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Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion

[Image: see text] The anaerobic biosyntheses of heme, heme d(1), and bacteriochlorophyll all require the action of radical SAM enzymes. During heme biosynthesis in some bacteria, coproporphyrinogen III dehydrogenase (CgdH) catalyzes the decarboxylation of two propionate side chains of coproporphyrin...

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Autores principales: Layer, Gunhild, Jahn, Martina, Moser, Jürgen, Jahn, Dieter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10114771/
https://www.ncbi.nlm.nih.gov/pubmed/37101575
http://dx.doi.org/10.1021/acsbiomedchemau.1c00061
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author Layer, Gunhild
Jahn, Martina
Moser, Jürgen
Jahn, Dieter
author_facet Layer, Gunhild
Jahn, Martina
Moser, Jürgen
Jahn, Dieter
author_sort Layer, Gunhild
collection PubMed
description [Image: see text] The anaerobic biosyntheses of heme, heme d(1), and bacteriochlorophyll all require the action of radical SAM enzymes. During heme biosynthesis in some bacteria, coproporphyrinogen III dehydrogenase (CgdH) catalyzes the decarboxylation of two propionate side chains of coproporphyrinogen III to the corresponding vinyl groups of protoporphyrinogen IX. Its solved crystal structure was the first published structure for a radical SAM enzyme. In bacteria, heme is inserted into enzymes by the cytoplasmic heme chaperone HemW, a radical SAM enzyme structurally highly related to CgdH. In an alternative heme biosynthesis route found in archaea and sulfate-reducing bacteria, the two radical SAM enzymes AhbC and AhbD catalyze the removal of two acetate groups (AhbC) or the decarboxylation of two propionate side chains (AhbD). NirJ, a close homologue of AhbC, is required for propionate side chain removal during the formation of heme d(1) in some denitrifying bacteria. Biosynthesis of the fifth ring (ring E) of all chlorophylls is based on an unusual six-electron oxidative cyclization step. The sophisticated conversion of Mg-protoporphyrin IX monomethylester to protochlorophyllide is facilitated by an oxygen-independent cyclase termed BchE, which is a cobalamin-dependent radical SAM enzyme. Most of the radical SAM enzymes involved in tetrapyrrole biosynthesis were recognized as such by Sofia et al. in 2001 (Nucleic Acids Res.2001, 29, 1097−110611222759) and were biochemically characterized thereafter. Although much has been achieved, the challenging tetrapyrrole substrates represent a limiting factor for enzyme/substrate cocrystallization and the ultimate elucidation of the corresponding enzyme mechanisms.
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spelling pubmed-101147712023-04-25 Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion Layer, Gunhild Jahn, Martina Moser, Jürgen Jahn, Dieter ACS Bio Med Chem Au [Image: see text] The anaerobic biosyntheses of heme, heme d(1), and bacteriochlorophyll all require the action of radical SAM enzymes. During heme biosynthesis in some bacteria, coproporphyrinogen III dehydrogenase (CgdH) catalyzes the decarboxylation of two propionate side chains of coproporphyrinogen III to the corresponding vinyl groups of protoporphyrinogen IX. Its solved crystal structure was the first published structure for a radical SAM enzyme. In bacteria, heme is inserted into enzymes by the cytoplasmic heme chaperone HemW, a radical SAM enzyme structurally highly related to CgdH. In an alternative heme biosynthesis route found in archaea and sulfate-reducing bacteria, the two radical SAM enzymes AhbC and AhbD catalyze the removal of two acetate groups (AhbC) or the decarboxylation of two propionate side chains (AhbD). NirJ, a close homologue of AhbC, is required for propionate side chain removal during the formation of heme d(1) in some denitrifying bacteria. Biosynthesis of the fifth ring (ring E) of all chlorophylls is based on an unusual six-electron oxidative cyclization step. The sophisticated conversion of Mg-protoporphyrin IX monomethylester to protochlorophyllide is facilitated by an oxygen-independent cyclase termed BchE, which is a cobalamin-dependent radical SAM enzyme. Most of the radical SAM enzymes involved in tetrapyrrole biosynthesis were recognized as such by Sofia et al. in 2001 (Nucleic Acids Res.2001, 29, 1097−110611222759) and were biochemically characterized thereafter. Although much has been achieved, the challenging tetrapyrrole substrates represent a limiting factor for enzyme/substrate cocrystallization and the ultimate elucidation of the corresponding enzyme mechanisms. American Chemical Society 2022-02-16 /pmc/articles/PMC10114771/ /pubmed/37101575 http://dx.doi.org/10.1021/acsbiomedchemau.1c00061 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Layer, Gunhild
Jahn, Martina
Moser, Jürgen
Jahn, Dieter
Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion
title Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion
title_full Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion
title_fullStr Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion
title_full_unstemmed Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion
title_short Radical SAM Enzymes Involved in Tetrapyrrole Biosynthesis and Insertion
title_sort radical sam enzymes involved in tetrapyrrole biosynthesis and insertion
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10114771/
https://www.ncbi.nlm.nih.gov/pubmed/37101575
http://dx.doi.org/10.1021/acsbiomedchemau.1c00061
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