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园艺学报 ›› 2025, Vol. 52 ›› Issue (12): 3257-3270.doi: 10.16420/j.issn.0513-353x.2024-0940

• 遗传育种·种质资源·分子生物学 • 上一篇    下一篇

韭菜S-烃基半胱氨酸亚砜合成与分解代谢关键基因筛选

赵超胜1, 陈梦然1, 郑永琪1, 李菊1, 马培芳3, 肖雪梅1,2,*(), 郁继华1,2   

  1. 1 甘肃农业大学园艺学院,兰州 730070
    2 甘肃农业大学省部共建干旱生境作物学国家重点实验室,兰州 730070
    3 平顶山市农业科学院,河南平顶山 467000
  • 收稿日期:2025-01-17 修回日期:2025-05-18 出版日期:2025-12-25 发布日期:2025-12-20
  • 通讯作者:
    *(E-mail:
  • 基金资助:
    甘肃省重点研发计划项目(23YFNA0021); 甘肃农业大学青年导师扶持基金项目(GAU-QDFC-2022-03); 国家自然科学基金项目(32160703)

Screening of Key Genes Involved in the Synthesis and Catabolism of S-Alk(en)yl-L-cysteine Sulfoxide in Chinese Chive

ZHAO Chaosheng1, CHEN Mengran1, ZHENG Yongqi1, LI Ju1, MA Peifang3, XIAO Xuemei1,2,*(), YU Jihua1,2   

  1. 1 College of Horticulture,Gansu Agricultural University,Lanzhou 730070,China
    2 State Key Laboratory of Aridland Crop Science(Gansu Agricultural University),Lanzhou 730070,China
    3 Pingdingshan Academy of Agricultural Science,Pingdingshan,Henan 467000,China
  • Received:2025-01-17 Revised:2025-05-18 Published:2025-12-25 Online:2025-12-20

摘要:

为了进一步丰富韭菜基因组信息,挖掘韭菜S-烃基半胱氨酸亚砜[S-alk(en)yl-L-cysteine sulfoxides,CSOs]合成代谢相关基因,测定50份韭菜种质资源的S-烯丙基半胱氨酸亚砜(S-allyl-L- cysteine sulfide,ACSO)、S-甲基半胱氨酸亚砜(S-methyl-L-cysteine sulfide,MCSO)和S-丙烯基半胱氨酸亚砜(S-propenyl-L-cysteine sulfide,PeCSO)3种S-烃基半胱氨酸亚砜的含量,筛选出S-烃基半胱氨酸亚砜总含量最高的韭菜品种‘黄格子’和最低的‘哈密钩韭’。通过转录组测序比较两个品种基因表达的差异性,筛选与S-烃基半胱氨酸亚砜合成和代谢相关的差异基因。结果显示,转录组数据共筛选出差异表达基因11 493个,其中上调的有6 203个,下调的有5 290个。GO数据库富集到S-烃基半胱氨酸亚砜生物合成相关的硫代谢通路。KEGG分析共富集到122条通路,其中与S-烃基半胱氨酸亚砜合成代谢相关的有硫代谢、半胱氨酸代谢、谷胱甘肽代谢通路。进一步通过基因注释得到参与CSO合成和代谢的关键基因51个,其中4个含黄素单加氧酶基因FMOs、2个γ-谷氨酰转肽酶基因GGT和7个蒜氨酸酶基因Alliinase均在‘黄格子’中高表达,推测其在调控韭菜S-烃基半胱氨酸亚砜的合成与分解代谢中发挥重要作用。

关键词: 韭菜, 转录组, S-烃基半胱氨酸亚砜, 合成与分解代谢

Abstract:

The aim of this study was to further enrich the genomic information and uncover genes related to the synthesis and catabolism of S-alk(en)yl-L-cysteine sulfoxides(CSOs). In the study,the content of three types of CSOs,namely S-allyl-L-cysteine sulfide(ACSO),S-methyl-L-cysteine sulfide(MCSO), and S-propenyl-L-cysteine sulfide(PeCSO),was measured in 50 Chinese chives germplasm resources. Based on these result,two cultivars were selected for further analysis:‘Huanggezi’(HGZ),which exhibited the highest S-alk(en)yl-L-cysteine sulfoxide content,and‘Hami Goujiu’(HMGJ),which had the lowest S-alk(en)yl-L-cysteine sulfoxide content. Then,transcriptome sequencing was performed to compare gene expression differences between the two cultivars,and genes associated with the synthesis and catabolism of S-alk(en)yl-L-cysteine sulfoxides were identified. A total of 11 493 differentially expressed genes(DEGs)were identified,with 6 203 up-regulated,and 5 290 down-regulated. Gene Ontology(GO)enrichment analysis revealed that sulfur metabolic pathways related to S-alk(en)yl-L-cysteine sulfoxide biosynthesis were significantly enriched. Additionally,KEGG pathway analysis identified 122 enriched pathways,including those involved in sulfur metabolism,cysteine metabolism,and glutathione metabolism,which are closely associated with the synthesis and metabolism of S-alk(en)yl-L-cysteine sulfoxides. Through gene annotation,51 key genes involved in CSOs synthesis and catabolism were obtained. Among these,four flavin monooxygenase genes(AtuFMOs),two gamma glutamyl transpeptidase genes(AtuGGT),and seven alliinase genes(AtuALL)were found to be highly expressed in the‘Huanggezi’cultivar. These findings suggest that these genes may play a crucial role in regulating the synthesis and degradation of CSOs in Chinese chive.

Key words: Chinese chive, transcriptome, S-alk(en)yl-L-cysteine sulfoxides, syntheis and catabolism