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Rickett, D. V.

Publications and source records attributed to Rickett, D. V..

2 recordsLinked to original sources

Carotenoid retention during post-harvest storage of Capsicum annuum: the role of the fruit surface structure.

Degradation of carotenoids in food crops during post-harvest storage results in major economic and nutritional losses. In this study, a pepper (Capsicum annuum) panel for post-harvest carotenoid retention was studied to elucidate underlying mechanisms associated with this commercial trait of interest. Quantitative determination of carotenoid pigments and concurrent cellular analysis indicated that those pepper fruit with thicker lipid exocarp layers and smooth surfaces, following post-harvest drying and storage, possessed increased carotenoid retention. Total cutin monomer content increased in high carotenoid retention fruits and sub-epidermal cutin deposits were responsible for the difference in exocarp thickness. Cutin biosynthesis and cuticle precursor transport genes were differentially expressed between high and low carotenoid retention genotypes, and this supports the finding that fruit cuticle biosynthesis is associated with carotenoid retention. Carotenoids were located within cells embedded within the sub-epidermal cutin layer, and these carotenoids were protected from degradation due to the lack of permeability of the fruit surface to reactive oxygen species, and their precursors. The identification of a novel role for the pepper fruit surface in protecting against carotenoid degradation serves as an important discovery for the function of the fruit cuticle and provides an exploitable resource to enhance fruit quality. Highlight statementCarotenoid pigments in Chilli pepper confer post-harvest colour and nutritional quality. Analysis of diverse commercial genotypes indicates the involvement of the fruit surface in carotenoid retention

plant biology↗

The characterisation of phytoene synthase-1 and 2, and 1-D-deoxy-xylulose 5-phosphate synthase genes from red chilli pepper (Capsicum annuum)

The red colouration of ripe chilli pepper fruit is due to the presence of the carotenoid capsanthin. 1-D-deoxy-xylulose 5-phosphate synthase (DXS) and phytoene synthase(s) (PSY) are influential biosynthetic steps in the carotenoid pathway. A panel of chilli accessions for varying fruit colour intensity revealed the correlation of carotenoid content with PSY and DXS transcript levels. The PSY and DXS genes were sequenced from high and low carotenoid genotypes to deduce potential allelic variation. PSY-1 and -2 showed tissue specific expression, with PSY-1and 2 expressed in chromoplast and chloroplast containing tissues, respectively. Protein modelling, phylogenetic analysis and transcription factor analysis was conducted to understand how the allelic variation identified could affect carotenoid biosynthesis and regulation, and subsequently colour intensity phenotype. A candidate mutation located in the transit peptide of the PSY-1 protein sequence was identified in the low colour intensity genotype. Within the promoter region of the DXS gene present in the high colour intensity genotype sequence variation was determined in the glyceraldehyde 3-phosphate binding motif (GAPF) of the promoter region. These data can be exploited to develop tools and resources for the breeding of high colour intensity chilli pepper fruit. Key policy highlightsUsing the molecular findings disclosed in this article the potential exists to develop molecular markers for the breeding varieties of chilli peppers with improved aesthetic consumer preference and nutritional attributes.

molecular biology↗