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1.
J Plant Physiol ; 170(13): 1148-57, 2013 Sep 01.
Article in English | MEDLINE | ID: mdl-23632303

ABSTRACT

Cold stress affects plant growth and development. In order to better understand the responses to cold (chilling or freezing tolerance), we used two contrasted pea lines. Following a chilling period, the Champagne line becomes tolerant to frost whereas the Terese line remains sensitive. Four suppression subtractive hybridisation libraries were obtained using mRNAs isolated from pea genotypes Champagne and Terese. Using quantitative polymerase chain reaction (qPCR) performed on 159 genes, 43 and 54 genes were identified as differentially expressed at the initial time point and during the time course study, respectively. Molecular markers were developed from the differentially expressed genes and were genotyped on a population of 164 RILs derived from a cross between Champagne and Terese. We identified 5 candidate genes colocalizing with 3 different frost damage quantitative trait loci (QTL) intervals and a protein quantity locus (PQL) rich region previously reported. This investigation revealed the role of constitutive differences between both genotypes in the cold responses, in particular with genes related to glycine degradation pathway that could confer to Champagne a better frost tolerance. We showed that freezing tolerance involves a decrease of expression of genes related to photosynthesis and the expression of a gene involved in the production of cysteine and methionine that could act as cryoprotectant molecules. Although it remains to be confirmed, this study could also reveal the involvement of the jasmonate pathway in the cold responses, since we observed that two genes related to this pathway were mapped in a frost damage QTL interval and in a PQL rich region interval, respectively.


Subject(s)
Cold-Shock Response , Gene Expression Regulation, Plant , Pisum sativum/physiology , Expressed Sequence Tags/chemistry , Expressed Sequence Tags/metabolism , Gene Library , Genes, Plant , Genotype , Molecular Sequence Data , Pisum sativum/chemistry , Pisum sativum/genetics , Polymerase Chain Reaction , Quantitative Trait Loci , Sequence Analysis, DNA
2.
Plant Cell Environ ; 32(4): 336-48, 2009 Apr.
Article in English | MEDLINE | ID: mdl-19143989

ABSTRACT

Antarctic hair grass (Deschampsia antarctica E. Desv.), the only grass indigenous to Antarctica, has well-developed freezing tolerance, strongly induced by cold acclimation. Here, we show that in response to low temperatures, D. antarctica expresses potent recrystallization inhibition (RI) activity that, inhibits the growth of small ice crystals into potentially damaging large ones, is proteinaceous and localized to the apoplasm. A gene family from D. antarctica encoding putative homologs of an ice recrystallization inhibition protein (IRIP) has been isolated and characterized. IRIPs are apoplastically targeted proteins with two potential ice-binding motifs: 1-9 leucine-rich repeats (LRRs) and c. 16 'IRIP' repeats. IRIP genes appear to be confined to the grass subfamily Pooideae and their products, exhibit sequence similarity to phytosulphokine receptors and are predicted to adopt conformations with two ice-binding surfaces. D. antarctica IRIP (DaIRIP) transcript levels are greatly enhanced in leaf tissue following cold acclimation. Transgenic Arabidopsis thaliana expressing a DaIRIP has novel RI activity, and purified DaIRIP, when added back to extracts of leaves from non-acclimated D. antarctica, can reconstitute the activity found in acclimated plants. We propose that IRIP-mediated RI activity may contribute to the cryotolerance of D. antarctica, and thus to its unique ability to have colonized Antarctica.


Subject(s)
Antifreeze Proteins/genetics , Cold Temperature , Multigene Family , Plant Leaves/physiology , Plant Proteins/genetics , Poaceae/genetics , Acclimatization/genetics , Amino Acid Sequence , Antarctic Regions , Antifreeze Proteins/physiology , Arabidopsis/genetics , Cloning, Molecular , DNA, Plant/genetics , Freezing , Gene Expression Regulation, Plant , Genes, Plant , Ice , Molecular Sequence Data , Plant Leaves/genetics , Plant Proteins/physiology , Plants, Genetically Modified/genetics , Plants, Genetically Modified/physiology , Poaceae/physiology , Sequence Alignment , Sequence Analysis, DNA
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