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Development of the VIGS System in the Dioecious Plant Silene latifolia

(1) Background: Silene latifolia is a dioecious plant, whose sex is determined by XY-type sex chromosomes. Microbotryum lychnidis-dioicae is a smut fungus that infects S. latifolia plants and causes masculinization in female flowers, as if Microbotryum were acting as a sex-determining gene. Recent l...

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Autores principales: Fujita, Naoko, Kazama, Yusuke, Yamagishi, Noriko, Watanabe, Kyoko, Ando, Saki, Tsuji, Hiroyuki, Kawano, Shigeyuki, Yoshikawa, Nobuyuki, Komatsu, Ken
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6429067/
https://www.ncbi.nlm.nih.gov/pubmed/30818769
http://dx.doi.org/10.3390/ijms20051031
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author Fujita, Naoko
Kazama, Yusuke
Yamagishi, Noriko
Watanabe, Kyoko
Ando, Saki
Tsuji, Hiroyuki
Kawano, Shigeyuki
Yoshikawa, Nobuyuki
Komatsu, Ken
author_facet Fujita, Naoko
Kazama, Yusuke
Yamagishi, Noriko
Watanabe, Kyoko
Ando, Saki
Tsuji, Hiroyuki
Kawano, Shigeyuki
Yoshikawa, Nobuyuki
Komatsu, Ken
author_sort Fujita, Naoko
collection PubMed
description (1) Background: Silene latifolia is a dioecious plant, whose sex is determined by XY-type sex chromosomes. Microbotryum lychnidis-dioicae is a smut fungus that infects S. latifolia plants and causes masculinization in female flowers, as if Microbotryum were acting as a sex-determining gene. Recent large-scale sequencing efforts have promised to provide candidate genes that are involved in the sex determination machinery in plants. These candidate genes are to be analyzed for functional characterization. A virus vector can be a tool for functional gene analyses; (2) Methods: To develop a viral vector system in S. latifolia plants, we selected Apple latent spherical virus (ALSV) as an appropriate virus vector that has a wide host range; (3) Results: Following the optimization of the ALSV inoculation method, S. latifolia plants were infected with ALSV at high rates in the upper leaves. In situ hybridization analysis revealed that ALSV can migrate into the flower meristems in S. latifolia plants. Successful VIGS (virus-induced gene silencing) in S. latifolia plants was demonstrated with knockdown of the phytoene desaturase gene. Finally, the developed method was applied to floral organ genes to evaluate its usability in flowers; (4) Conclusion: The developed system enables functional gene analyses in S. latifolia plants, which can unveil gene functions and networks of S. latifolia plants, such as the mechanisms of sex determination and fungal-induced masculinization.
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spelling pubmed-64290672019-04-10 Development of the VIGS System in the Dioecious Plant Silene latifolia Fujita, Naoko Kazama, Yusuke Yamagishi, Noriko Watanabe, Kyoko Ando, Saki Tsuji, Hiroyuki Kawano, Shigeyuki Yoshikawa, Nobuyuki Komatsu, Ken Int J Mol Sci Article (1) Background: Silene latifolia is a dioecious plant, whose sex is determined by XY-type sex chromosomes. Microbotryum lychnidis-dioicae is a smut fungus that infects S. latifolia plants and causes masculinization in female flowers, as if Microbotryum were acting as a sex-determining gene. Recent large-scale sequencing efforts have promised to provide candidate genes that are involved in the sex determination machinery in plants. These candidate genes are to be analyzed for functional characterization. A virus vector can be a tool for functional gene analyses; (2) Methods: To develop a viral vector system in S. latifolia plants, we selected Apple latent spherical virus (ALSV) as an appropriate virus vector that has a wide host range; (3) Results: Following the optimization of the ALSV inoculation method, S. latifolia plants were infected with ALSV at high rates in the upper leaves. In situ hybridization analysis revealed that ALSV can migrate into the flower meristems in S. latifolia plants. Successful VIGS (virus-induced gene silencing) in S. latifolia plants was demonstrated with knockdown of the phytoene desaturase gene. Finally, the developed method was applied to floral organ genes to evaluate its usability in flowers; (4) Conclusion: The developed system enables functional gene analyses in S. latifolia plants, which can unveil gene functions and networks of S. latifolia plants, such as the mechanisms of sex determination and fungal-induced masculinization. MDPI 2019-02-27 /pmc/articles/PMC6429067/ /pubmed/30818769 http://dx.doi.org/10.3390/ijms20051031 Text en © 2019 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 (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fujita, Naoko
Kazama, Yusuke
Yamagishi, Noriko
Watanabe, Kyoko
Ando, Saki
Tsuji, Hiroyuki
Kawano, Shigeyuki
Yoshikawa, Nobuyuki
Komatsu, Ken
Development of the VIGS System in the Dioecious Plant Silene latifolia
title Development of the VIGS System in the Dioecious Plant Silene latifolia
title_full Development of the VIGS System in the Dioecious Plant Silene latifolia
title_fullStr Development of the VIGS System in the Dioecious Plant Silene latifolia
title_full_unstemmed Development of the VIGS System in the Dioecious Plant Silene latifolia
title_short Development of the VIGS System in the Dioecious Plant Silene latifolia
title_sort development of the vigs system in the dioecious plant silene latifolia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6429067/
https://www.ncbi.nlm.nih.gov/pubmed/30818769
http://dx.doi.org/10.3390/ijms20051031
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