Cargando…

A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus

BACKGROUND: The aerial parts of land plants are covered with cuticular waxes that limit non-stomatal water loss and gaseous exchange, and protect plants from ultraviolet radiation and pathogen attack. This is the first report on the characterization and genetic mapping of a novel dominant glossy mut...

Descripción completa

Detalles Bibliográficos
Autores principales: Pu, Yuanyuan, Gao, Jie, Guo, Yanli, Liu, Tingting, Zhu, Lixia, Xu, Ping, Yi, Bin, Wen, Jing, Tu, Jinxing, Ma, Chaozhi, Fu, Tingdong, Zou, Jitao, Shen, Jinxiong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3881019/
https://www.ncbi.nlm.nih.gov/pubmed/24330756
http://dx.doi.org/10.1186/1471-2229-13-215
_version_ 1782298144166379520
author Pu, Yuanyuan
Gao, Jie
Guo, Yanli
Liu, Tingting
Zhu, Lixia
Xu, Ping
Yi, Bin
Wen, Jing
Tu, Jinxing
Ma, Chaozhi
Fu, Tingdong
Zou, Jitao
Shen, Jinxiong
author_facet Pu, Yuanyuan
Gao, Jie
Guo, Yanli
Liu, Tingting
Zhu, Lixia
Xu, Ping
Yi, Bin
Wen, Jing
Tu, Jinxing
Ma, Chaozhi
Fu, Tingdong
Zou, Jitao
Shen, Jinxiong
author_sort Pu, Yuanyuan
collection PubMed
description BACKGROUND: The aerial parts of land plants are covered with cuticular waxes that limit non-stomatal water loss and gaseous exchange, and protect plants from ultraviolet radiation and pathogen attack. This is the first report on the characterization and genetic mapping of a novel dominant glossy mutant (BnaA.GL) in Brassica napus. RESULTS: Transmission electron microscopy revealed that the cuticle ultrastructure of GL mutant leaf and stem were altered dramatically compared with that of wide type (WT). Scanning electron microscopy corroborated the reduction of wax on the leaf and stem surface. A cuticular wax analysis of the GL mutant leaves further confirmed the drastic decrease in the total wax content, and a wax compositional analysis revealed an increase in aldehydes but a severe decrease in alkanes, ketones and secondary alcohols. These results suggested a likely blockage of the decarbonylation step in the wax biosynthesis pathway. Genetic mapping narrowed the location of the BnaA.GL gene to the end of A9 chromosome. A single-nucleotide polymorphism (SNP) chip assay in combination with bulk segregant analysis (BSA) also located SNPs in the same region. Two SNPs, two single sequence repeat (SSR) markers and one IP marker were located on the flanking region of the BnaA.GL gene at a distance of 0.6 cM. A gene homologous to ECERIFERUM1 (CER1) was located in the mapped region. A cDNA microarray chip assay revealed coordinated down regulation of genes encoding enzymes of the cuticular wax biosynthetic pathway in the glossy mutant, with BnCER1 being one of the most severely suppressed genes. CONCLUSIONS: Our results indicated that surface wax biosynthesis is broadly affected in the glossy mutant due to the suppression of the BnCER1 and other wax-related genes. These findings offer novel clues for elucidating the molecular basis of the glossy phenotype.
format Online
Article
Text
id pubmed-3881019
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-38810192014-01-07 A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus Pu, Yuanyuan Gao, Jie Guo, Yanli Liu, Tingting Zhu, Lixia Xu, Ping Yi, Bin Wen, Jing Tu, Jinxing Ma, Chaozhi Fu, Tingdong Zou, Jitao Shen, Jinxiong BMC Plant Biol Research Article BACKGROUND: The aerial parts of land plants are covered with cuticular waxes that limit non-stomatal water loss and gaseous exchange, and protect plants from ultraviolet radiation and pathogen attack. This is the first report on the characterization and genetic mapping of a novel dominant glossy mutant (BnaA.GL) in Brassica napus. RESULTS: Transmission electron microscopy revealed that the cuticle ultrastructure of GL mutant leaf and stem were altered dramatically compared with that of wide type (WT). Scanning electron microscopy corroborated the reduction of wax on the leaf and stem surface. A cuticular wax analysis of the GL mutant leaves further confirmed the drastic decrease in the total wax content, and a wax compositional analysis revealed an increase in aldehydes but a severe decrease in alkanes, ketones and secondary alcohols. These results suggested a likely blockage of the decarbonylation step in the wax biosynthesis pathway. Genetic mapping narrowed the location of the BnaA.GL gene to the end of A9 chromosome. A single-nucleotide polymorphism (SNP) chip assay in combination with bulk segregant analysis (BSA) also located SNPs in the same region. Two SNPs, two single sequence repeat (SSR) markers and one IP marker were located on the flanking region of the BnaA.GL gene at a distance of 0.6 cM. A gene homologous to ECERIFERUM1 (CER1) was located in the mapped region. A cDNA microarray chip assay revealed coordinated down regulation of genes encoding enzymes of the cuticular wax biosynthetic pathway in the glossy mutant, with BnCER1 being one of the most severely suppressed genes. CONCLUSIONS: Our results indicated that surface wax biosynthesis is broadly affected in the glossy mutant due to the suppression of the BnCER1 and other wax-related genes. These findings offer novel clues for elucidating the molecular basis of the glossy phenotype. BioMed Central 2013-12-14 /pmc/articles/PMC3881019/ /pubmed/24330756 http://dx.doi.org/10.1186/1471-2229-13-215 Text en Copyright © 2013 Pu et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Pu, Yuanyuan
Gao, Jie
Guo, Yanli
Liu, Tingting
Zhu, Lixia
Xu, Ping
Yi, Bin
Wen, Jing
Tu, Jinxing
Ma, Chaozhi
Fu, Tingdong
Zou, Jitao
Shen, Jinxiong
A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus
title A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus
title_full A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus
title_fullStr A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus
title_full_unstemmed A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus
title_short A novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in Brassica napus
title_sort novel dominant glossy mutation causes suppression of wax biosynthesis pathway and deficiency of cuticular wax in brassica napus
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3881019/
https://www.ncbi.nlm.nih.gov/pubmed/24330756
http://dx.doi.org/10.1186/1471-2229-13-215
work_keys_str_mv AT puyuanyuan anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT gaojie anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT guoyanli anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT liutingting anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT zhulixia anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT xuping anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT yibin anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT wenjing anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT tujinxing anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT machaozhi anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT futingdong anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT zoujitao anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT shenjinxiong anoveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT puyuanyuan noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT gaojie noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT guoyanli noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT liutingting noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT zhulixia noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT xuping noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT yibin noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT wenjing noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT tujinxing noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT machaozhi noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT futingdong noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT zoujitao noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus
AT shenjinxiong noveldominantglossymutationcausessuppressionofwaxbiosynthesispathwayanddeficiencyofcuticularwaxinbrassicanapus