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An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways

Most of the SOD mimics thus far developed belong to the classes of Mn-(MnPs) and Fe porphyrins(FePs), Mn(III) salens, Mn(II) cyclic polyamines and metal salts. Due to their remarkable stability we have predominantly explored Mn porphyrins, aiming initially at mimicking kinetics and thermodynamics of...

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Detalles Bibliográficos
Autores principales: Batinic-Haberle, Ines, Tovmasyan, Artak, Spasojevic, Ivan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4392060/
https://www.ncbi.nlm.nih.gov/pubmed/25827425
http://dx.doi.org/10.1016/j.redox.2015.01.017
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author Batinic-Haberle, Ines
Tovmasyan, Artak
Spasojevic, Ivan
author_facet Batinic-Haberle, Ines
Tovmasyan, Artak
Spasojevic, Ivan
author_sort Batinic-Haberle, Ines
collection PubMed
description Most of the SOD mimics thus far developed belong to the classes of Mn-(MnPs) and Fe porphyrins(FePs), Mn(III) salens, Mn(II) cyclic polyamines and metal salts. Due to their remarkable stability we have predominantly explored Mn porphyrins, aiming initially at mimicking kinetics and thermodynamics of the catalysis of O(2)(•−) dismutation by SOD enzymes. Several MnPs are of potency similar to SOD enzymes. The in vivo bioavailability and toxicity of MnPs have been addressed also. Numerous in vitro and in vivo studies indicate their impressive therapeutic efficacy. Increasing insight into complex cellular redox biology has been accompanied by increasing awareness of complex redox chemistry of MnPs. During O(2)(•−) dismutation process, the most powerful Mn porphyrin-based SOD mimics reduce and oxidize O(2)(•−) with close to identical rate constants. MnPs reduce and oxidize other reactive species also (none of them specific to MnPs), acting as reductants (antioxidant) and pro-oxidants. Distinction must be made between the type of reactions of MnPs and the favorable therapeutic effects we observe; the latter may be of either anti- or pro-oxidative nature. H(2)O(2)/MnP mediated oxidation of protein thiols and its impact on cellular transcription seems to dominate redox biology of MnPs. It has been thus far demonstrated that the ability of MnPs to catalyze O(2)(•−) dismutation parallels all other reactivities (such as ONOO(−) reduction) and in turn their therapeutic efficacies. Assuming that all diseases have in common the perturbation of cellular redox environment, developing SOD mimics still seems to be the appropriate strategy for the design of potent redox-active therapeutics.
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spelling pubmed-43920602015-04-13 An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways Batinic-Haberle, Ines Tovmasyan, Artak Spasojevic, Ivan Redox Biol Graphical Review Most of the SOD mimics thus far developed belong to the classes of Mn-(MnPs) and Fe porphyrins(FePs), Mn(III) salens, Mn(II) cyclic polyamines and metal salts. Due to their remarkable stability we have predominantly explored Mn porphyrins, aiming initially at mimicking kinetics and thermodynamics of the catalysis of O(2)(•−) dismutation by SOD enzymes. Several MnPs are of potency similar to SOD enzymes. The in vivo bioavailability and toxicity of MnPs have been addressed also. Numerous in vitro and in vivo studies indicate their impressive therapeutic efficacy. Increasing insight into complex cellular redox biology has been accompanied by increasing awareness of complex redox chemistry of MnPs. During O(2)(•−) dismutation process, the most powerful Mn porphyrin-based SOD mimics reduce and oxidize O(2)(•−) with close to identical rate constants. MnPs reduce and oxidize other reactive species also (none of them specific to MnPs), acting as reductants (antioxidant) and pro-oxidants. Distinction must be made between the type of reactions of MnPs and the favorable therapeutic effects we observe; the latter may be of either anti- or pro-oxidative nature. H(2)O(2)/MnP mediated oxidation of protein thiols and its impact on cellular transcription seems to dominate redox biology of MnPs. It has been thus far demonstrated that the ability of MnPs to catalyze O(2)(•−) dismutation parallels all other reactivities (such as ONOO(−) reduction) and in turn their therapeutic efficacies. Assuming that all diseases have in common the perturbation of cellular redox environment, developing SOD mimics still seems to be the appropriate strategy for the design of potent redox-active therapeutics. Elsevier 2015-02-07 /pmc/articles/PMC4392060/ /pubmed/25827425 http://dx.doi.org/10.1016/j.redox.2015.01.017 Text en © 2015 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Graphical Review
Batinic-Haberle, Ines
Tovmasyan, Artak
Spasojevic, Ivan
An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways
title An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways
title_full An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways
title_fullStr An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways
title_full_unstemmed An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways
title_short An educational overview of the chemistry, biochemistry and therapeutic aspects of Mn porphyrins – From superoxide dismutation to H(2)O(2)-driven pathways
title_sort educational overview of the chemistry, biochemistry and therapeutic aspects of mn porphyrins – from superoxide dismutation to h(2)o(2)-driven pathways
topic Graphical Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4392060/
https://www.ncbi.nlm.nih.gov/pubmed/25827425
http://dx.doi.org/10.1016/j.redox.2015.01.017
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