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Can gamma irradiation during radiotherapy influence the metal release process for biomedical CoCrMo and 316L alloys?
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemistry, Surface and Corrosion Science.
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemistry, Surface and Corrosion Science. KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemistry, Applied Physical Chemistry.
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemistry, Surface and Corrosion Science.
KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemistry, Surface and Corrosion Science. KTH, School of Engineering Sciences in Chemistry, Biotechnology and Health (CBH), Chemistry, Applied Physical Chemistry.
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2018 (English)In: Journal of Biomedical Materials Research. Part B - Applied biomaterials, ISSN 1552-4973, E-ISSN 1552-4981, Vol. 106, no 7, p. 2673-2680Article in journal (Refereed) Published
Abstract [en]

The extent of metal release from implant materials that are irradiated during radiotherapy may be influenced by irradiation-formed radicals. The influence of gamma irradiation, with a total dose of relevance for radiotherapy (e.g., for cancer treatments) on the extent of metal release from biomedical stainless steel AISI 316L and a cobalt-chromium alloy (CoCrMo) was investigated in physiological relevant solutions (phosphate buffered saline with and without 10 g/L bovine serum albumin) at pH 7.3. Directly after irradiation, the released amounts of metals were significantly higher for irradiated CoCrMo as compared to nonirradiated CoCrMo, resulting in an increased surface passivation (enhanced passive conditions) that hindered further release. A similar effect was observed for 316L showing lower nickel release after 1 h of initially irradiated samples as compared to nonirradiated samples. However, the effect of irradiation (total dose of 16.5 Gy) on metal release and surface oxide composition and thickness was generally small. Most metals were released initially (within seconds) upon immersion from CoCrMo but not from 316L. Albumin induced an increased amount of released metals from AISI 316L but not from CoCrMo. Albumin was not found to aggregate to any greater extent either upon gamma irradiation or in the presence of trace metal ions, as determined using different light scattering techniques. Further studies should elucidate the effect of repeated friction and fractionated low irradiation doses on the short- and long term metal release process of biomedical materials.

Place, publisher, year, edition, pages
Wiley , 2018. Vol. 106, no 7, p. 2673-2680
Keywords [en]
BSA, implant, passivation, radicals, radiotherapy
National Category
Occupational Health and Environmental Health Surface- and Corrosion Engineering
Identifiers
URN: urn:nbn:se:kth:diva-225956DOI: 10.1002/jbm.b.34084ISI: 000445449800017PubMedID: 29424962Scopus ID: 2-s2.0-85041712415OAI: oai:DiVA.org:kth-225956DiVA, id: diva2:1196877
Funder
Swedish Research Council, 2015–04177Carl Tryggers foundation , CTS 15:353
Note

QC 20180611

Available from: 2018-04-11 Created: 2018-04-11 Last updated: 2025-02-09Bibliographically approved
In thesis
1. Metal release from stainless steel and CoCrMo alloys in protein-rich environments – effects of protein aggregation, friction, and irradiation
Open this publication in new window or tab >>Metal release from stainless steel and CoCrMo alloys in protein-rich environments – effects of protein aggregation, friction, and irradiation
2020 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

Highly corrosion-resistant alloys are used in sensitive environments such as the human body and food environments. However, even tiny amounts of released metals from these surfaces could potentially cause adverse effects. It is hence important to study the biointerface between corrosion-resistant alloys and protein-rich environments. This licentiate thesis focused on the metal release processes for stainless steels and cobalt-chromium-molybdenum (CoCrMo) alloys in different protein-rich environments. It aimed at investigating the effect of protein displacement (Vroman effect), gamma irradiation, and friction on the metal release processes. Trace metal analysis was the main tool, combined with other solution analytical tools, electrochemical methods, and surface sensitive techniques.

The effect of gamma irradiation, of relevance for cancer radiotherapy, on metal release from CoCrMo and stainless steel 316L was investigated in Paper I. The effect was minor, however the released amount of metals increased after irradiation causing an enhanced surface passivation effect. Whether the displacement of surface proteins (Vroman effect) was playing a role on the metal release and corrosion processes of stainless steels 316L and 303, and of CoCrMo, was investigated in Papers II and III. A Vroman effect influencing the metal release could be observed for stainless steel 316L, but not for CoCrMo and stainless steel grade 303. However, the displacement of the smaller protein bovine serum albumin (BSA) from the surface by the larger protein fibrinogen (Fbn) was observed for both stainless steel grades. The Vroman effect also caused a higher corrosion susceptibility of stainless steel 303, probably due to a thicker layer or patches of adsorbed Fbn. Most probably, protein aggregation and precipitation caused an underestimation of the extent of metal release, especially in the case of CoCrMo. Protein aggregation and precipitation were significantly observed in all studies, especially for solutions with high protein concentrations (Papers II-IV). The effect of friction, by using different setups (stirring with physical contact and sliding in a pin-on-disk machine), on metal release from stainless steel 316L and CoCrMo was investigated in Papers II and IV. Friction induced an increased extent of metal release, increased protein aggregation and precipitation, and enhanced metal precipitation. A combined friction and complexation effect was observed for stainless steel 316L, resulting in an etching effect and relatively high amounts of released metals. Due to enhanced precipitation effects and the experimental setup, it is recommended to strongly consider protein aggregation and metal precipitation events in systems where this could be expected and where friction is present. Otherwise, there is a risk to strongly underestimate the extent of metal release in these protein-rich environments.

Place, publisher, year, edition, pages
Stockholm: KTH Royal Institute of Technology, 2020. p. 107
Series
TRITA-CBH-FOU ; 2020:48
Keywords
Metal release, stainless steel, CoCrMo, protein aggregation, friction, irradiation, Vroman effect
National Category
Surface- and Corrosion Engineering
Research subject
Chemistry
Identifiers
urn:nbn:se:kth:diva-281787 (URN)978-91-7873-649-2 (ISBN)
Presentation
2020-10-22, https://kth-se.zoom.us/meeting/register/u5wocuqoqTItE9BAbrleFBGsn9iKqEzjLYXw, Stockholm, 14:00 (English)
Opponent
Supervisors
Funder
Swedish Research Council, 2019-03657
Note

QC 2020-09-28

Available from: 2020-09-28 Created: 2020-09-27 Last updated: 2025-02-09Bibliographically approved

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Wei, ZhengSoroka, Inna L.Odnevall Wallinder, IngerHedberg, Yolanda

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