An Overview of Serum Albumin Interactions with Biomedical Alloys
Understanding the interactions between biomedical alloys and body fluids is of importance for the successful and safe performance of implanted devices. Albumin, as the first protein that comes in contact with an implant surface, can determine the biocompatibility of biomedical alloys. The interactio...
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doaj-9166cf818266489ba9ba41db58be339f2020-11-25T04:09:20ZengMDPI AGMaterials1996-19442020-10-01134858485810.3390/ma13214858An Overview of Serum Albumin Interactions with Biomedical AlloysOksana Klok0Anna Igual Munoz1Stefano Mischler2Tribology and Interfacial Chemistry Group, Ecole Polytechnique Fédérale de Lausanne (EPFL), 1015 Lausanne, SwitzerlandTribology and Interfacial Chemistry Group, Ecole Polytechnique Fédérale de Lausanne (EPFL), 1015 Lausanne, SwitzerlandTribology and Interfacial Chemistry Group, Ecole Polytechnique Fédérale de Lausanne (EPFL), 1015 Lausanne, SwitzerlandUnderstanding the interactions between biomedical alloys and body fluids is of importance for the successful and safe performance of implanted devices. Albumin, as the first protein that comes in contact with an implant surface, can determine the biocompatibility of biomedical alloys. The interaction of albumin with biomedical alloys is a complex process influenced by numerous factors. This literature overview aims at presenting the current understanding of the mechanisms of serum albumin (both Bovine Serum Albumin, BSA, and Human Serum Albumin, HSA) interactions with biomedical alloys, considering only those research works that present a mechanistic description of the involved phenomena. Widely used biomedical alloys, such as 316L steel, CoCrMo and Titanium alloys are specifically addressed in this overview. Considering the literature analysis, four albumin-related phenomena can be distinguished: adsorption, reduction, precipitation, and protein-metal binding. The experimental techniques used to understand and quantify those phenomena are described together with the studied parameters influencing them. The crucial effect of the electrochemical potential on those phenomena is highlighted. The effect of the albumin-related phenomena on corrosion behavior of biomedical materials also is discussed.https://www.mdpi.com/1996-1944/13/21/4858biomaterialsmetalscorrosionelectrochemistrymetal releasesimulated body fluid (SBF) |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Oksana Klok Anna Igual Munoz Stefano Mischler |
spellingShingle |
Oksana Klok Anna Igual Munoz Stefano Mischler An Overview of Serum Albumin Interactions with Biomedical Alloys Materials biomaterials metals corrosion electrochemistry metal release simulated body fluid (SBF) |
author_facet |
Oksana Klok Anna Igual Munoz Stefano Mischler |
author_sort |
Oksana Klok |
title |
An Overview of Serum Albumin Interactions with Biomedical Alloys |
title_short |
An Overview of Serum Albumin Interactions with Biomedical Alloys |
title_full |
An Overview of Serum Albumin Interactions with Biomedical Alloys |
title_fullStr |
An Overview of Serum Albumin Interactions with Biomedical Alloys |
title_full_unstemmed |
An Overview of Serum Albumin Interactions with Biomedical Alloys |
title_sort |
overview of serum albumin interactions with biomedical alloys |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2020-10-01 |
description |
Understanding the interactions between biomedical alloys and body fluids is of importance for the successful and safe performance of implanted devices. Albumin, as the first protein that comes in contact with an implant surface, can determine the biocompatibility of biomedical alloys. The interaction of albumin with biomedical alloys is a complex process influenced by numerous factors. This literature overview aims at presenting the current understanding of the mechanisms of serum albumin (both Bovine Serum Albumin, BSA, and Human Serum Albumin, HSA) interactions with biomedical alloys, considering only those research works that present a mechanistic description of the involved phenomena. Widely used biomedical alloys, such as 316L steel, CoCrMo and Titanium alloys are specifically addressed in this overview. Considering the literature analysis, four albumin-related phenomena can be distinguished: adsorption, reduction, precipitation, and protein-metal binding. The experimental techniques used to understand and quantify those phenomena are described together with the studied parameters influencing them. The crucial effect of the electrochemical potential on those phenomena is highlighted. The effect of the albumin-related phenomena on corrosion behavior of biomedical materials also is discussed. |
topic |
biomaterials metals corrosion electrochemistry metal release simulated body fluid (SBF) |
url |
https://www.mdpi.com/1996-1944/13/21/4858 |
work_keys_str_mv |
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