Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesis

Abstract Background Oil palm is the most productive oil crop and the efficiency of pollination has a direct impact on the yield of oil. Pollination by wind can occur but maximal pollination is mediated by the weevil E. kamerunicus. These weevils complete their life cycle by feeding on male flowers....

Full description

Bibliographic Details
Main Authors: Ran Li, Vaishnavi Amarr Reddy, Jingjing Jin, Chakaravarthy Rajan, Qian Wang, Genhua Yue, Chin Huat Lim, Nam-Hai Chua, Jian Ye, Rajani Sarojam
Format: Article
Language:English
Published: BMC 2017-11-01
Series:BMC Plant Biology
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12870-017-1174-4
id doaj-38f02ef141c8406986a971444d927d07
record_format Article
spelling doaj-38f02ef141c8406986a971444d927d072020-11-25T00:53:00ZengBMCBMC Plant Biology1471-22292017-11-0117111710.1186/s12870-017-1174-4Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesisRan Li0Vaishnavi Amarr Reddy1Jingjing Jin2Chakaravarthy Rajan3Qian Wang4Genhua Yue5Chin Huat Lim6Nam-Hai Chua7Jian Ye8Rajani Sarojam9Temasek Life Sciences Laboratory, National University of SingaporeTemasek Life Sciences Laboratory, National University of SingaporeTemasek Life Sciences Laboratory, National University of SingaporeTemasek Life Sciences Laboratory, National University of SingaporeTemasek Life Sciences Laboratory, National University of SingaporeTemasek Life Sciences Laboratory, National University of SingaporeR&D Department, Wilmar International PlantationLaboratory of Plant Molecular Biology, Rockefeller UniversityTemasek Life Sciences Laboratory, National University of SingaporeTemasek Life Sciences Laboratory, National University of SingaporeAbstract Background Oil palm is the most productive oil crop and the efficiency of pollination has a direct impact on the yield of oil. Pollination by wind can occur but maximal pollination is mediated by the weevil E. kamerunicus. These weevils complete their life cycle by feeding on male flowers. Attraction of weevils to oil palm flowers is due to the emission of methylchavicol by both male and female flowers. In search for male flowers, the weevils visit female flowers by accident due to methylchavicol fragrance and deposit pollen. Given the importance of methylchavicol emission on pollination, we performed comparative transcriptome analysis of oil palm flowers and leaves to identify candidate genes involved in methylchavicol production in flowers. Results RNA sequencing (RNA-Seq) of male open flowers, female open flowers and leaves was performed using Illumina HiSeq 2000 platform. Analysis of the transcriptome data revealed that the transcripts of methylchavicol biosynthesis genes were strongly up-regulated whereas transcripts encoding genes involved in lignin production such as, caffeic acid O-methyltransferase (COMT) and Ferulate-5-hydroxylase (F5H) were found to be suppressed in oil palm flowers. Among the transcripts encoding transcription factors, an EAR-motif-containing R2R3-MYB transcription factor (EgMYB4) was found to be enriched in oil palm flowers. We determined that EgMYB4 can suppress the expression of a monolignol pathway gene, EgCOMT, in vivo by binding to the AC elements present in the promoter region. EgMYB4 was further functionally characterized in sweet basil which also produces phenylpropenes like oil palm. Transgenic sweet basil plants showed significant reduction in lignin content but produced more phenylpropenes. Conclusions Our results suggest that EgMYB4 possibly restrains lignin biosynthesis in oil palm flowers thus allowing enhanced carbon flux into the phenylpropene pathway. This study augments our understanding of the diverse roles that EAR-motif-containing MYBs play to fine tune the metabolic flux along the various branches of core phenylpropanoid pathway. This will aid in metabolic engineering of plant aromatic compounds.http://link.springer.com/article/10.1186/s12870-017-1174-4MYB transcription factorPhenylpropeneLigninOil palmBasilPhenylpropanoid pathway
collection DOAJ
language English
format Article
sources DOAJ
author Ran Li
Vaishnavi Amarr Reddy
Jingjing Jin
Chakaravarthy Rajan
Qian Wang
Genhua Yue
Chin Huat Lim
Nam-Hai Chua
Jian Ye
Rajani Sarojam
spellingShingle Ran Li
