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Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination

Phelipanche aegyptiaca is one of the most destructive root parasitic plants of Orobanchaceae. This plant has significant impacts on crop yields worldwide. Conditioned and host root stimulants, in particular, strigolactones, are needed for unique seed germination. However, no extensive study on this...

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Autores principales: Yao, Zhaoqun, Tian, Fang, Cao, Xiaolei, Xu, Ying, Chen, Meixiu, Xiang, Benchun, Zhao, Sifeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4964512/
https://www.ncbi.nlm.nih.gov/pubmed/27428962
http://dx.doi.org/10.3390/ijms17071139
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author Yao, Zhaoqun
Tian, Fang
Cao, Xiaolei
Xu, Ying
Chen, Meixiu
Xiang, Benchun
Zhao, Sifeng
author_facet Yao, Zhaoqun
Tian, Fang
Cao, Xiaolei
Xu, Ying
Chen, Meixiu
Xiang, Benchun
Zhao, Sifeng
author_sort Yao, Zhaoqun
collection PubMed
description Phelipanche aegyptiaca is one of the most destructive root parasitic plants of Orobanchaceae. This plant has significant impacts on crop yields worldwide. Conditioned and host root stimulants, in particular, strigolactones, are needed for unique seed germination. However, no extensive study on this phenomenon has been conducted because of insufficient genomic information. Deep RNA sequencing, including de novo assembly and functional annotation was performed on P. aegyptiaca germinating seeds. The assembled transcriptome was used to analyze transcriptional dynamics during seed germination. Key gene categories involved were identified. A total of 274,964 transcripts were determined, and 53,921 unigenes were annotated according to the NR, GO, COG, KOG, and KEGG databases. Overall, 5324 differentially expressed genes among dormant, conditioned, and GR24-treated seeds were identified. GO and KEGG enrichment analyses demonstrated numerous DEGs related to DNA, RNA, and protein repair and biosynthesis, as well as carbohydrate and energy metabolism. Moreover, ABA and ethylene were found to play important roles in this process. GR24 application resulted in dramatic changes in ABA and ethylene-associated genes. Fluridone, a carotenoid biosynthesis inhibitor, alone could induce P. aegyptiaca seed germination. In addition, conditioning was probably not the indispensable stage for P. aegyptiaca, because the transcript level variation of MAX2 and KAI2 genes (relate to strigolactone signaling) was not up-regulated by conditioning treatment.
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spelling pubmed-49645122016-08-03 Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination Yao, Zhaoqun Tian, Fang Cao, Xiaolei Xu, Ying Chen, Meixiu Xiang, Benchun Zhao, Sifeng Int J Mol Sci Article Phelipanche aegyptiaca is one of the most destructive root parasitic plants of Orobanchaceae. This plant has significant impacts on crop yields worldwide. Conditioned and host root stimulants, in particular, strigolactones, are needed for unique seed germination. However, no extensive study on this phenomenon has been conducted because of insufficient genomic information. Deep RNA sequencing, including de novo assembly and functional annotation was performed on P. aegyptiaca germinating seeds. The assembled transcriptome was used to analyze transcriptional dynamics during seed germination. Key gene categories involved were identified. A total of 274,964 transcripts were determined, and 53,921 unigenes were annotated according to the NR, GO, COG, KOG, and KEGG databases. Overall, 5324 differentially expressed genes among dormant, conditioned, and GR24-treated seeds were identified. GO and KEGG enrichment analyses demonstrated numerous DEGs related to DNA, RNA, and protein repair and biosynthesis, as well as carbohydrate and energy metabolism. Moreover, ABA and ethylene were found to play important roles in this process. GR24 application resulted in dramatic changes in ABA and ethylene-associated genes. Fluridone, a carotenoid biosynthesis inhibitor, alone could induce P. aegyptiaca seed germination. In addition, conditioning was probably not the indispensable stage for P. aegyptiaca, because the transcript level variation of MAX2 and KAI2 genes (relate to strigolactone signaling) was not up-regulated by conditioning treatment. MDPI 2016-07-15 /pmc/articles/PMC4964512/ /pubmed/27428962 http://dx.doi.org/10.3390/ijms17071139 Text en © 2016 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
Yao, Zhaoqun
Tian, Fang
Cao, Xiaolei
Xu, Ying
Chen, Meixiu
Xiang, Benchun
Zhao, Sifeng
Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination
title Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination
title_full Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination
title_fullStr Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination
title_full_unstemmed Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination
title_short Global Transcriptomic Analysis Reveals the Mechanism of Phelipanche aegyptiaca Seed Germination
title_sort global transcriptomic analysis reveals the mechanism of phelipanche aegyptiaca seed germination
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4964512/
https://www.ncbi.nlm.nih.gov/pubmed/27428962
http://dx.doi.org/10.3390/ijms17071139
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