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Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute
Hemoglobin (Hb)-based oxygen carriers (HBOC) are modified extracellular proteins, designed to replace or augment the oxygen-carrying capacity of erythrocytes. However, clinical results have generally been disappointing due to adverse side effects, in part linked to the intrinsic oxidative toxicity o...
Autores principales: | , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Elsevier Science
2019
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6597946/ https://www.ncbi.nlm.nih.gov/pubmed/30594736 http://dx.doi.org/10.1016/j.freeradbiomed.2018.12.030 |
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author | Cooper, Chris E. Silkstone, Gary G.A. Simons, Michelle Rajagopal, Badri Syrett, Natalie Shaik, Thoufieq Gretton, Svetlana Welbourn, Elizabeth Bülow, Leif Eriksson, Nélida Leiva Ronda, Luca Mozzarelli, Andrea Eke, Andras Mathe, Domokos Reeder, Brandon J. |
author_facet | Cooper, Chris E. Silkstone, Gary G.A. Simons, Michelle Rajagopal, Badri Syrett, Natalie Shaik, Thoufieq Gretton, Svetlana Welbourn, Elizabeth Bülow, Leif Eriksson, Nélida Leiva Ronda, Luca Mozzarelli, Andrea Eke, Andras Mathe, Domokos Reeder, Brandon J. |
author_sort | Cooper, Chris E. |
collection | PubMed |
description | Hemoglobin (Hb)-based oxygen carriers (HBOC) are modified extracellular proteins, designed to replace or augment the oxygen-carrying capacity of erythrocytes. However, clinical results have generally been disappointing due to adverse side effects, in part linked to the intrinsic oxidative toxicity of Hb. Previously a redox-active tyrosine residue was engineered into the Hb β subunit (βF41Y) to facilitate electron transfer between endogenous antioxidants such as ascorbate and the oxidative ferryl heme species, converting the highly oxidizing ferryl species into the less reactive ferric (met) form. We inserted different single tyrosine mutations into the α and β subunits of Hb to determine if this effect of βF41Y was unique. Every mutation that was inserted within electron transfer range of the protein surface and the heme increased the rate of ferryl reduction. However, surprisingly, three of the mutations (βT84Y, αL91Y and βF85Y) also increased the rate of ascorbate reduction of ferric(met) Hb to ferrous(oxy) Hb. The rate enhancement was most evident at ascorbate concentrations equivalent to that found in plasma (< 100 μM), suggesting that it might be of benefit in decreasing oxidative stress in vivo. The most promising mutant (βT84Y) was stable with no increase in autoxidation or heme loss. A decrease in membrane damage following Hb addition to HEK cells correlated with the ability of βT84Y to maintain the protein in its oxygenated form. When PEGylated and injected into mice, βT84Y was shown to have an increased vascular half time compared to wild type PEGylated Hb. βT84Y represents a new class of mutations with the ability to enhance reduction of both ferryl and ferric Hb, and thus has potential to decrease adverse side effects as one component of a final HBOC product. |
format | Online Article Text |
id | pubmed-6597946 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | Elsevier Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-65979462019-07-11 Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute Cooper, Chris E. Silkstone, Gary G.A. Simons, Michelle Rajagopal, Badri Syrett, Natalie Shaik, Thoufieq Gretton, Svetlana Welbourn, Elizabeth Bülow, Leif Eriksson, Nélida Leiva Ronda, Luca Mozzarelli, Andrea Eke, Andras Mathe, Domokos Reeder, Brandon J. Free Radic Biol Med Article Hemoglobin (Hb)-based oxygen carriers (HBOC) are modified extracellular proteins, designed to replace or augment the oxygen-carrying capacity of erythrocytes. However, clinical results have generally been disappointing due to adverse side effects, in part linked to the intrinsic oxidative toxicity of Hb. Previously a redox-active tyrosine residue was engineered into the Hb β subunit (βF41Y) to facilitate electron transfer between endogenous antioxidants such as ascorbate and the oxidative ferryl heme species, converting the highly oxidizing ferryl species into the less reactive ferric (met) form. We inserted different single tyrosine mutations into the α and β subunits of Hb to determine if this effect of βF41Y was unique. Every mutation that was inserted within electron transfer range of the protein surface and the heme increased the rate of ferryl reduction. However, surprisingly, three of the mutations (βT84Y, αL91Y and βF85Y) also increased the rate of ascorbate reduction of ferric(met) Hb to ferrous(oxy) Hb. The rate enhancement was most evident at ascorbate concentrations equivalent to that found in plasma (< 100 μM), suggesting that it might be of benefit in decreasing oxidative stress in vivo. The most promising mutant (βT84Y) was stable with no increase in autoxidation or heme loss. A decrease in membrane damage following Hb addition to HEK cells correlated with the ability of βT84Y to maintain the protein in its oxygenated form. When PEGylated and injected into mice, βT84Y was shown to have an increased vascular half time compared to wild type PEGylated Hb. βT84Y represents a new class of mutations with the ability to enhance reduction of both ferryl and ferric Hb, and thus has potential to decrease adverse side effects as one component of a final HBOC product. Elsevier Science 2019-04 /pmc/articles/PMC6597946/ /pubmed/30594736 http://dx.doi.org/10.1016/j.freeradbiomed.2018.12.030 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Cooper, Chris E. Silkstone, Gary G.A. Simons, Michelle Rajagopal, Badri Syrett, Natalie Shaik, Thoufieq Gretton, Svetlana Welbourn, Elizabeth Bülow, Leif Eriksson, Nélida Leiva Ronda, Luca Mozzarelli, Andrea Eke, Andras Mathe, Domokos Reeder, Brandon J. Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute |
title | Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute |
title_full | Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute |
title_fullStr | Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute |
title_full_unstemmed | Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute |
title_short | Engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute |
title_sort | engineering tyrosine residues into hemoglobin enhances heme reduction, decreases oxidative stress and increases vascular retention of a hemoglobin based blood substitute |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6597946/ https://www.ncbi.nlm.nih.gov/pubmed/30594736 http://dx.doi.org/10.1016/j.freeradbiomed.2018.12.030 |
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