tibiae, sample beams irradiated at 33kGy on dry ice were compared to native bone beams (paired controls). All beams were subjected to three-point bend testing to failure followed by characterization of the decalcified bone collagen, using differential scanning calorimetry (DSC), hydrothermal isometric tension testing (HIT), high performance liquid chromatography (HPLC) and gel electrophoresis (SDS-PAGE). The carbonyl content of demineralized bone collagen was also measured chemically to assess oxidative damage. Barium sulfate staining after single edge notch bending (SEN(B)) fracture testing was also performed on bovine tibia bone beams with a machined and sharpened notch to evaluate the fracture toughness and ability of irradiated bone to form micro-damage during fracture. Irradiation resulted in a 62% loss of work-to-fracture (p≤0.001). There was significantly less micro-damage formed during fracture propagation in the irradiated bone. HPLC showed no significant effect on pentosidine, pyridinoline, or hydroxypyridinoline levels suggesting that the loss of toughness is not due to changes in these stable crosslinks. For DSC, there was a 20% decrease in thermal stability (p<0.001) with a 100% increase (p<0.001) in enthalpy of denaturation (melting). HIT testing also showed a decrease in thermal stability (20% lower denaturation temperature, p<0.001) and greatly reduced measures of collagen network connectivity (p<0.001). Interestingly, the increase in enthalpy of denaturation suggests that irradiated collagen requires more energy to denature (melt), perhaps a result of alterations in the hydrogen bonding sites (increased carbonyl content detected in the insoluble collagen) on the irradiated bone collagen. Altogether, this new data strongly indicates that a large loss of overall collagen connectivity due to collagen fragmentation resulting from γ-irradiation sterilization leads to inferior cortical bone toughness. In addition, notable changes in the thermal denaturation of the bone collagen along with chemical indicators of oxidative modification of the bone collagen indicate that the embrittlement may be a function not only of collagen fragmentation but also of changes in bonding.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Collagen; Cortical bone; Irradiation; Sterilization; Toughness

Mesh:

Substances:

Year:  2014        PMID: 24440514     DOI: 10.1016/j.bone.2014.01.006

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


  21 in total

1.  Effect of sterilization and crosslinking on gelatin films.

Authors:  Sofia Amadori; Paola Torricelli; Katia Rubini; Milena Fini; Silvia Panzavolta; Adriana Bigi
Journal:  J Mater Sci Mater Med       Date:  2015-01-29       Impact factor: 3.896

2.  Effects of ex vivo ionizing radiation on collagen structure and whole-bone mechanical properties of mouse vertebrae.

Authors:  Megan M Pendleton; Shannon R Emerzian; Jennifer Liu; Simon Y Tang; Grace D O'Connell; Joshua S Alwood; Tony M Keaveny
Journal:  Bone       Date:  2019-08-21       Impact factor: 4.398

Review 3.  Clinical applications of allografts in foot and ankle surgery.

Authors:  Pedro Diniz; Jácome Pacheco; Miguel Flora; Diego Quintero; Sjoerd Stufkens; Gino Kerkhoffs; Jorge Batista; Jon Karlsson; Hélder Pereira
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  2019-02-05       Impact factor: 4.342

4.  UV cross-linking of donor corneas confers resistance to keratolysis.

Authors:  Samer N Arafat; Marie-Claude Robert; Anita N Shukla; Claes H Dohlman; James Chodosh; Joseph B Ciolino
Journal:  Cornea       Date:  2014-09       Impact factor: 2.651

Review 5.  The Role of Matrix Composition in the Mechanical Behavior of Bone.

Authors:  Mustafa Unal; Amy Creecy; Jeffry S Nyman
Journal:  Curr Osteoporos Rep       Date:  2018-06       Impact factor: 5.096

Review 6.  The impact of advanced glycation end products on bone properties in chronic kidney disease.

Authors:  John G Damrath; Amy Creecy; Joseph M Wallace; Sharon M Moe
Journal:  Curr Opin Nephrol Hypertens       Date:  2021-07-01       Impact factor: 3.416

7.  Macroscopic and histological evaluations of meniscal allograft transplantation using gamma irradiated meniscus: a comparative in vivo animal study.

Authors:  Jin Zhang; Guan-Yang Song; Xing-Zuo Chen; Yue Li; Xu Li; Jun-Lin Zhou
Journal:  Chin Med J (Engl)       Date:  2015-05-20       Impact factor: 2.628

8.  Supercritical carbon dioxide-based sterilization of decellularized heart valves.

Authors:  Ryan S Hennessy; Soumen Jana; Brandon J Tefft; Meghana R Helder; Melissa D Young; Rebecca R Hennessy; Nicholas J Stoyles; Amir Lerman
Journal:  JACC Basic Transl Sci       Date:  2017-02

Review 9.  Biomechanical Properties of Metastatically Involved Osteolytic Bone.

Authors:  Cari M Whyne; Dallis Ferguson; Allison Clement; Mohammedayaz Rangrez; Michael Hardisty
Journal:  Curr Osteoporos Rep       Date:  2020-10-19       Impact factor: 5.096

10.  Altered mechanical behavior of demineralized bone following therapeutic radiation.

Authors:  Christopher M Bartlow; Kenneth A Mann; Timothy A Damron; Megan E Oest
Journal:  J Orthop Res       Date:  2020-10-06       Impact factor: 3.494

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