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1.
Plant Physiol Biochem ; 150: 151-161, 2020 May.
Article in English | MEDLINE | ID: mdl-32142988

ABSTRACT

Brassica is one of the most economically important genus of the Brassicaceae family, encompassing several key crops like Brassica napus (cabbage) and broccoli (Brassica oleraceae var. italica). This family is well known for their high content of characteristic secondary metabolites such as glucosinolates (GLS) compounds, recognize for their beneficial health properties and role in plants defense. In this work, we have looked through gene clusters involved in the biosynthesis of GLS, by combining genomic analysis with biochemical pathways and chemical diversity assessment. A total of 101 Brassicaceae genes involved in GLS biosynthesis were identified, using a multi-database approach. Through a UPGMA and PCA analysis on the 101 GLS genes recorded, revealed a separation between the genes mainly involved in GLS core structure synthesis and genes belonging to the CYP450s and MYBs gene families. After, a detailed phylogenetic analysis was conducted to better understand the disjunction of the aliphatic and indolic genes, by focusing on CYP79F1-F2 and CYP81F1-F4, respectively. Our results point to a recent diversification of the aliphatic CYP79F1 and F2 genes in Brassica crops, while for indolic genes an earliest diversification is observed for CYP81F1-F4 genes. Chemical diversity revealed that Brassica crops have distinct GLS chemo-profiles from other Brassicaceae genera; being highlighted the high contents of GLS found among the Diplotaxis species. Also, we have explored GLS-rich species as a new source of taxa with great agronomic potential, particularly in abiotic stress tolerance, namely Diplotaxis, the closest wild relatives of Brassica crops.


Subject(s)
Brassica , Brassicaceae , Glucosinolates , Brassicaceae/chemistry , Brassicaceae/classification , Brassicaceae/genetics , Genetic Variation , Genomics , Glucosinolates/chemistry , Phylogeny , Stress, Physiological/genetics
2.
Am J Bot ; 92(7): 1059-67, 2005 Jul.
Article in English | MEDLINE | ID: mdl-21646127

ABSTRACT

The morphology and anatomy of the labellar epidermal cells and the way in which they are arranged are described in an attempt to locate and characterize the osmophore in Ophrys fusca and O. lutea. The micromorphology of the labellum of these two species is similar. Four types of epidermal cells are present on the adaxial surface of the labellum. Long unicellular trichomes with straight tips cover the basal region of the labellum, whereas short unicellular trichomes with polygonal flattened bases form the reflective median speculum. The apical region of the labellum possesses a villous indumentum of long acuminate trichomes with bent or sinuate tips. Large smooth-walled, dome-shaped papillae occur on the margins and on the distal region of the abaxial surface of the labellum. These remarkable papillae have high polarity; the protoplasm at the apex of each cell contains several small vacuoles, while a prominent nucleus surrounded by numerous hypertrophied amyloplasts occurs at the opposite end of the cell. Positive reactions to Vogel's staining test and to Sudan black B enabled us to conclude that the osmophores of both species are composed of these peculiar secretory epidermal cells and by two or three subsecretory layers of parenchyma cells.

3.
New Phytol ; 105(1): 67-70, 1987 Jan.
Article in English | MEDLINE | ID: mdl-33874035

ABSTRACT

The host cells from endomycorrhizas of Ophrys lutea Cav. contain many coated vesicles associated with dictyosomes, with a membrane system (probably partially coated reticulum) and with the host's sequestration plasmalemma. The contents of coated vesicles stain with neither the PATAg test for polysaccharides nor with ruthenium red. The involvement of coated vesicles in the host/endophyte interactions during the establishment of O. lutea endomycorrhizas is discussed.

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