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How do cryptochromes and UVR8 interact in natural and simulated sunlight?

Cryptochromes (CRYs) and UV RESISTANCE LOCUS 8 (UVR8) photoreceptors perceive UV-A/blue (315–500 nm) and UV-B (280–315 nm) radiation in plants, respectively. While the roles of CRYs and UVR8 have been studied in separate controlled-environment experiments, little is known about the interaction betwe...

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Autores principales: Rai, Neha, Neugart, Susanne, Yan, Yan, Wang, Fang, Siipola, Sari M, Lindfors, Anders V, Winkler, Jana Barbro, Albert, Andreas, Brosché, Mikael, Lehto, Tarja, Morales, Luis O, Aphalo, Pedro J
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6760287/
https://www.ncbi.nlm.nih.gov/pubmed/31100755
http://dx.doi.org/10.1093/jxb/erz236
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author Rai, Neha
Neugart, Susanne
Yan, Yan
Wang, Fang
Siipola, Sari M
Lindfors, Anders V
Winkler, Jana Barbro
Albert, Andreas
Brosché, Mikael
Lehto, Tarja
Morales, Luis O
Aphalo, Pedro J
author_facet Rai, Neha
Neugart, Susanne
Yan, Yan
Wang, Fang
Siipola, Sari M
Lindfors, Anders V
Winkler, Jana Barbro
Albert, Andreas
Brosché, Mikael
Lehto, Tarja
Morales, Luis O
Aphalo, Pedro J
author_sort Rai, Neha
collection PubMed
description Cryptochromes (CRYs) and UV RESISTANCE LOCUS 8 (UVR8) photoreceptors perceive UV-A/blue (315–500 nm) and UV-B (280–315 nm) radiation in plants, respectively. While the roles of CRYs and UVR8 have been studied in separate controlled-environment experiments, little is known about the interaction between these photoreceptors. Here, Arabidopsis wild-type Ler, CRYs and UVR8 photoreceptor mutants (uvr8-2, cry1cry2 and cry1cry2uvr8-2), and a flavonoid biosynthesis-defective mutant (tt4) were grown in a sun simulator. Plants were exposed to filtered radiation for 17 d or for 6 h, to study the effects of blue, UV-A, and UV-B radiation. Both CRYs and UVR8 independently enabled growth and survival of plants under solar levels of UV, while their joint absence was lethal under UV-B. CRYs mediated gene expression under blue light. UVR8 mediated gene expression under UV-B radiation, and in the absence of CRYs, also under UV-A. This negative regulation of UVR8-mediated gene expression by CRYs was also observed for UV-B. The accumulation of flavonoids was also consistent with this interaction between CRYs and UVR8. In conclusion, we provide evidence for an antagonistic interaction between CRYs and UVR8 and a role of UVR8 in UV-A perception.
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spelling pubmed-67602872019-10-02 How do cryptochromes and UVR8 interact in natural and simulated sunlight? Rai, Neha Neugart, Susanne Yan, Yan Wang, Fang Siipola, Sari M Lindfors, Anders V Winkler, Jana Barbro Albert, Andreas Brosché, Mikael Lehto, Tarja Morales, Luis O Aphalo, Pedro J J Exp Bot Research Papers Cryptochromes (CRYs) and UV RESISTANCE LOCUS 8 (UVR8) photoreceptors perceive UV-A/blue (315–500 nm) and UV-B (280–315 nm) radiation in plants, respectively. While the roles of CRYs and UVR8 have been studied in separate controlled-environment experiments, little is known about the interaction between these photoreceptors. Here, Arabidopsis wild-type Ler, CRYs and UVR8 photoreceptor mutants (uvr8-2, cry1cry2 and cry1cry2uvr8-2), and a flavonoid biosynthesis-defective mutant (tt4) were grown in a sun simulator. Plants were exposed to filtered radiation for 17 d or for 6 h, to study the effects of blue, UV-A, and UV-B radiation. Both CRYs and UVR8 independently enabled growth and survival of plants under solar levels of UV, while their joint absence was lethal under UV-B. CRYs mediated gene expression under blue light. UVR8 mediated gene expression under UV-B radiation, and in the absence of CRYs, also under UV-A. This negative regulation of UVR8-mediated gene expression by CRYs was also observed for UV-B. The accumulation of flavonoids was also consistent with this interaction between CRYs and UVR8. In conclusion, we provide evidence for an antagonistic interaction between CRYs and UVR8 and a role of UVR8 in UV-A perception. Oxford University Press 2019-09-15 2019-05-17 /pmc/articles/PMC6760287/ /pubmed/31100755 http://dx.doi.org/10.1093/jxb/erz236 Text en © The Author(s) 2019. Published by Oxford University Press on behalf of the Society for Experimental Biology. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Research Papers
Rai, Neha
Neugart, Susanne
Yan, Yan
Wang, Fang
Siipola, Sari M
Lindfors, Anders V
Winkler, Jana Barbro
Albert, Andreas
Brosché, Mikael
Lehto, Tarja
Morales, Luis O
Aphalo, Pedro J
How do cryptochromes and UVR8 interact in natural and simulated sunlight?
title How do cryptochromes and UVR8 interact in natural and simulated sunlight?
title_full How do cryptochromes and UVR8 interact in natural and simulated sunlight?
title_fullStr How do cryptochromes and UVR8 interact in natural and simulated sunlight?
title_full_unstemmed How do cryptochromes and UVR8 interact in natural and simulated sunlight?
title_short How do cryptochromes and UVR8 interact in natural and simulated sunlight?
title_sort how do cryptochromes and uvr8 interact in natural and simulated sunlight?
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6760287/
https://www.ncbi.nlm.nih.gov/pubmed/31100755
http://dx.doi.org/10.1093/jxb/erz236
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