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4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC

The formation of 4-deoxyaurones, which serve as UV nectar guides in Bidens ferulifolia (Jacq.) DC., was established by combination of UV photography, mass spectrometry, and biochemical assays and the key step in aurone formation was studied. The yellow flowering ornamental plant accumulates deoxy ty...

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Autores principales: Miosic, Silvija, Knop, Katrin, Hölscher, Dirk, Greiner, Jürgen, Gosch, Christian, Thill, Jana, Kai, Marco, Shrestha, Binita Kumari, Schneider, Bernd, Crecelius, Anna C., Schubert, Ulrich S., Svatoš, Aleš, Stich, Karl, Halbwirth, Heidi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3648546/
https://www.ncbi.nlm.nih.gov/pubmed/23667445
http://dx.doi.org/10.1371/journal.pone.0061766
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author Miosic, Silvija
Knop, Katrin
Hölscher, Dirk
Greiner, Jürgen
Gosch, Christian
Thill, Jana
Kai, Marco
Shrestha, Binita Kumari
Schneider, Bernd
Crecelius, Anna C.
Schubert, Ulrich S.
Svatoš, Aleš
Stich, Karl
Halbwirth, Heidi
author_facet Miosic, Silvija
Knop, Katrin
Hölscher, Dirk
Greiner, Jürgen
Gosch, Christian
Thill, Jana
Kai, Marco
Shrestha, Binita Kumari
Schneider, Bernd
Crecelius, Anna C.
Schubert, Ulrich S.
Svatoš, Aleš
Stich, Karl
Halbwirth, Heidi
author_sort Miosic, Silvija
collection PubMed
description The formation of 4-deoxyaurones, which serve as UV nectar guides in Bidens ferulifolia (Jacq.) DC., was established by combination of UV photography, mass spectrometry, and biochemical assays and the key step in aurone formation was studied. The yellow flowering ornamental plant accumulates deoxy type anthochlor pigments (6′-deoxychalcones and the corresponding 4-deoxyaurones) in the basal part of the flower surface whilst the apex contains only yellow carotenoids. For UV sensitive pollinating insects, this appears as a bicoloured floral pattern which can be visualized in situ by specific ammonia staining of the anthochlor pigments. The petal back side, in contrast, shows a faintly UV absorbing centre and UV absorbing rays along the otherwise UV reflecting petal apex. Matrix-free UV laser desorption/ionisation mass spectrometric imaging (LDI-MSI) indicated the presence of 9 anthochlors in the UV absorbing areas. The prevalent pigments were derivatives of okanin and maritimetin. Enzyme preparations from flowers, leaves, stems and roots of B. ferulifolia and from plants, which do not accumulate aurones e.g. Arabidopsis thaliana, were able to convert chalcones to aurones. Thus, aurone formation could be catalyzed by a widespread enzyme and seems to depend mainly on a specific biochemical background, which favours the formation of aurones at the expense of flavonoids. In contrast to 4-hydroxyaurone formation, hydroxylation and oxidative cyclization to the 4-deoxyaurones does not occur in one single step but is catalyzed by two separate enzymes, chalcone 3-hydroxylase and aurone synthase (catechol oxidase reaction). Aurone formation shows an optimum at pH 7.5 or above, which is another striking contrast to 4-hydroxyaurone formation in Antirrhinum majus L. This is the first example of a plant catechol oxidase type enzyme being involved in the flavonoid pathway and in an anabolic reaction in general.
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spelling pubmed-36485462013-05-10 4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC Miosic, Silvija Knop, Katrin Hölscher, Dirk Greiner, Jürgen Gosch, Christian Thill, Jana Kai, Marco Shrestha, Binita Kumari Schneider, Bernd Crecelius, Anna C. Schubert, Ulrich S. Svatoš, Aleš Stich, Karl Halbwirth, Heidi PLoS One Research Article The formation of 4-deoxyaurones, which serve as UV nectar guides in Bidens ferulifolia (Jacq.) DC., was established by combination of UV photography, mass spectrometry, and biochemical assays and the key step in aurone formation was studied. The yellow flowering ornamental plant accumulates deoxy type anthochlor pigments (6′-deoxychalcones and the corresponding 4-deoxyaurones) in the basal part of the flower surface whilst the apex contains only yellow carotenoids. For UV sensitive pollinating insects, this appears as a bicoloured floral pattern which can be visualized in situ by specific ammonia staining of the anthochlor pigments. The petal back side, in contrast, shows a faintly UV absorbing centre and UV absorbing rays along the otherwise UV reflecting petal apex. Matrix-free UV laser desorption/ionisation mass spectrometric imaging (LDI-MSI) indicated the presence of 9 anthochlors in the UV absorbing areas. The prevalent pigments were derivatives of okanin and maritimetin. Enzyme preparations from flowers, leaves, stems and roots of B. ferulifolia and from plants, which do not accumulate aurones e.g. Arabidopsis thaliana, were able to convert chalcones to aurones. Thus, aurone formation could be catalyzed by a widespread enzyme and seems to depend mainly on a specific biochemical background, which favours the formation of aurones at the expense of flavonoids. In contrast to 4-hydroxyaurone formation, hydroxylation and oxidative cyclization to the 4-deoxyaurones does not occur in one single step but is catalyzed by two separate enzymes, chalcone 3-hydroxylase and aurone synthase (catechol oxidase reaction). Aurone formation shows an optimum at pH 7.5 or above, which is another striking contrast to 4-hydroxyaurone formation in Antirrhinum majus L. This is the first example of a plant catechol oxidase type enzyme being involved in the flavonoid pathway and in an anabolic reaction in general. Public Library of Science 2013-05-08 /pmc/articles/PMC3648546/ /pubmed/23667445 http://dx.doi.org/10.1371/journal.pone.0061766 Text en © 2013 Miosic et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Miosic, Silvija
Knop, Katrin
Hölscher, Dirk
Greiner, Jürgen
Gosch, Christian
Thill, Jana
Kai, Marco
Shrestha, Binita Kumari
Schneider, Bernd
Crecelius, Anna C.
Schubert, Ulrich S.
Svatoš, Aleš
Stich, Karl
Halbwirth, Heidi
4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC
title 4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC
title_full 4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC
title_fullStr 4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC
title_full_unstemmed 4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC
title_short 4-Deoxyaurone Formation in Bidens ferulifolia (Jacq.) DC
title_sort 4-deoxyaurone formation in bidens ferulifolia (jacq.) dc
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3648546/
https://www.ncbi.nlm.nih.gov/pubmed/23667445
http://dx.doi.org/10.1371/journal.pone.0061766
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