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Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L.

Branching is a predominant element in the plant architecture of Brassica napus L. and represents an important determinant of seed yield. OsPAT15 (OsDHHC1), a novel DHHC-type zinc finger protein gene, was reported to regulate rice plant architecture by altering the tillering. However, whether heterol...

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Autores principales: Peng, Dan, Tan, Xiaofeng, Zhang, Lin, Yuan, Deyi, Lin, Jianzhong, Liu, Xuanming, Jiang, Yueqiao, Zhou, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Japanese Society of Breeding 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6081303/
https://www.ncbi.nlm.nih.gov/pubmed/30100799
http://dx.doi.org/10.1270/jsbbs.17126
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author Peng, Dan
Tan, Xiaofeng
Zhang, Lin
Yuan, Deyi
Lin, Jianzhong
Liu, Xuanming
Jiang, Yueqiao
Zhou, Bo
author_facet Peng, Dan
Tan, Xiaofeng
Zhang, Lin
Yuan, Deyi
Lin, Jianzhong
Liu, Xuanming
Jiang, Yueqiao
Zhou, Bo
author_sort Peng, Dan
collection PubMed
description Branching is a predominant element in the plant architecture of Brassica napus L. and represents an important determinant of seed yield. OsPAT15 (OsDHHC1), a novel DHHC-type zinc finger protein gene, was reported to regulate rice plant architecture by altering the tillering. However, whether heterologous overexpression of the OsPAT15 gene from the monocot rice into the dicot B. napus L. would have the same effect on branching or seed yield is unknown. In this study, the DHHC-type zinc finger protein gene OsPAT15 was determined to have sulfur acyl transferase activity in the akr1Δ yeast mutant in a complementation experiment. Heterologously expressing OsPAT15 transgenic B. napus L. plants were obtained using the Agrobacterium-mediated floral-dip transformation method. As anticipated, OsPAT15 transgenic plants exhibited branching and seed yield. Compared with non-transgenic plants, OsPAT15 transgenic plants had increased primary branches (1.58–1.76-fold) and siliques (1.86–1.89-fold), resulting in a significant increase in seed yield (around 2.39–2.51-fold). Therefore, overexpression of the sulfur acyl transferase gene OsPAT15 in B. napus L. could be used to increase seed yield and produce excellent varieties.
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spelling pubmed-60813032018-08-10 Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L. Peng, Dan Tan, Xiaofeng Zhang, Lin Yuan, Deyi Lin, Jianzhong Liu, Xuanming Jiang, Yueqiao Zhou, Bo Breed Sci Research Paper Branching is a predominant element in the plant architecture of Brassica napus L. and represents an important determinant of seed yield. OsPAT15 (OsDHHC1), a novel DHHC-type zinc finger protein gene, was reported to regulate rice plant architecture by altering the tillering. However, whether heterologous overexpression of the OsPAT15 gene from the monocot rice into the dicot B. napus L. would have the same effect on branching or seed yield is unknown. In this study, the DHHC-type zinc finger protein gene OsPAT15 was determined to have sulfur acyl transferase activity in the akr1Δ yeast mutant in a complementation experiment. Heterologously expressing OsPAT15 transgenic B. napus L. plants were obtained using the Agrobacterium-mediated floral-dip transformation method. As anticipated, OsPAT15 transgenic plants exhibited branching and seed yield. Compared with non-transgenic plants, OsPAT15 transgenic plants had increased primary branches (1.58–1.76-fold) and siliques (1.86–1.89-fold), resulting in a significant increase in seed yield (around 2.39–2.51-fold). Therefore, overexpression of the sulfur acyl transferase gene OsPAT15 in B. napus L. could be used to increase seed yield and produce excellent varieties. Japanese Society of Breeding 2018-06 2018-07-05 /pmc/articles/PMC6081303/ /pubmed/30100799 http://dx.doi.org/10.1270/jsbbs.17126 Text en Copyright © 2018 by JAPANESE SOCIETY OF BREEDING http://creativecommons.org/licenses/by-nc-nd/3.0 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 work is properly cited.
spellingShingle Research Paper
Peng, Dan
Tan, Xiaofeng
Zhang, Lin
Yuan, Deyi
Lin, Jianzhong
Liu, Xuanming
Jiang, Yueqiao
Zhou, Bo
Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L.
title Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L.
title_full Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L.
title_fullStr Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L.
title_full_unstemmed Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L.
title_short Increasing branch and seed yield through heterologous expression of the novel rice S-acyl transferase gene OsPAT15 in Brassica napus L.
title_sort increasing branch and seed yield through heterologous expression of the novel rice s-acyl transferase gene ospat15 in brassica napus l.
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6081303/
https://www.ncbi.nlm.nih.gov/pubmed/30100799
http://dx.doi.org/10.1270/jsbbs.17126
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