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Combined full-length transcriptomic and metabolomic analysis reveals the molecular mechanisms underlying nutrients and taste components development in Primulina juliae
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Abstract
Background
Primulina juliae has recently emerged as a novel functional vegetable, boasting a significant biomass and high calcium content. Various breeding strategies have been employed to the domestication of P. juliae. However, the absence of genome and transcriptome information has hindered the research of mechanisms governing the taste and nutrients in this plant. In this study, we conducted a comprehensive analysis, combining the full-length transcriptomics and metabolomics, to unveil the molecular mechanisms responsible for the development of nutrients and taste components in P. juliae.
Results
We obtain a high-quality reference transcriptome of P. juliae by combing the PacBio Iso-seq and Illumina sequencing technologies. A total of 58,536 cluster consensus sequences were obtained, including 28,168 complete protein coding transcripts and 8,021 Long Non-coding RNAs. Significant differences were observed in the composition and content of compounds related to nutrients and taste, particularly flavonoids, during the leaf development. Our results showed a decrease in the content of most flavonoids as leaves develop. Malate and succinate accumulated with leaf development, while some sugar metabolites were decreased. Furthermore, we identified the different accumulation of amino acids and fatty acids, which are associated with taste traits. Moreover, our transcriptomic analysis provided a molecular basis for understanding the metabolic variations during leaf development. We identified 4,689 differentially expressed genes in the two developmental stages, and through a comprehensive transcriptome and metabolome analysis, we discovered the key structure genes and transcription factors involved in the pathways.
Conclusions
This study provides a high-quality reference transcriptome and reveals molecular mechanisms associated with the development of nutrients and taste components in P. juliae. These findings will enhance our understanding of the breeding and utilization of P. juliae as a vegetable.
Springer Science and Business Media LLC
Title: Combined full-length transcriptomic and metabolomic analysis reveals the molecular mechanisms underlying nutrients and taste components development in Primulina juliae
Description:
Abstract
Background
Primulina juliae has recently emerged as a novel functional vegetable, boasting a significant biomass and high calcium content.
Various breeding strategies have been employed to the domestication of P.
juliae.
However, the absence of genome and transcriptome information has hindered the research of mechanisms governing the taste and nutrients in this plant.
In this study, we conducted a comprehensive analysis, combining the full-length transcriptomics and metabolomics, to unveil the molecular mechanisms responsible for the development of nutrients and taste components in P.
juliae.
Results
We obtain a high-quality reference transcriptome of P.
juliae by combing the PacBio Iso-seq and Illumina sequencing technologies.
A total of 58,536 cluster consensus sequences were obtained, including 28,168 complete protein coding transcripts and 8,021 Long Non-coding RNAs.
Significant differences were observed in the composition and content of compounds related to nutrients and taste, particularly flavonoids, during the leaf development.
Our results showed a decrease in the content of most flavonoids as leaves develop.
Malate and succinate accumulated with leaf development, while some sugar metabolites were decreased.
Furthermore, we identified the different accumulation of amino acids and fatty acids, which are associated with taste traits.
Moreover, our transcriptomic analysis provided a molecular basis for understanding the metabolic variations during leaf development.
We identified 4,689 differentially expressed genes in the two developmental stages, and through a comprehensive transcriptome and metabolome analysis, we discovered the key structure genes and transcription factors involved in the pathways.
Conclusions
This study provides a high-quality reference transcriptome and reveals molecular mechanisms associated with the development of nutrients and taste components in P.
juliae.
These findings will enhance our understanding of the breeding and utilization of P.
juliae as a vegetable.
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