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Synthesis of 12β-Methyl-18-nor-bile Acids

[Image: see text] Decoupling the roles of the farnesoid X nuclear receptor and Takeda G-protein-coupled bile acid receptor 5 is essential for the development of novel bile acid therapeutics targeting metabolic and neurodegenerative diseases. Herein, we describe the synthesis of 12β-methyl-18-nor-bil...

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Autores principales: Luxenburger, Andreas, Harris, Lawrence D., Ure, Elizabeth M., Landaeta Aponte, Roselis A., Woolhouse, Anthony D., Cameron, Scott A., Ling, Chris D., Piltz, Ross O., Lewis, Andrew R., Gainsford, Graeme J., Weymouth-Wilson, Alex, Furneaux, Richard H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8482778/
https://www.ncbi.nlm.nih.gov/pubmed/34604682
http://dx.doi.org/10.1021/acsomega.1c04199
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author Luxenburger, Andreas
Harris, Lawrence D.
Ure, Elizabeth M.
Landaeta Aponte, Roselis A.
Woolhouse, Anthony D.
Cameron, Scott A.
Ling, Chris D.
Piltz, Ross O.
Lewis, Andrew R.
Gainsford, Graeme J.
Weymouth-Wilson, Alex
Furneaux, Richard H.
author_facet Luxenburger, Andreas
Harris, Lawrence D.
Ure, Elizabeth M.
Landaeta Aponte, Roselis A.
Woolhouse, Anthony D.
Cameron, Scott A.
Ling, Chris D.
Piltz, Ross O.
Lewis, Andrew R.
Gainsford, Graeme J.
Weymouth-Wilson, Alex
Furneaux, Richard H.
author_sort Luxenburger, Andreas
collection PubMed
description [Image: see text] Decoupling the roles of the farnesoid X nuclear receptor and Takeda G-protein-coupled bile acid receptor 5 is essential for the development of novel bile acid therapeutics targeting metabolic and neurodegenerative diseases. Herein, we describe the synthesis of 12β-methyl-18-nor-bile acids which may serve as probes in the search for new bile acid analogues with clinical applicability. A Nametkin-type rearrangement was applied to protected cholic acid derivatives, giving rise to tetra-substituted Δ(13,14)- and Δ(13,17)-unsaturated 12β-methyl-18-nor-bile acid intermediates (24a and 25a). Subsequent catalytic hydrogenation and deprotection yielded 12β-methyl-18-nor-chenodeoxycholic acid (27a) and its 17-epi-epimer (28a) as the two major reaction products. Optimization of the synthetic sequence enabled a chromatography-free route to prepare these bile acids at a multi-gram scale. In addition, the first cis-C-D ring-junctured bile acid and a new 14(13 → 12)-abeo-bile acid are described. Furthermore, deuteration experiments were performed to provide mechanistic insights into the formation of the formal anti-hydrogenation product 12β-methyl-18-nor-chenodeoxycholic acid (27a).
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spelling pubmed-84827782021-10-01 Synthesis of 12β-Methyl-18-nor-bile Acids Luxenburger, Andreas Harris, Lawrence D. Ure, Elizabeth M. Landaeta Aponte, Roselis A. Woolhouse, Anthony D. Cameron, Scott A. Ling, Chris D. Piltz, Ross O. Lewis, Andrew R. Gainsford, Graeme J. Weymouth-Wilson, Alex Furneaux, Richard H. ACS Omega [Image: see text] Decoupling the roles of the farnesoid X nuclear receptor and Takeda G-protein-coupled bile acid receptor 5 is essential for the development of novel bile acid therapeutics targeting metabolic and neurodegenerative diseases. Herein, we describe the synthesis of 12β-methyl-18-nor-bile acids which may serve as probes in the search for new bile acid analogues with clinical applicability. A Nametkin-type rearrangement was applied to protected cholic acid derivatives, giving rise to tetra-substituted Δ(13,14)- and Δ(13,17)-unsaturated 12β-methyl-18-nor-bile acid intermediates (24a and 25a). Subsequent catalytic hydrogenation and deprotection yielded 12β-methyl-18-nor-chenodeoxycholic acid (27a) and its 17-epi-epimer (28a) as the two major reaction products. Optimization of the synthetic sequence enabled a chromatography-free route to prepare these bile acids at a multi-gram scale. In addition, the first cis-C-D ring-junctured bile acid and a new 14(13 → 12)-abeo-bile acid are described. Furthermore, deuteration experiments were performed to provide mechanistic insights into the formation of the formal anti-hydrogenation product 12β-methyl-18-nor-chenodeoxycholic acid (27a). American Chemical Society 2021-09-14 /pmc/articles/PMC8482778/ /pubmed/34604682 http://dx.doi.org/10.1021/acsomega.1c04199 Text en © 2021 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 Luxenburger, Andreas
Harris, Lawrence D.
Ure, Elizabeth M.
Landaeta Aponte, Roselis A.
Woolhouse, Anthony D.
Cameron, Scott A.
Ling, Chris D.
Piltz, Ross O.
Lewis, Andrew R.
Gainsford, Graeme J.
Weymouth-Wilson, Alex
Furneaux, Richard H.
Synthesis of 12β-Methyl-18-nor-bile Acids
title Synthesis of 12β-Methyl-18-nor-bile Acids
title_full Synthesis of 12β-Methyl-18-nor-bile Acids
title_fullStr Synthesis of 12β-Methyl-18-nor-bile Acids
title_full_unstemmed Synthesis of 12β-Methyl-18-nor-bile Acids
title_short Synthesis of 12β-Methyl-18-nor-bile Acids
title_sort synthesis of 12β-methyl-18-nor-bile acids
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8482778/
https://www.ncbi.nlm.nih.gov/pubmed/34604682
http://dx.doi.org/10.1021/acsomega.1c04199
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