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Nauen, J.

Publications and source records attributed to Nauen, J..

2 recordsLinked to original sources

Genetic architecture of the tomato fruit lipidome; new insights link lipid and volatile compounds

Tomato (Solanum lycopersicum L.) fruit flavor is determined by a combination of multiple volatile compounds, including several derived from lipids and fatty acids. Although fruit flavor has been intensively studied, the linkage between lipid metabolism and flavor remains largely undefined. Here, we performed a genome-wide association study (GWAS) and QTL mapping for the fruit lipid content from 550 tomato accessions and 107 backcross inbred lines (BILs) in two consecutive seasons. Over 130 lipid compounds were identified and mapped, allowing for the identification of over 600 metabolic QTL (mQTL). We further described and validated candidate genes associated with lipid content. Among them is a lipase-like protein (TomLLP) whose function was validated in vivo using overexpression lines in tomato and knockout mutants in Arabidopsis. We also identified functions for three enzymes: a class III lipase (Sl-LIP8), a cyclopropane-fatty-acyl-phospholipid synthase (CFAPS1), and Lipoxygenase C (TomLoxC). By utilizing knockout lines for CFAPS1 and CRISPR-Cas9 loss-of-function lines for Sl-LIP8 and TomLoxC, we demonstrated the functional importance of these enzymes in fruit lipid metabolism. Our study provides a comprehensive analysis of the tomato fruit lipidome and insights into key genes that shaped the natural variation in tomato lipid content and their links to flavor-associated volatile compounds.

molecular biology↗

The genetic architecture of the pepper metabolome provides insights into the regulation of capsianoside biosynthesis

Capsicum (pepper) is among the most economically important species worldwide, the fruit accumulates specialized metabolites with essential roles in plant environmental interaction and potential health benefits. However, the underlying genetic basis of their biosynthesis remains largely unknown. In this study, we developed and assessed both wild genetic variance and a bespoke mapping population to determine the genetic architecture of the pepper metabolome. The genetic analysis provided over 30 metabolic quantitative trait loci (mQTL) for over 1100 metabolites. We identified 92 candidate genes involved in various mQTL. Among the identified loci, we described and validated by transient overexpression a domestication gene cluster of eleven UDP-glycosyltransferases involved in monomeric capsianoside biosynthesis. We additionally constructed the biosynthetic reactions and annotated the genes involved in capsianoside biosynthesis in pepper. Given that differential glycosylation of acyclic diterpenoid glycosides contributes to plant resistance and acts as anticancer agents in humans, our data provide new insight, and resources for better understanding the biosynthesis of beneficial natural compounds to improve human health.

genetics↗