生物技术通报 ›› 2026, Vol. 42 ›› Issue (8): 162-172.doi: 10.13560/j.cnki.biotech.bull.1985.2025-1395
• 研究报告 • 上一篇
李淑婷1, 王影1, 丁家豪1, 胡荣芳1, 李琛1, 宋亚楠2(
), 薛金爱1,3(
)
收稿日期:2025-12-20
出版日期:2026-08-26
发布日期:2026-08-17
通讯作者:
薛金爱xuejinai@sxau.edu.cn基金资助:
LI Shu-ting1, WANG Ying1, DING Jia-hao1, HU Rong-fang1, LI Chen1, SONG Ya-nan2(
), XUE Jin-ai1,3(
)
Received:2025-12-20
Published:2026-08-26
Online:2026-08-17
摘要:
目的 酯酰-ACP硫酯酶(fatty acyl-ACP thioesterase, FAT)在植物油脂合成过程中发挥重要作用。解析油莎豆CeFAT家族基因功能,为高油油莎豆新品种的培育及油脂代谢改良提供理论依据。 方法 基于油莎豆全基因组数据,对CeFAT基因家族进行系统鉴定与序列分析,并对CeFATA蛋白进行亚细胞定位,通过酵母与烟草遗传转化体系对CeFATA进行功能分析。 结果 在油莎豆基因组中共鉴定到3个CeFATs基因成员CeFATA、CeFATB1和CeFATB2,3个成员具有相似的基因结构和理化性质,且分别位于3条染色体上。系统进化分析表明,CeFATA与水稻(Oryza sativa)OsFATA的亲缘关系最近,CeFATB1和CeFATB2与大豆(Glycine max)GmFATB的亲缘关系较近。实时荧光定量PCR结果显示,CeFATs基因在块茎5个不同发育时期均高水平表达,其中CeFATA的表达量最高。亚细胞定位结果证实CeFATA定位于叶绿体。将CeFATA在酿酒酵母中过表达结果显示,过表达酵母总脂含量比野生型提高了3.1%。底物偏好性试验表明CeFATA对C18:1具有选择性。CeFATA在烟草中过表达结果显示,过表达烟草叶片和种子总脂肪酸含量比野生型分别提高了4.74%和8.4%,同时淀粉含量均显著下降,可溶性糖含量呈现出在叶片中下降而种子中提高的趋势,蛋白质含量变化不显著。 结论 CeFATA提高了酿酒酵母与烟草的总脂含量,促进质体中油酸的转运,使碳源从碳水化合物合成途径转向油脂合成途径。
李淑婷, 王影, 丁家豪, 胡荣芳, 李琛, 宋亚楠, 薛金爱. 油莎豆FAT家族全基因组鉴定及CeFATA的功能分析[J]. 生物技术通报, 2026, 42(8): 162-172.
LI Shu-ting, WANG Ying, DING Jia-hao, HU Rong-fang, LI Chen, SONG Ya-nan, XUE Jin-ai. Genome-wide Identification of the FAT Gene Family and Functional Analysis of CeFATA in Cyperus esculentus[J]. Biotechnology Bulletin, 2026, 42(8): 162-172.
图 1 油莎豆CeFATs基因染色体定位(A)及与3种植物(拟南芥、大豆和水稻)共线性分析(B)
Fig. 1 Chromosomal localization of CeFATs genes in C. esculentus (A) and synteny analysis with three plant species (Arabidopsis, soybean, and rice) (B)
图2 CeFATs与不同物种FAT蛋白的系统进化树分析油莎豆:Ce;海枣:Pd;椰子:Cn;香蕉:Ma;野蕉:Mb;拟南芥:At;水稻:Os;大豆:Gm;向日葵:Ha;烟草:Nt;芝麻:Si;凤梨:Ac
Fig. 2 Phylogenetic tree analysis of CeFATs and FAT proteins from different speciesCe: Cyperus esculentusis; Pd: Phoenix dactylifera;Cn: Cocos nucifera; Ma: Musa acuminata; Mb: Musa balbisiana; At: Arabidopsis thaliana; Os: Oryza sativa; Gm: Glycine max; Ha: Helianthus annuus; Nt: Nicotiana tabacum; Si: Sesamum indicum;Ac: Ananas comosus
图5 油莎豆CeFATs 在块茎不同发育时期的转录组表达谱分析(A)和RT-qPCR定量分析(B)不同小写字母表示存在显著差异(P<0.05)。下同
Fig. 5 Transcriptome expression profiling (A) and RT-qPCR analysis (B) of CeFATs at different tuber developmental stages in C. esculentusDifferent lowercase letters indicate significant differences (P<0.05). The same below
图7 转基因酵母总脂肪酸含量以及在外源添加脂肪酸下生长曲线A:总脂肪酸含量;B:外源添加4种脂肪酸下空载酵母生长曲线;C:外源添加4种脂肪酸下转基因酵母生长曲线
Fig. 7 Total fatty acid content and growth curve of transgenic yeast under exogenous fatty acid additionA: Total fatty acid content; B: Growth curves of empty-vector yeast with four exogenous fatty acids; C: Growth curves of transgenic yeast with four exogenous fatty acids
图9 转基因烟草株系生理生化指标A:叶片总脂含量。B:叶片蛋白含量。C:叶片淀粉含量。D:叶片可溶糖含量。E:种子总脂含量。F:种子蛋白含量。G:种子淀粉含量。H:种子可溶糖含量。WT:野生烟草;EV:转空载质粒烟草;CeFATA:转基因烟草株系。DW:干重
Fig. 9 Physiological and biochemical indices of transgenic tobacco linesA: Total lipid content in leaves. B: Protein content in leaves. C: Starch content in leaves. D: Soluble sugar content in leaves. E: Total lipid content in seeds. F: Protein content in seeds. G: Starch content in seeds. H: Soluble sugar content in seeds. WT: Wild tobacco; EV: Empty vector tobacco; CeFATA: Transgenic tobacco lines. DW: Dry weight
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