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Ethylene-Induced Inhibition of Root Growth Requires Abscisic Acid Function in Rice (Oryza sativa L.) Seedlings

Identifieur interne : 000A97 ( Main/Exploration ); précédent : 000A96; suivant : 000A98

Ethylene-Induced Inhibition of Root Growth Requires Abscisic Acid Function in Rice (Oryza sativa L.) Seedlings

Auteurs : Biao Ma [République populaire de Chine] ; Cui-Cui Yin [République populaire de Chine] ; Si-Jie He [République populaire de Chine] ; Xiang Lu [République populaire de Chine] ; Wan-Ke Zhang [République populaire de Chine] ; Tie-Gang Lu [République populaire de Chine] ; Shou-Yi Chen [République populaire de Chine] ; Jin-Song Zhang [République populaire de Chine]

Source :

RBID : PMC:4199509

Abstract

Ethylene and abscisic acid (ABA) have a complicated interplay in many developmental processes. Their interaction in rice is largely unclear. Here, we characterized a rice ethylene-response mutant mhz4, which exhibited reduced ethylene-response in roots but enhanced ethylene-response in coleoptiles of etiolated seedlings. MHZ4 was identified through map-based cloning and encoded a chloroplast-localized membrane protein homologous to Arabidopsis thaliana (Arabidopsis) ABA4, which is responsible for a branch of ABA biosynthesis. MHZ4 mutation reduced ABA level, but promoted ethylene production. Ethylene induced MHZ4 expression and promoted ABA accumulation in roots. MHZ4 overexpression resulted in enhanced and reduced ethylene response in roots and coleoptiles, respectively. In root, MHZ4-dependent ABA pathway acts at or downstream of ethylene receptors and positively regulates root ethylene response. This ethylene-ABA interaction mode is different from that reported in Arabidopsis, where ethylene-mediated root inhibition is independent of ABA function. In coleoptile, MHZ4-dependent ABA pathway acts at or upstream of OsEIN2 to negatively regulate coleoptile ethylene response, possibly by affecting OsEIN2 expression. At mature stage, mhz4 mutation affects branching and adventitious root formation on stem nodes of higher positions, as well as yield-related traits. Together, our findings reveal a novel mode of interplay between ethylene and ABA in control of rice growth and development.


Url:
DOI: 10.1371/journal.pgen.1004701
PubMed: 25330236
PubMed Central: 4199509


Affiliations:


