Expression analysis of cellulose synthases that comprise the Type II complex in hybrid aspen.
Chromosomes, Plant
/ genetics
Gene Duplication
/ genetics
Gene Expression Regulation, Plant
/ genetics
Genes, Plant
/ genetics
Glucosyltransferases
/ metabolism
Multienzyme Complexes
/ metabolism
Phylogeny
Plants, Genetically Modified
Populus
/ enzymology
Promoter Regions, Genetic
/ genetics
Reverse Transcriptase Polymerase Chain Reaction
Synteny
/ genetics
Transcriptome
Cell wall
gene duplication
whole genome duplication
β-glucuronidase assay
Journal
Plant biology (Stuttgart, Germany)
ISSN: 1438-8677
Titre abrégé: Plant Biol (Stuttg)
Pays: England
ID NLM: 101148926
Informations de publication
Date de publication:
Mar 2019
Mar 2019
Historique:
received:
17
09
2018
accepted:
08
10
2018
pubmed:
14
10
2018
medline:
23
2
2019
entrez:
14
10
2018
Statut:
ppublish
Résumé
Gene duplication in plants occurs via several different mechanisms, including whole genome duplication, and the copied genes acquire various forms and types. The cellulose synthase (CesA) family functions in cellulose synthesis complex (CSC) formation, which is involved in the synthesis of primary and secondary cell walls in plants. In the genome of Populus, 17 CesA have been annotated, and some of them appeared through whole genome duplication. The nucleotide sequence of the duplicated genes changed during subsequent evolution, and functional differentiation of genes might have occurred. To gain insight into the evolutionary fate of the duplicated CesA, expression analysis with quantitative reverse transcription polymerase chain reactions and promoter-reporter assays was performed on three duplicated gene pairs whose products have been reported to form a single CSC. Changes in expression of each gene at different developmental stages were detected and divergent expression patterns in different organs and tissues observed between the gene pairs. Among the tested genes, expression of PttCesA3-C was apparently lower than that of its counterpart, PttCesA3-D. The results suggest that the six CesA are approaching sub-functionalisation or non-functionalisation. Furthermore, the level of functionalisation may vary among the three pairs of genes, and functional specialisation of each CesA should have been achieved, at least partially, through differences in expression of genes.
Substances chimiques
Multienzyme Complexes
0
Glucosyltransferases
EC 2.4.1.-
cellulose synthase (GDP-forming)
EC 2.4.1.29
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
361-370Subventions
Organisme : Advanced Low Carbon Technology Research and Development Program
ID : JPMJAL1107
Informations de copyright
© 2018 German Society for Plant Sciences and The Royal Botanical Society of the Netherlands.