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Sarrou, E.

Publications and source records attributed to Sarrou, E..

2 recordsLinked to original sources

Multi-omics approach combined with functional characterization of genes enlightens the formation of certain aromatic compounds in Vitis vinifera cv. Assyrtiko grape berries

Assyrtiko, a grape variety with considerable historical importance in Greece, has recently garnered global interest due to its unique citrus and floral fragrances, elevated alcohol content, and its wines created on the volcanic island of Thira (Santorini). However, grown in various regions, such as Central Greece, its aromatic characteristics may vary, prompting an investigation into the molecular mechanisms accounting for these differences. This research focused on two Assyrtiko clones-- A16 and E11--grown in the Nemea, Peloponnese, which displayed distinct aromatic traits. Chemical analysis during mid-ripening indicated that clone E11 yielded significantly greater amounts of floral terpenoids, including linalool, geraniol, nerol, and -terpineol, while A16 was rich in C compounds like (Z)-3-hexenol and (Z)-3-hexenal that are linked to green and earthy scents. Transcriptomic analysis corroborated these results: clone E11 demonstrated an upregulation of genes related to pathogen resistance and to the terpene and phenylpropanoid biosynthetic pathways, such as DXS, MECPS, CCD1, COMT, AADC, and vanillin synthase, whereas clone A16 showed increased expression of genes related to volatile thiol production and flavonoid metabolism, including GST3 and GST4. Further, five key genes (RZS1, AAT, EGS1, AADC, and CYP76F14) from A16 were functionally characterized through heterologous expression in Saccharomyces cerevisiae and in vitro enzymatic assays. These findings offer new insights into the biochemical pathways determining aroma diversity in Vitis vinifera cv. Assyrtiko. HighlightAn integrated analysis of chemical and transcriptomic profiles from two clonal variants of Vitis vinifera var. Assyrtiko elucidates the molecular basis of aroma compound biosynthesis during grape berry ripening. This study includes the cloning and functional characterization of key aroma-related enzymes: raspberry ketone synthase (RZS1), eugenol synthase (EGS1), acetyltransferase of coniferyl alcohol (AAT), 8-hydroxylinalool synthase (CYP76F14) and phenylacetaldehyde synthase (AADC) from Assyrtiko berries.

plant biology↗

Genetic, epigenetic and metabolite variation in peripheral European Yew (Taxus baccata L.) populations at an unexplored part of the species natural distribution

Taxanes form effective anticancer agents, which are found in the leaves and barks of the yew tree (Taxus L.). Taxol(R) (also known as paclitaxel), 10-diacetylbacatin III, 10-deacetyltaxol III, baccatin III and cephalommanine are anti-neoplastic taxanes used for cancer treatment. Due to the high demand of taxanes, it is of great pharmaceutical interest to investigate unexplored to date population diversity. In this context, three peripheral Greek Taxus baccata L. populations (Mt Cholomon, Mt Olympus and Mt Vourinos) were investigated to identify the extent and structure of their genetic (based on microsatellite markers), epigenetic (based on methylation sensitive amplified markers) and chemodiversity (based on liquid chromatography mass spectrometry) profiles. Results showed that the concentration of taxanes varied considerably in relation to population and harvest season. The main taxane in T. baccata needles was 10-deacetylbacatin III (DAB), with concentrations ranging from 267.8 (Mt Vourinos) to 517.6 (Mt Olympus) mg kg-1 dw. Besides metabolite variation, notable levels of genetic diversity and significant population differentiation were revealed. These results, in conjunction to the high levels of total methylation found in all populations, indicate their potential adaptability under climatic change. The findings of this study pave the way for prospective breeding and conservation strategies of these important Taxus baccata L. populations for artificial selection of highly producing taxane trees and protection of local germplasm.

plant biology↗