Vaishnavi Amarr Reddy
Jingjing Jin
Chakaravarthy Rajan
Qian Wang
Genhua Yue
Chin Huat Lim
Nam-Hai Chua
Jian Ye
Rajani Sarojam
Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesis
BMC Plant Biology
MYB transcription factor
Phenylpropene
Lignin
Oil palm
Basil
Phenylpropanoid pathway
author_facet Ran Li
Vaishnavi Amarr Reddy
Jingjing Jin
Chakaravarthy Rajan
Qian Wang
Genhua Yue
Chin Huat Lim
Nam-Hai Chua
Jian Ye
Rajani Sarojam
author_sort Ran Li
title Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesis
title_short Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesis
title_full Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesis
title_fullStr Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesis
title_full_unstemmed Comparative transcriptome analysis of oil palm flowers reveals an EAR-motif-containing R2R3-MYB that modulates phenylpropene biosynthesis
title_sort comparative transcriptome analysis of oil palm flowers reveals an ear-motif-containing r2r3-myb that modulates phenylpropene biosynthesis
publisher BMC
series BMC Plant Biology
issn 1471-2229
publishDate 2017-11-01
description Abstract Background Oil palm is the most productive oil crop and the efficiency of pollination has a direct impact on the yield of oil. Pollination by wind can occur but maximal pollination is mediated by the weevil E. kamerunicus. These weevils complete their life cycle by feeding on male flowers. Attraction of weevils to oil palm flowers is due to the emission of methylchavicol by both male and female flowers. In search for male flowers, the weevils visit female flowers by accident due to methylchavicol fragrance and deposit pollen. Given the importance of methylchavicol emission on pollination, we performed comparative transcriptome analysis of oil palm flowers and leaves to identify candidate genes involved in methylchavicol production in flowers. Results RNA sequencing (RNA-Seq) of male open flowers, female open flowers and leaves was performed using Illumina HiSeq 2000 platform. Analysis of the transcriptome data revealed that the transcripts of methylchavicol biosynthesis genes were strongly up-regulated whereas transcripts encoding genes involved in lignin production such as, caffeic acid O-methyltransferase (COMT) and Ferulate-5-hydroxylase (F5H) were found to be suppressed in oil palm flowers. Among the transcripts encoding transcription factors, an EAR-motif-containing R2R3-MYB transcription factor (EgMYB4) was found to be enriched in oil palm flowers. We determined that EgMYB4 can suppress the expression of a monolignol pathway gene, EgCOMT, in vivo by binding to the AC elements present in the promoter region. EgMYB4 was further functionally characterized in sweet basil which also produces phenylpropenes like oil palm. Transgenic sweet basil plants showed significant reduction in lignin content but produced more phenylpropenes. Conclusions Our results suggest that EgMYB4 possibly restrains lignin biosynthesis in oil palm flowers thus allowing enhanced carbon flux into the phenylpropene pathway. This study augments our understanding of the diverse roles that EAR-motif-containing MYBs play to fine tune the metabolic flux along the various branches of core phenylpropanoid pathway. This will aid in metabolic engineering of plant aromatic compounds.
topic MYB transcription factor
Phenylpropene
Lignin
Oil palm
Basil
Phenylpropanoid pathway
url http://link.springer.com/article/10.1186/s12870-017-1174-4
work_keys_str_mv AT ranli comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT vaishnaviamarrreddy comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT jingjingjin comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT chakaravarthyrajan comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT qianwang comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT genhuayue comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT chinhuatlim comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT namhaichua comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT jianye comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
AT rajanisarojam comparativetranscriptomeanalysisofoilpalmflowersrevealsanearmotifcontainingr2r3mybthatmodulatesphenylpropenebiosynthesis
_version_ 1725239641278251008