生物技术通报 ›› 2026, Vol. 42 ›› Issue (7): 163-172.doi: 10.13560/j.cnki.biotech.bull.1985.2025-1156
• 研究报告 • 上一篇
冉丹丹1, 邰森林1, 欧小宏1,2, 周涛1,2, 徐娇1,2(
)
收稿日期:2025-10-27
出版日期:2026-07-26
发布日期:2026-07-20
通讯作者:
徐娇xujiao2008mzk@163.com作者简介:第一联系人:同等贡献
基金资助:
RAN Dan-dan1, TAI Sen-lin1, OU Xiao-hong1,2, ZHOU Tao1,2, XU Jiao1,2(
)
Received:2025-10-27
Published:2026-07-26
Online:2026-07-20
摘要:
目的 尿苷二磷酸糖基转移酶(UGT)介导的糖基化修饰是植物色素合成的关键环节,鉴定乌天麻(Gastrodia elata Bl. f. glauca S. Chow)UGT基因家族成员的结构和功能,为解析不同生态型天麻茎色形成机制奠定基础。 方法 通过BLAST比对,结合Pfam和InterPro数据库鉴定乌天麻UGT基因家族成员;使用TBtools分析其理化性质、结构特征、染色体定位、系统发育、共线关系及顺式作用元件;结合转录组数据、RT-qPCR、总黄酮含量测定以及共表达网络分析,挖掘调控天麻茎色形成的关键UGT基因。 结果 从乌天麻基因组中鉴定得到50个UGT基因家族成员,均含有UDPGT保守结构域;系统进化分析显示UGT基因家族成员可聚类为10个组,其中Ⅲ、Ⅳ组成员数量最多,且部分成员在染色体上成簇分布;UGT启动子区富集光响应和激素响应元件;共线性分析表明,乌天麻与石斛、拟南芥分别存在22对和1对共线基因对。不同生态型天麻茎中UGT的相对表达量及总黄酮积累水平呈现差异,其中GeUGT72_04、GeUGT73_11和GeUGT73_15在血红天麻、绿天麻及乌天麻茎中表达量存在差异,且与总黄酮含量呈显著相关。共表达网络分析表明,GeUGT73_15与类黄酮合成相关基因PER42、FLS等呈显著正相关;GeUGT73_11则与CHS_1、4CL等呈显著负相关。 结论 不同生态型天麻茎色差异与黄酮类物质积累密切相关,GeUGT72_04、GeUGT73_11和GeUGT73_15可能通过调节天麻茎中黄酮类物质的合成,参与天麻茎色形成的调控过程,是影响天麻茎色分化的关键候选基因。
冉丹丹, 邰森林, 欧小宏, 周涛, 徐娇. 天麻尿苷二磷酸糖基转移酶基因家族鉴定与分析[J]. 生物技术通报, 2026, 42(7): 163-172.
RAN Dan-dan, TAI Sen-lin, OU Xiao-hong, ZHOU Tao, XU Jiao. Genome-wide Identification and Characterization of UDP-glycosyltransferase Gene Family in Gastrodia elata[J]. Biotechnology Bulletin, 2026, 42(7): 163-172.
| 基因Gene | 上游引物Forward primer (5'-3') | 下游引物Reverse primer (5'-3') |
|---|---|---|
| GeUGT92_01 | CGTTTGCCGCCTGGTCTATC | GGGACGGTGAAGGTGTCTGAGT |
| GeUGT72_04 | GATGCGTTGGCGTATTTGC | GCTCTCCAGCGTTGAGTTCC |
| GeUGT73_15 | TGGCTCAGCGTAAAAGAGATTG | GCCTCCAACCCTAATGCGAT |
| GeUGT78_01 | CCTCGTCGGTCATCTACATCG | AAATCCCTCTGGCAGGCTTG |
| Actin | CCGCATGAGCAAGGAAATAAC | AGGGAGGCAAGGATAGAACCA |
表1 RT-qPCR引物序列
Table 1 Primer sequences for RT-qPCR
| 基因Gene | 上游引物Forward primer (5'-3') | 下游引物Reverse primer (5'-3') |
|---|---|---|
| GeUGT92_01 | CGTTTGCCGCCTGGTCTATC | GGGACGGTGAAGGTGTCTGAGT |
| GeUGT72_04 | GATGCGTTGGCGTATTTGC | GCTCTCCAGCGTTGAGTTCC |
| GeUGT73_15 | TGGCTCAGCGTAAAAGAGATTG | GCCTCCAACCCTAATGCGAT |
| GeUGT78_01 | CCTCGTCGGTCATCTACATCG | AAATCCCTCTGGCAGGCTTG |
| Actin | CCGCATGAGCAAGGAAATAAC | AGGGAGGCAAGGATAGAACCA |
图1 乌天麻UGT基因家族成员系统发育与结构特征A:系统发育树;B:保守结构域;C:保守基序;D:基因结构
Fig. 1 Phylogenetic and structural characterization of UGT gene family members in G. elataA: Phylogenetic tree. B: Conserved domain. C: Conserved motifs. D: Gene structure
图6 天麻UGT基因表达模式分析A:3种生态型天麻茎中UGT基因表达量热图;基因的表达水平经过log2(FPKM+1)的转换;B:3种生态型天麻茎中UGT表达水平的RT-qPCR定量分析。RS:血红天麻茎;GS:绿天麻茎;TBS:乌天麻茎;不同小写字母表示差异显著性达到P<0.05,下同
Fig. 6 Analysis of UGT genes expression patterns in G. elataA: Heatmap of UGT genes expressions in the stems of three ecotypes of G. elata. Gene expressions were transformed using log2(FPKM+1). B: RT-qPCR quantification of UGT genes expression levels in stems of three ecotypes of G. elata. RS: Stem of G. elata Bl. GS: Stem of G. elata Bl. f. viridis Makino. TBS: Stem of G. elata Bl. f. glauca S. Chow. Different lowercase letters indicate statistically significant differences at P<0.05. The same below
图8 总黄酮含量与UGT基因的相关性分析*,**,***表示差异显著性分别达到P<0.05,P<0.01,P<0.001
Fig. 8 Correlation between total flavonoid contents and UGT genes*, **, and *** indicate statistically significant differences at P<0.05, P<0.01, and P<0.001
图9 类黄酮合成通路差异基因表达模式及其与UGT的共表达网络A:类黄酮合成通路差异基因表达模式;图中基因的表达水平经过log2(FPKM+1)的转换;B:类黄酮合成通路差异基因与UGT的共表达网络;共表达网络图显示类黄酮合成通路差异基因与UGT的调控关系;节点大小表示该基因与类黄酮合成差异基因的连接数,颜色深度与连接数正相关;连接线代表基因间相关性,红色为正相关(R≥0.9),蓝色为负相关(R≤-0.9)
Fig. 9 Expression patterns of differentially expressed genes in the flavonoid biosynthesis pathway and their co‑expression network with UGTA: Expression patterns of differentially expressed genes in the flavonoid biosynthesis pathway. Gene expressions were transformed using log2(FPKM+1). B: Co-expression network of UGT and flavonoid-biosynthesis DEGs. Co-expression network illustrating the regulatory relationships between differentially expressed genes in the flavonoid biosynthesis pathway and UGT. Node size indicates the number of connections each gene has with flavonoid biosynthesis-related differentially expressed genes, with darker color intensity indicating a higher number of connections. Edges indicate pairwise gene correlations: Red edges indicate positive correlations (R≥0.9), and blue edges indicate negative correlations (R≤-0.9)
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