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Genome-Wide Characterization of Major Intrinsic Proteins in Four Grass Plants and Their Non-Aqua Transport Selectivity Profiles with Comparative Perspective.

Identifieur interne : 001857 ( Main/Exploration ); précédent : 001856; suivant : 001858

Genome-Wide Characterization of Major Intrinsic Proteins in Four Grass Plants and Their Non-Aqua Transport Selectivity Profiles with Comparative Perspective.

Auteurs : Abul Kalam Azad [Bangladesh] ; Jahed Ahmed [Bangladesh] ; Md Asraful Alum [Bangladesh] ; Md Mahbub Hasan [Bangladesh] ; Takahiro Ishikawa [Japon] ; Yoshihiro Sawa [Japon] ; Maki Katsuhara [Japon]

Source :

RBID : pubmed:27327960

Descripteurs français

English descriptors

Abstract

Major intrinsic proteins (MIPs), commonly known as aquaporins, transport not only water in plants but also other substrates of physiological significance and heavy metals. In most of the higher plants, MIPs are divided into five subfamilies (PIPs, TIPs, NIPs, SIPs and XIPs). Herein, we identified 68, 42, 38 and 28 full-length MIPs, respectively in the genomes of four monocot grass plants, specifically Panicum virgatum, Setaria italica, Sorghum bicolor and Brachypodium distachyon. Phylogenetic analysis showed that the grass plants had only four MIP subfamilies including PIPs, TIPs, NIPs and SIPs without XIPs. Based on structural analysis of the homology models and comparing the primary selectivity-related motifs [two NPA regions, aromatic/arginine (ar/R) selectivity filter and Froger's positions (FPs)] of all plant MIPs that have been experimentally proven to transport non-aqua substrates, we predicted the transport profiles of all MIPs in the four grass plants and also in eight other plants. Groups of MIP subfamilies based on ar/R selectivity filter and FPs were linked to the non-aqua transport profiles. We further deciphered the substrate selectivity profiles of the MIPs in the four grass plants and compared them with their counterparts in rice, maize, soybean, poplar, cotton, Arabidopsis thaliana, Physcomitrella patens and Selaginella moellendorffii. In addition to two NPA regions, ar/R filter and FPs, certain residues, especially in loops B and C, contribute to the functional distinctiveness of MIP groups. Expression analysis of transcripts in different organs indicated that non-aqua transport was related to expression of MIPs since most of the unexpressed MIPs were not predicted to facilitate the transport of non-aqua molecules. Among all MIPs in every plant, TIP (BdTIP1;1, SiTIP1;2, SbTIP2;1 and PvTIP1;2) had the overall highest mean expression. Our study generates significant information for understanding the diversity, evolution, non-aqua transport profiles and insight into comparative transport selectivity of plant MIPs, and provides tools for the development of transgenic plants.

DOI: 10.1371/journal.pone.0157735
PubMed: 27327960
PubMed Central: PMC4915720


Affiliations:


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Le document en format XML

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<term>Amino Acid Motifs (MeSH)</term>
<term>Aquaporins (chemistry)</term>
<term>Aquaporins (genetics)</term>
<term>Aquaporins (metabolism)</term>
<term>Evolution, Molecular (MeSH)</term>
<term>Gene Expression Regulation, Plant (MeSH)</term>
<term>Genes, Plant (MeSH)</term>
<term>Genome, Plant (MeSH)</term>
<term>Plant Leaves (genetics)</term>
<term>Plant Proteins (chemistry)</term>
<term>Plant Proteins (genetics)</term>
<term>Plant Proteins (metabolism)</term>
<term>Plant Roots (genetics)</term>
<term>Plant Shoots (genetics)</term>
<term>Poaceae (genetics)</term>
<term>Poaceae (metabolism)</term>
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<term>Subcellular Fractions (metabolism)</term>
<term>Substrate Specificity (MeSH)</term>
<term>Terminology as Topic (MeSH)</term>
<term>Water (metabolism)</term>
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<term>Aquaporines (composition chimique)</term>
<term>Aquaporines (génétique)</term>
<term>Aquaporines (métabolisme)</term>
<term>Eau (métabolisme)</term>
<term>Feuilles de plante (génétique)</term>
<term>Fractions subcellulaires (métabolisme)</term>
<term>Gènes de plante (MeSH)</term>
<term>Génome végétal (MeSH)</term>
<term>Motifs d'acides aminés (MeSH)</term>
<term>Poaceae (génétique)</term>
<term>Poaceae (métabolisme)</term>
<term>Pousses de plante (génétique)</term>
<term>Protéines végétales (composition chimique)</term>
<term>Protéines végétales (génétique)</term>
<term>Protéines végétales (métabolisme)</term>
<term>Racines de plante (génétique)</term>
<term>Régulation de l'expression des gènes végétaux (MeSH)</term>
<term>Spécificité du substrat (MeSH)</term>
<term>Terminologie comme sujet (MeSH)</term>
<term>Transport des protéines (MeSH)</term>
<term>Évolution moléculaire (MeSH)</term>
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<term>Aquaporins</term>
<term>Plant Proteins</term>
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<term>Plant Proteins</term>
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<term>Feuilles de plante</term>
<term>Poaceae</term>
<term>Pousses de plante</term>
<term>Protéines végétales</term>
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<div type="abstract" xml:lang="en">Major intrinsic proteins (MIPs), commonly known as aquaporins, transport not only water in plants but also other substrates of physiological significance and heavy metals. In most of the higher plants, MIPs are divided into five subfamilies (PIPs, TIPs, NIPs, SIPs and XIPs). Herein, we identified 68, 42, 38 and 28 full-length MIPs, respectively in the genomes of four monocot grass plants, specifically Panicum virgatum, Setaria italica, Sorghum bicolor and Brachypodium distachyon. Phylogenetic analysis showed that the grass plants had only four MIP subfamilies including PIPs, TIPs, NIPs and SIPs without XIPs. Based on structural analysis of the homology models and comparing the primary selectivity-related motifs [two NPA regions, aromatic/arginine (ar/R) selectivity filter and Froger's positions (FPs)] of all plant MIPs that have been experimentally proven to transport non-aqua substrates, we predicted the transport profiles of all MIPs in the four grass plants and also in eight other plants. Groups of MIP subfamilies based on ar/R selectivity filter and FPs were linked to the non-aqua transport profiles. We further deciphered the substrate selectivity profiles of the MIPs in the four grass plants and compared them with their counterparts in rice, maize, soybean, poplar, cotton, Arabidopsis thaliana, Physcomitrella patens and Selaginella moellendorffii. In addition to two NPA regions, ar/R filter and FPs, certain residues, especially in loops B and C, contribute to the functional distinctiveness of MIP groups. Expression analysis of transcripts in different organs indicated that non-aqua transport was related to expression of MIPs since most of the unexpressed MIPs were not predicted to facilitate the transport of non-aqua molecules. Among all MIPs in every plant, TIP (BdTIP1;1, SiTIP1;2, SbTIP2;1 and PvTIP1;2) had the overall highest mean expression. Our study generates significant information for understanding the diversity, evolution, non-aqua transport profiles and insight into comparative transport selectivity of plant MIPs, and provides tools for the development of transgenic plants. </div>
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