Differential Expression Analysis of Genes Related to Flesh Color in Hylocereu polyrhizus and Hylocereu undatus

Pan-Yang Guo, Hua Tang, Chengli Liu, Shuang-shuang Wei, Jiaquan Huang
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引用次数: 2

Abstract

Pitaya is a burgeoningly tropical fruit, there are two common varieties, red peel with red pulp and red peel with white pulp. To investigate the reason of different colors in two kinds of pitaya, explore differencially expressed genes (DEGs), in this study, we profiled transcriptome in flesh of two varieties (Hylocereu polyrhizus and Hylocereu undatus) in green stage and mature stage respectively. 53 240 reads with high quality were obtained. Analysing the DEGs, we found there were bigger differences in different stage rather than different variety. Gene ontology (GO) functional analysis and KEGG pathway analysis were adopted in R1 VS R3 and W3 VS W3. Through GO analysis, we found many genes enriched in protein binding transcription factor activity in molecule founction. Through KEGG pathway analysis, we found most genes were enriched in biosynthesis of secondary metabolism, amino acid and nucleic acid metabolism, and tyrosine metabolism. In addintion, tyrosine was the precursor of betalaines. In conclusion, the development of Hylocereu polyrhizus accompanying by the synthesis of a large amount of betalaines, tyrosine played a key role as a precursor, and the synthesis of this pigment required a mass of amino acids, enzymes, and transcription factors. Betalaines synthesis pathway has not cleared yet, this study explored key genes related to betalaines synthesis and provided useful information for optimizing the betalaines synthesis pathway, which was the basis of later experiments.
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肉色相关基因的差异表达分析
火龙果是一种新兴的热带水果,有两种常见的品种,红皮带红果肉和红皮带白果肉。为了探究两种火龙果颜色不同的原因,探讨差异表达基因(DEGs),本研究分别对两种火龙果(Hylocereu polyrhizus和Hylocereu undatus)在青期和成熟期果肉的转录组进行了分析。获得53240条高质量reads。结果表明,不同生育期的差异大于品种间的差异。在R1 VS R3和W3 VS W3中采用基因本体(GO)功能分析和KEGG通路分析。通过氧化石墨烯分析,我们在分子功能上发现了许多富含蛋白结合转录因子活性的基因。通过KEGG通路分析,我们发现大多数基因富集于次生代谢、氨基酸和核酸代谢、酪氨酸代谢的生物合成中。此外,酪氨酸是甜菜碱的前体。综上所述,多根水合木的发育伴随大量甜菜碱和酪氨酸的合成,而酪氨酸的合成需要大量的氨基酸、酶和转录因子。甜菜碱的合成途径尚未明确,本研究探索了甜菜碱合成的关键基因,为优化甜菜碱的合成途径提供了有用的信息,为后续的实验奠定了基础。
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