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Le document en format XML

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<title xml:lang="en" level="a" type="main">Ethylene-Induced Inhibition of Root Growth Requires Abscisic Acid Function in Rice (
<italic>Oryza sativa</italic>
L.) Seedlings</title>
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<name sortKey="Ma, Biao" sort="Ma, Biao" uniqKey="Ma B" first="Biao" last="Ma">Biao Ma</name>
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<p>Ethylene and abscisic acid (ABA) have a complicated interplay in many developmental processes. Their interaction in rice is largely unclear. Here, we characterized a rice ethylene-response mutant
<italic>mhz4</italic>
, which exhibited reduced ethylene-response in roots but enhanced ethylene-response in coleoptiles of etiolated seedlings.
<italic>MHZ4</italic>
was identified through map-based cloning and encoded a chloroplast-localized membrane protein homologous to
<italic>Arabidopsis thaliana</italic>
(
<italic>Arabidopsis</italic>
) ABA4, which is responsible for a branch of ABA biosynthesis.
<italic>MHZ4</italic>
mutation reduced ABA level, but promoted ethylene production. Ethylene induced
<italic>MHZ4</italic>
expression and promoted ABA accumulation in roots.
<italic>MHZ4</italic>
overexpression resulted in enhanced and reduced ethylene response in roots and coleoptiles, respectively. In root,
<italic>MHZ4</italic>
-dependent ABA pathway acts at or downstream of ethylene receptors and positively regulates root ethylene response. This ethylene-ABA interaction mode is different from that reported in
<italic>Arabidopsis</italic>
, where ethylene-mediated root inhibition is independent of ABA function. In coleoptile,
<italic>MHZ4</italic>
-dependent ABA pathway acts at or upstream of OsEIN2 to negatively regulate coleoptile ethylene response, possibly by affecting
<italic>OsEIN2</italic>
expression. At mature stage,
<italic>mhz4</italic>
mutation affects branching and adventitious root formation on stem nodes of higher positions, as well as yield-related traits. Together, our findings reveal a novel mode of interplay between ethylene and ABA in control of rice growth and development.</p>
</div>
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</analytic>
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<author>
<name sortKey="Grossmanna, K" uniqKey="Grossmanna K">K Grossmanna</name>
</author>
<author>
<name sortKey="Hansenb, H" uniqKey="Hansenb H">H Hansenb</name>
</author>
</analytic>
</biblStruct>
<biblStruct>
<analytic>
<author>
<name sortKey="Hoffmann Benning, S" uniqKey="Hoffmann Benning S">S Hoffmann-Benning</name>
</author>
<author>
<name sortKey="Kende, H" uniqKey="Kende H">H Kende</name>
</author>
</analytic>
</biblStruct>
<biblStruct>
<analytic>
<author>
<name sortKey="Lenoble, Me" uniqKey="Lenoble M">ME LeNoble</name>
</author>
<author>
<name sortKey="Spollen, Wg" uniqKey="Spollen W">WG Spollen</name>
</author>
<author>
<name sortKey="Sharp, Re" uniqKey="Sharp R">RE Sharp</name>
</author>
</analytic>
</biblStruct>
<biblStruct></biblStruct>
<biblStruct>
<analytic>
<author>
<name sortKey="Yang, J" uniqKey="Yang J">J Yang</name>
</author>
<author>
<name sortKey="Zhang, J" uniqKey="Zhang J">J Zhang</name>
</author>
<author>
<name sortKey="Wang, Z" uniqKey="Wang Z">Z Wang</name>
</author>
<author>
<name sortKey="Liu, K" uniqKey="Liu K">K Liu</name>
</author>
<author>
<name sortKey="Wang, P" uniqKey="Wang P">P Wang</name>
</author>
</analytic>
</biblStruct>
<biblStruct>
<analytic>
<author>
<name sortKey="Sharp, Re" uniqKey="Sharp R">RE Sharp</name>
</author>
<author>
<name sortKey="Lenoble, Me" uniqKey="Lenoble M">ME LeNoble</name>
</author>
<author>
<name sortKey="Else, Ma" uniqKey="Else M">MA Else</name>
</author>
<author>
<name sortKey="Thorne, Et" uniqKey="Thorne E">ET Thorne</name>
</author>
<author>
<name sortKey="Gherardi, F" uniqKey="Gherardi F">F Gherardi</name>
</author>
</analytic>
</biblStruct>
<biblStruct>
<analytic>
<author>
<name sortKey="Trapnell, C" uniqKey="Trapnell C">C Trapnell</name>
</author>
<author>
<name sortKey="Roberts, A" uniqKey="Roberts A">A Roberts</name>
</author>
<author>
<name sortKey="Goff, L" uniqKey="Goff L">L Goff</name>
</author>
<author>
<name sortKey="Pertea, G" uniqKey="Pertea G">G Pertea</name>
</author>
<author>
<name sortKey="Kim, D" uniqKey="Kim D">D Kim</name>
</author>
</analytic>
</biblStruct>
<biblStruct>
<analytic>
<author>
<name sortKey="Fu, J" uniqKey="Fu J">J Fu</name>
</author>
<author>
<name sortKey="Chu, J" uniqKey="Chu J">J Chu</name>
</author>
<author>
<name sortKey="Sun, X" uniqKey="Sun X">X Sun</name>
</author>
<author>
<name sortKey="Wang, J" uniqKey="Wang J">J Wang</name>
</author>
<author>
<name sortKey="Yan, C" uniqKey="Yan C">C Yan</name>
</author>
</analytic>
</biblStruct>
</listBibl>
</div1>
</back>
</TEI>
<affiliations>
<list>
<country>
<li>République populaire de Chine</li>
</country>
<settlement>
<li>Pékin</li>
</settlement>
</list>
<tree>
<country name="République populaire de Chine">
<noRegion>
<name sortKey="Ma, Biao" sort="Ma, Biao" uniqKey="Ma B" first="Biao" last="Ma">Biao Ma</name>
</noRegion>
<name sortKey="Chen, Shou Yi" sort="Chen, Shou Yi" uniqKey="Chen S" first="Shou-Yi" last="Chen">Shou-Yi Chen</name>
<name sortKey="He, Si Jie" sort="He, Si Jie" uniqKey="He S" first="Si-Jie" last="He">Si-Jie He</name>
<name sortKey="Lu, Tie Gang" sort="Lu, Tie Gang" uniqKey="Lu T" first="Tie-Gang" last="Lu">Tie-Gang Lu</name>
<name sortKey="Lu, Xiang" sort="Lu, Xiang" uniqKey="Lu X" first="Xiang" last="Lu">Xiang Lu</name>
<name sortKey="Yin, Cui Cui" sort="Yin, Cui Cui" uniqKey="Yin C" first="Cui-Cui" last="Yin">Cui-Cui Yin</name>
<name sortKey="Zhang, Jin Song" sort="Zhang, Jin Song" uniqKey="Zhang J" first="Jin-Song" last="Zhang">Jin-Song Zhang</name>
<name sortKey="Zhang, Wan Ke" sort="Zhang, Wan Ke" uniqKey="Zhang W" first="Wan-Ke" last="Zhang">Wan-Ke Zhang</name>
</country>
</tree>
</affiliations>
</record>

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