Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativa
Plants produce diverse secondary metabolites. Although each metabolite is made through its respective biosynthetic pathway, plants coordinate multiple biosynthetic pathways simultaneously. One example is an interaction between glucosinolate and phenylpropanoid pathways in Arabidopsis thaliana. Gluco...
Main Authors: | , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Frontiers Media S.A.
2020-02-01
|
Series: | Frontiers in Plant Science |
Subjects: | |
Online Access: | https://www.frontiersin.org/article/10.3389/fpls.2020.00017/full |
id |
doaj-b48a48e243484d7a8347926eafd3be88 |
---|---|
record_format |
Article |
spelling |
doaj-b48a48e243484d7a8347926eafd3be882020-11-25T03:34:48ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2020-02-011110.3389/fpls.2020.00017492544Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativaDingpeng Zhang0Yeong Hun Song1Ru Dai2Tong Geon Lee3Tong Geon Lee4Tong Geon Lee5Jeongim Kim6Jeongim Kim7Horticultural Sciences Department, University of Florida, Gainesville, FL, United StatesHorticultural Sciences Department, University of Florida, Gainesville, FL, United StatesHorticultural Sciences Department, University of Florida, Gainesville, FL, United StatesHorticultural Sciences Department, University of Florida, Gainesville, FL, United StatesGulf Coast Research and Education Center, University of Florida, Wimauma, FL, United StatesPlant Molecular and Cellular Biology Graduate Program, University of Florida, Gainesville, FL, United StatesHorticultural Sciences Department, University of Florida, Gainesville, FL, United StatesPlant Molecular and Cellular Biology Graduate Program, University of Florida, Gainesville, FL, United StatesPlants produce diverse secondary metabolites. Although each metabolite is made through its respective biosynthetic pathway, plants coordinate multiple biosynthetic pathways simultaneously. One example is an interaction between glucosinolate and phenylpropanoid pathways in Arabidopsis thaliana. Glucosinolates are defense compounds made primarily from methionine and tryptophan, while phenylpropanoids are made from phenylalanine. Recent studies have shown that the accumulation of glucosinolate intermediate such as indole-3-acetaldoxime (IAOx) or its derivatives represses phenylpropanoid production via the degradation of phenylalanine ammonia lyase (PAL) functioning at the entry point of the phenylpropanoid pathway. Given that IAOx is a precursor of other bioactive compounds other than glucosinolates and that the phenylpropanoid pathway is present in most plants, we hypothesized that this interaction is relevant to other species. Camelina sativa is an oil crop and produces camalexin from IAOx. We enhanced IAOx production in Camelina by overexpressing Arabidopsis CYP79B2 which encodes an IAOx-producing enzyme. The overexpression of AtCYP79B2 results in increased auxin content and its associated morphological phenotypes in Camelina but indole glucosinolates were not detected in Camelina wild type as well as the overexpression lines. However, phenylpropanoid contents were reduced in AtCYP79B2 overexpression lines suggesting a link between aldoxime metabolism and phenylpropanoid production. Interestingly, the expression of PALs was not affected in the overexpression lines although PAL activity was reduced. To test if PAL degradation is involved in the crosstalk, we identified F-box genes functioning in PAL degradation through a phylogenetic study. A total of 459 transcript models encoding kelch-motifs were identified from the Camelina sativa database. Among them, the expression of CsKFBs involved in PAL degradation is up-regulated in the transgenic lines. Our results suggest a link between aldoxime metabolism and phenylpropanoid production in Camelina and that the molecular mechanism behind the crosstalk is conserved in Arabidopsis and Camelina.https://www.frontiersin.org/article/10.3389/fpls.2020.00017/fullCamelina sativaaldoximephenylpropanoidsauxinPAL degradation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Dingpeng Zhang Yeong Hun Song Ru Dai Tong Geon Lee Tong Geon Lee Tong Geon Lee Jeongim Kim Jeongim Kim |
spellingShingle |
Dingpeng Zhang Yeong Hun Song Ru Dai Tong Geon Lee Tong Geon Lee Tong Geon Lee Jeongim Kim Jeongim Kim Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativa Frontiers in Plant Science Camelina sativa aldoxime phenylpropanoids auxin PAL degradation |
author_facet |
Dingpeng Zhang Yeong Hun Song Ru Dai Tong Geon Lee Tong Geon Lee Tong Geon Lee Jeongim Kim Jeongim Kim |
author_sort |
Dingpeng Zhang |
title |
Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativa |
title_short |
Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativa |
title_full |
Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativa |
title_fullStr |
Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativa |
title_full_unstemmed |
Aldoxime Metabolism Is Linked to Phenylpropanoid Production in Camelina sativa |
title_sort |
aldoxime metabolism is linked to phenylpropanoid production in camelina sativa |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Plant Science |
issn |
1664-462X |
publishDate |
2020-02-01 |
description |
Plants produce diverse secondary metabolites. Although each metabolite is made through its respective biosynthetic pathway, plants coordinate multiple biosynthetic pathways simultaneously. One example is an interaction between glucosinolate and phenylpropanoid pathways in Arabidopsis thaliana. Glucosinolates are defense compounds made primarily from methionine and tryptophan, while phenylpropanoids are made from phenylalanine. Recent studies have shown that the accumulation of glucosinolate intermediate such as indole-3-acetaldoxime (IAOx) or its derivatives represses phenylpropanoid production via the degradation of phenylalanine ammonia lyase (PAL) functioning at the entry point of the phenylpropanoid pathway. Given that IAOx is a precursor of other bioactive compounds other than glucosinolates and that the phenylpropanoid pathway is present in most plants, we hypothesized that this interaction is relevant to other species. Camelina sativa is an oil crop and produces camalexin from IAOx. We enhanced IAOx production in Camelina by overexpressing Arabidopsis CYP79B2 which encodes an IAOx-producing enzyme. The overexpression of AtCYP79B2 results in increased auxin content and its associated morphological phenotypes in Camelina but indole glucosinolates were not detected in Camelina wild type as well as the overexpression lines. However, phenylpropanoid contents were reduced in AtCYP79B2 overexpression lines suggesting a link between aldoxime metabolism and phenylpropanoid production. Interestingly, the expression of PALs was not affected in the overexpression lines although PAL activity was reduced. To test if PAL degradation is involved in the crosstalk, we identified F-box genes functioning in PAL degradation through a phylogenetic study. A total of 459 transcript models encoding kelch-motifs were identified from the Camelina sativa database. Among them, the expression of CsKFBs involved in PAL degradation is up-regulated in the transgenic lines. Our results suggest a link between aldoxime metabolism and phenylpropanoid production in Camelina and that the molecular mechanism behind the crosstalk is conserved in Arabidopsis and Camelina. |
topic |
Camelina sativa aldoxime phenylpropanoids auxin PAL degradation |
url |
https://www.frontiersin.org/article/10.3389/fpls.2020.00017/full |
work_keys_str_mv |
AT dingpengzhang aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa AT yeonghunsong aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa AT rudai aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa AT tonggeonlee aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa AT tonggeonlee aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa AT tonggeonlee aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa AT jeongimkim aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa AT jeongimkim aldoximemetabolismislinkedtophenylpropanoidproductionincamelinasativa |
_version_ |
1724557425970774016 |