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Metabolomics-assisted refinement of the pathways of steroidal glycoalkaloid biosynthesis in the tomato clade 被引量:6

Metabolomics-assisted refinement of the pathways of steroidal glycoalkaloid biosynthesis in the tomato clade
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摘要 Steroidal glycoalkaloids(SGAs) are nitrogen-containing secondary metabolites of the Solanum species,which are known to have large chemical and bioactive diversity in nature.While recent effort and development on LC/MS techniques for SGA profiling have elucidated the main pathways of SGA metabolism in tomato,the problem of peak annotation still remains due to the vast diversity of chemical structure and similar on overlapping of chemical formula.Here we provide a case study of peak classification and annotation approach by integration of species and tissue specificities of SGA accumulation for provision of comprehensive pathways of SGA biosynthesis.In order to elucidate natural diversity of SGA biosynthesis,a total of 169 putative SGAs found in eight tomato accessions(Soianum lycopersicum, S.pimpinellifolium, S.cheesmaniae, S.chmielewskii, S.neorickii,S.peruvianum,S.habrochaites,S.pennellii) and four tissue types were used for correlation analysis.The results obtained in this study contribute annotation and classification of SGAs as well as detecting putative novel biosynthetic branch points.As such this represents a novel strategy for peak annotation for plant secondary metabolites. Steroidal glycoalkaloids(SGAs) are nitrogen-containing secondary metabolites of the Solanum species,which are known to have large chemical and bioactive diversity in nature.While recent effort and development on LC/MS techniques for SGA profiling have elucidated the main pathways of SGA metabolism in tomato,the problem of peak annotation still remains due to the vast diversity of chemical structure and similar on overlapping of chemical formula.Here we provide a case study of peak classification and annotation approach by integration of species and tissue specificities of SGA accumulation for provision of comprehensive pathways of SGA biosynthesis.In order to elucidate natural diversity of SGA biosynthesis,a total of 169 putative SGAs found in eight tomato accessions(Soianum lycopersicum, S.pimpinellifolium, S.cheesmaniae, S.chmielewskii, S.neorickii,S.peruvianum,S.habrochaites,S.pennellii) and four tissue types were used for correlation analysis.The results obtained in this study contribute annotation and classification of SGAs as well as detecting putative novel biosynthetic branch points.As such this represents a novel strategy for peak annotation for plant secondary metabolites.
出处 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2014年第9期864-875,共12页 植物学报(英文版)
基金 financially supported by the Potsdam university(K.S.) the Max Planck Society(to L.P.,A.F.,and T.T.) an Alexander von Humboldt grant(to T.T.) the European Commission's Directorate-General for Research within the 7~(th) Framework Program(FP7/2007-2013) under grant agreements 270089(MULTIBIOPRO)
关键词 Fruit ripening GLYCOALKALOIDS secondary metabolite Solanum lycopersicum tomato accessions Fruit ripening glycoalkaloids secondary metabolite Solanum lycopersicum tomato accessions
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