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Genetics, Genomics and Evolution of Ergot Alkaloid Diversity

The ergot alkaloid biosynthesis system has become an excellent model to study evolutionary diversification of specialized (secondary) metabolites. This is a very diverse class of alkaloids with various neurotropic activities, produced by fungi in several orders of the phylum Ascomycota, including pl...

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Autores principales: Young, Carolyn A., Schardl, Christopher L., Panaccione, Daniel G., Florea, Simona, Takach, Johanna E., Charlton, Nikki D., Moore, Neil, Webb, Jennifer S., Jaromczyk, Jolanta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4417967/
https://www.ncbi.nlm.nih.gov/pubmed/25875294
http://dx.doi.org/10.3390/toxins7041273
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author Young, Carolyn A.
Schardl, Christopher L.
Panaccione, Daniel G.
Florea, Simona
Takach, Johanna E.
Charlton, Nikki D.
Moore, Neil
Webb, Jennifer S.
Jaromczyk, Jolanta
author_facet Young, Carolyn A.
Schardl, Christopher L.
Panaccione, Daniel G.
Florea, Simona
Takach, Johanna E.
Charlton, Nikki D.
Moore, Neil
Webb, Jennifer S.
Jaromczyk, Jolanta
author_sort Young, Carolyn A.
collection PubMed
description The ergot alkaloid biosynthesis system has become an excellent model to study evolutionary diversification of specialized (secondary) metabolites. This is a very diverse class of alkaloids with various neurotropic activities, produced by fungi in several orders of the phylum Ascomycota, including plant pathogens and protective plant symbionts in the family Clavicipitaceae. Results of comparative genomics and phylogenomic analyses reveal multiple examples of three evolutionary processes that have generated ergot-alkaloid diversity: gene gains, gene losses, and gene sequence changes that have led to altered substrates or product specificities of the enzymes that they encode (neofunctionalization). The chromosome ends appear to be particularly effective engines for gene gains, losses and rearrangements, but not necessarily for neofunctionalization. Changes in gene expression could lead to accumulation of various pathway intermediates and affect levels of different ergot alkaloids. Genetic alterations associated with interspecific hybrids of Epichloë species suggest that such variation is also selectively favored. The huge structural diversity of ergot alkaloids probably represents adaptations to a wide variety of ecological situations by affecting the biological spectra and mechanisms of defense against herbivores, as evidenced by the diverse pharmacological effects of ergot alkaloids used in medicine.
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spelling pubmed-44179672015-05-18 Genetics, Genomics and Evolution of Ergot Alkaloid Diversity Young, Carolyn A. Schardl, Christopher L. Panaccione, Daniel G. Florea, Simona Takach, Johanna E. Charlton, Nikki D. Moore, Neil Webb, Jennifer S. Jaromczyk, Jolanta Toxins (Basel) Review The ergot alkaloid biosynthesis system has become an excellent model to study evolutionary diversification of specialized (secondary) metabolites. This is a very diverse class of alkaloids with various neurotropic activities, produced by fungi in several orders of the phylum Ascomycota, including plant pathogens and protective plant symbionts in the family Clavicipitaceae. Results of comparative genomics and phylogenomic analyses reveal multiple examples of three evolutionary processes that have generated ergot-alkaloid diversity: gene gains, gene losses, and gene sequence changes that have led to altered substrates or product specificities of the enzymes that they encode (neofunctionalization). The chromosome ends appear to be particularly effective engines for gene gains, losses and rearrangements, but not necessarily for neofunctionalization. Changes in gene expression could lead to accumulation of various pathway intermediates and affect levels of different ergot alkaloids. Genetic alterations associated with interspecific hybrids of Epichloë species suggest that such variation is also selectively favored. The huge structural diversity of ergot alkaloids probably represents adaptations to a wide variety of ecological situations by affecting the biological spectra and mechanisms of defense against herbivores, as evidenced by the diverse pharmacological effects of ergot alkaloids used in medicine. MDPI 2015-04-14 /pmc/articles/PMC4417967/ /pubmed/25875294 http://dx.doi.org/10.3390/toxins7041273 Text en © 2015 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Young, Carolyn A.
Schardl, Christopher L.
Panaccione, Daniel G.
Florea, Simona
Takach, Johanna E.
Charlton, Nikki D.
Moore, Neil
Webb, Jennifer S.
Jaromczyk, Jolanta
Genetics, Genomics and Evolution of Ergot Alkaloid Diversity
title Genetics, Genomics and Evolution of Ergot Alkaloid Diversity
title_full Genetics, Genomics and Evolution of Ergot Alkaloid Diversity
title_fullStr Genetics, Genomics and Evolution of Ergot Alkaloid Diversity
title_full_unstemmed Genetics, Genomics and Evolution of Ergot Alkaloid Diversity
title_short Genetics, Genomics and Evolution of Ergot Alkaloid Diversity
title_sort genetics, genomics and evolution of ergot alkaloid diversity
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4417967/
https://www.ncbi.nlm.nih.gov/pubmed/25875294
http://dx.doi.org/10.3390/toxins7041273
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