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Late Embryogenesis Abundant (LEA) Constitutes a Large and Diverse Family of Proteins Involved in Development and Abiotic Stress Responses in Sweet Orange (Citrus sinensis L. Osb.)

Identifieur interne : 001E33 ( Ncbi/Curation ); précédent : 001E32; suivant : 001E34

Late Embryogenesis Abundant (LEA) Constitutes a Large and Diverse Family of Proteins Involved in Development and Abiotic Stress Responses in Sweet Orange (Citrus sinensis L. Osb.)

Auteurs : Andresa Muniz Pedrosa ; Cristina De Paula Santos Martins ; Luana Pereira Gonçalves ; Marcio Gilberto Cardoso Costa

Source :

RBID : PMC:4689376

English descriptors

Abstract

Late Embryogenesis Abundant (LEA) proteins are an ubiquitous group of polypeptides that were first described to accumulate during plant seed dehydration, at the later stages of embryogenesis. Since then they have also been recorded in vegetative plant tissues experiencing water limitation and in anhydrobiotic bacteria and invertebrates and, thereby, correlated with the acquisition of desiccation tolerance. This study provides the first comprehensive study about the LEA gene family in sweet orange (Citrus sinensis L. Osb.), the most important and widely grown fruit crop around the world. A surprisingly high number (72) of genes encoding C. sinensis LEAs (CsLEAs) were identified and classified into seven groups (LEA_1, LEA_2, LEA_3 and LEA_4, LEA_5, DEHYDRIN and SMP) based on their predicted amino acid sequences and also on their phylogenetic relationships with the complete set of Arabidopsis thaliana LEA proteins (AtLEAs). Approximately 60% of the CsLEAs identified in this study belongs to the unusual LEA_2 group of more hydrophobic LEA proteins, while the other LEA groups contained a relatively small number of members typically hydrophilic. A correlation between gene structure and motif composition was observed within each LEA group. Investigation of their chromosomal localizations revealed that the CsLEAs were non-randomly distributed across all nine chromosomes and that 33% of all CsLEAs are segmentally or tandemly duplicated genes. Analysis of the upstream sequences required for transcription revealed the presence of various stress-responsive cis-acting regulatory elements in the promoter regions of CsLEAs, including ABRE, DRE/CRT, MYBS and LTRE. Expression analysis using both RNA-seq data and quantitative real-time RT-PCR (qPCR) revealed that the CsLEA genes are widely expressed in various tissues, and that many genes containing the ABRE promoter sequence are induced by drought, salt and PEG. These results provide a useful reference for further exploration of the CsLEAs functions and applications on crop improvement.


Url:
DOI: 10.1371/journal.pone.0145785
PubMed: 26700652
PubMed Central: 4689376

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<title xml:lang="en" level="a" type="main">Late Embryogenesis Abundant (LEA) Constitutes a Large and Diverse Family of Proteins Involved in Development and Abiotic Stress Responses in Sweet Orange (
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L. Osb.)</title>
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<name sortKey="Pedrosa, Andresa Muniz" sort="Pedrosa, Andresa Muniz" uniqKey="Pedrosa A" first="Andresa Muniz" last="Pedrosa">Andresa Muniz Pedrosa</name>
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<name sortKey="Goncalves, Luana Pereira" sort="Goncalves, Luana Pereira" uniqKey="Goncalves L" first="Luana Pereira" last="Gonçalves">Luana Pereira Gonçalves</name>
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<name sortKey="Costa, Marcio Gilberto Cardoso" sort="Costa, Marcio Gilberto Cardoso" uniqKey="Costa M" first="Marcio Gilberto Cardoso" last="Costa">Marcio Gilberto Cardoso Costa</name>
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<term>Chromosomes, Plant</term>
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<term>Citrus sinensis (genetics)</term>
<term>Citrus sinensis (growth & development)</term>
<term>Gene Expression Regulation, Plant</term>
<term>Genome, Plant</term>
<term>Phylogeny</term>
<term>Plant Proteins (genetics)</term>
<term>Stress, Physiological</term>
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<term>Plant Proteins</term>
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<term>Citrus sinensis</term>
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<keywords scheme="MESH" qualifier="genetics" xml:lang="en">
<term>Citrus sinensis</term>
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<term>Citrus sinensis</term>
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<keywords scheme="MESH" xml:lang="en">
<term>Chromosomes, Plant</term>
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<p>Late Embryogenesis Abundant (LEA) proteins are an ubiquitous group of polypeptides that were first described to accumulate during plant seed dehydration, at the later stages of embryogenesis. Since then they have also been recorded in vegetative plant tissues experiencing water limitation and in anhydrobiotic bacteria and invertebrates and, thereby, correlated with the acquisition of desiccation tolerance. This study provides the first comprehensive study about the LEA gene family in sweet orange (
<italic>Citrus sinensis</italic>
L. Osb.), the most important and widely grown fruit crop around the world. A surprisingly high number (72) of genes encoding
<italic>C</italic>
.
<italic>sinensis</italic>
LEAs (CsLEAs) were identified and classified into seven groups (LEA_1, LEA_2, LEA_3 and LEA_4, LEA_5, DEHYDRIN and SMP) based on their predicted amino acid sequences and also on their phylogenetic relationships with the complete set of
<italic>Arabidopsis thaliana</italic>
LEA proteins (AtLEAs). Approximately 60% of the CsLEAs identified in this study belongs to the unusual LEA_2 group of more hydrophobic LEA proteins, while the other LEA groups contained a relatively small number of members typically hydrophilic. A correlation between gene structure and motif composition was observed within each LEA group. Investigation of their chromosomal localizations revealed that the
<italic>CsLEAs</italic>
were non-randomly distributed across all nine chromosomes and that 33% of all
<italic>CsLEAs</italic>
are segmentally or tandemly duplicated genes. Analysis of the upstream sequences required for transcription revealed the presence of various stress-responsive
<italic>cis</italic>
-acting regulatory elements in the promoter regions of
<italic>CsLEA</italic>
s, including ABRE, DRE/CRT, MYBS and LTRE. Expression analysis using both RNA-seq data and quantitative real-time RT-PCR (qPCR) revealed that the
<italic>CsLEA</italic>
genes are widely expressed in various tissues, and that many genes containing the ABRE promoter sequence are induced by drought, salt and PEG. These results provide a useful reference for further exploration of the CsLEAs functions and applications on crop improvement.</p>
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