Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.

Almost all terrestrial plants produce green leaf volatiles (GLVs), consisting of six-carbon (C6) aldehydes, alcohols and their esters, after mechanical wounding. C6 aldehydes deter enemies, but C6 alcohols and esters are rather inert. In this study, we address why the ability to produce various GLVs...

Full description

Bibliographic Details
Main Authors: Kenji Matsui, Kohichi Sugimoto, Jun'ichi Mano, Rika Ozawa, Junji Takabayashi
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3340338?pdf=render
id doaj-85a91aedae904bd98172a8449c19a361
record_format Article
spelling doaj-85a91aedae904bd98172a8449c19a3612020-11-25T00:55:56ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0174e3643310.1371/journal.pone.0036433Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.Kenji MatsuiKohichi SugimotoJun'ichi ManoRika OzawaJunji TakabayashiAlmost all terrestrial plants produce green leaf volatiles (GLVs), consisting of six-carbon (C6) aldehydes, alcohols and their esters, after mechanical wounding. C6 aldehydes deter enemies, but C6 alcohols and esters are rather inert. In this study, we address why the ability to produce various GLVs in wounded plant tissues has been conserved in the plant kingdom. The major product in completely disrupted Arabidopsis leaf tissues was (Z)-3-hexenal, while (Z)-3-hexenol and (Z)-3-hexenyl acetate were the main products formed in the intact parts of partially wounded leaves. (13)C-labeled C6 aldehydes placed on the disrupted part of a wounded leaf diffused into neighboring intact tissues and were reduced to C6 alcohols. The reduction of the aldehydes to alcohols was catalyzed by an NADPH-dependent reductase. When NADPH was supplemented to disrupted tissues, C6 aldehydes were reduced to C6 alcohols, indicating that C6 aldehydes accumulated because of insufficient NADPH. When the leaves were exposed to higher doses of C6 aldehydes, however, a substantial fraction of C6 aldehydes persisted in the leaves and damaged them, indicating potential toxicity of C6 aldehydes to the leaf cells. Thus, the production of C6 aldehydes and their differential metabolisms in wounded leaves has dual benefits. In disrupted tissues, C6 aldehydes and their α,β-unsaturated aldehyde derivatives accumulate to deter invaders. In intact cells, the aldehydes are reduced to minimize self-toxicity and allow healthy cells to survive. The metabolism of GLVs is thus efficiently designed to meet ecophysiological requirements of the microenvironments within a wounded leaf.http://europepmc.org/articles/PMC3340338?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Kenji Matsui
Kohichi Sugimoto
Jun'ichi Mano
Rika Ozawa
Junji Takabayashi
spellingShingle Kenji Matsui
Kohichi Sugimoto
Jun'ichi Mano
Rika Ozawa
Junji Takabayashi
Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.
PLoS ONE
author_facet Kenji Matsui
Kohichi Sugimoto
Jun'ichi Mano
Rika Ozawa
Junji Takabayashi
author_sort Kenji Matsui
title Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.
title_short Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.
title_full Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.
title_fullStr Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.
title_full_unstemmed Differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.
title_sort differential metabolisms of green leaf volatiles in injured and intact parts of a wounded leaf meet distinct ecophysiological requirements.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description Almost all terrestrial plants produce green leaf volatiles (GLVs), consisting of six-carbon (C6) aldehydes, alcohols and their esters, after mechanical wounding. C6 aldehydes deter enemies, but C6 alcohols and esters are rather inert. In this study, we address why the ability to produce various GLVs in wounded plant tissues has been conserved in the plant kingdom. The major product in completely disrupted Arabidopsis leaf tissues was (Z)-3-hexenal, while (Z)-3-hexenol and (Z)-3-hexenyl acetate were the main products formed in the intact parts of partially wounded leaves. (13)C-labeled C6 aldehydes placed on the disrupted part of a wounded leaf diffused into neighboring intact tissues and were reduced to C6 alcohols. The reduction of the aldehydes to alcohols was catalyzed by an NADPH-dependent reductase. When NADPH was supplemented to disrupted tissues, C6 aldehydes were reduced to C6 alcohols, indicating that C6 aldehydes accumulated because of insufficient NADPH. When the leaves were exposed to higher doses of C6 aldehydes, however, a substantial fraction of C6 aldehydes persisted in the leaves and damaged them, indicating potential toxicity of C6 aldehydes to the leaf cells. Thus, the production of C6 aldehydes and their differential metabolisms in wounded leaves has dual benefits. In disrupted tissues, C6 aldehydes and their α,β-unsaturated aldehyde derivatives accumulate to deter invaders. In intact cells, the aldehydes are reduced to minimize self-toxicity and allow healthy cells to survive. The metabolism of GLVs is thus efficiently designed to meet ecophysiological requirements of the microenvironments within a wounded leaf.
url http://europepmc.org/articles/PMC3340338?pdf=render
work_keys_str_mv AT kenjimatsui differentialmetabolismsofgreenleafvolatilesininjuredandintactpartsofawoundedleafmeetdistinctecophysiologicalrequirements
AT kohichisugimoto differentialmetabolismsofgreenleafvolatilesininjuredandintactpartsofawoundedleafmeetdistinctecophysiologicalrequirements
AT junichimano differentialmetabolismsofgreenleafvolatilesininjuredandintactpartsofawoundedleafmeetdistinctecophysiologicalrequirements
AT rikaozawa differentialmetabolismsofgreenleafvolatilesininjuredandintactpartsofawoundedleafmeetdistinctecophysiologicalrequirements
AT junjitakabayashi differentialmetabolismsofgreenleafvolatilesininjuredandintactpartsofawoundedleafmeetdistinctecophysiologicalrequirements
_version_ 1725228822878486528