生物技术通报 ›› 2026, Vol. 42 ›› Issue (9): 169-177.doi: 10.13560/j.cnki.biotech.bull.1985.2025-1354
• 植物发育生物学专题 • 上一篇
张静1,2(
), 李圆圆1, 王燕1, 江雅洁1, 杨寒冰1, 柴文臣1,2, 霍辰思1,2, 罗丹1,2, 阎世江1
收稿日期:2025-12-11
出版日期:2026-09-26
发布日期:2026-09-16
通讯作者:
张静zhangjing_1010@126.com基金资助:
ZHANG Jing1,2(
), LI Yuan-yuan1, WANG Yan1, JIANG Ya-jie1, YANG Han-bing1, CHAI Wen-chen1,2, HUO Chen-si1,2, LUO Dan1,2, YAN Shi-jiang1
Received:2025-12-11
Published:2026-09-26
Online:2026-09-16
摘要:
目的 FLC是调控植物开花的关键基因之一,通过克隆青花菜BoFLC3,并对其功能进行研究,以期为阐明青花菜开花转变的分子调控机制提供理论依据。 方法 以青花菜为材料,同源克隆获得BoFLC3,通过生物信息学工具分析其序列特性、保守结构域及系统发育关系;采用RT-qPCR技术检测BoFLC3在不同组织及不同处理下的表达谱,明确其表达特异性;构建亚细胞定位载体进行烟草瞬时过表达,明确其蛋白的细胞定位情况;进一步在拟南芥中异源过表达BoFLC3,并通过对比转基因株系与野生型植株的抽薹和开花表型差异,分析该基因在开花过程中的作用。 结果 BoFLC3的cDNA全长为594 bp,编码197个氨基酸,其编码蛋白含有典型的MADS结构域和K-box结构域,蛋白定位于细胞核。系统进化分析表明,青花菜FLC3与结球甘蓝FLC的同源性较高。表达模式分析显示,BoFLC3在成熟叶和茎尖中表达水平较高,且在低温处理后的青花菜茎尖中表达量显著下降。在拟南芥中异源过表达BoFLC3可显著推迟植株的抽薹及开花时间,过表达株系中开花促进基因AtFT、AtLFY、AtAP1和AtSPL的表达水平下调,而开花抑制基因AtSVP的表达则上调。 结论 BoFLC3在植物开花过程中发挥关键作用,其异源过表达可显著延迟抽薹与开花,表明该基因在成花诱导途径中发挥负调控功能。
张静, 李圆圆, 王燕, 江雅洁, 杨寒冰, 柴文臣, 霍辰思, 罗丹, 阎世江. 青花菜BoFLC3的克隆与开花调控机制研究[J]. 生物技术通报, 2026, 42(9): 169-177.
ZHANG Jing, LI Yuan-yuan, WANG Yan, JIANG Ya-jie, YANG Han-bing, CHAI Wen-chen, HUO Chen-si, LUO Dan, YAN Shi-jiang. Cloning and Flowering Regulation Mechanism of BoFLC3 in Broccoli[J]. Biotechnology Bulletin, 2026, 42(9): 169-177.
植株 Group | 抽薹时间 Bolting time (d) | 莲座叶片数 Number of leaves | 初花时间 Time to first flowering (d) | 初花期株高 Plant height at first flowering (cm) | 初花期花薹粗 Flower stalk diameter at first flowering (mm) |
|---|---|---|---|---|---|
| WT | 27.8±2.0c | 8.4±0.9c | 35.6±2.1c | 10.3±2.2b | 0.68±0.07b |
| OE1 | 31.4±3.8b | 10±0.9b | 39.4±1.9b | 14.8±1.0a | 0.65±0.05b |
| OE2 | 38.4±6.8a | 12.9±2.2a | 42.7±3.7a | 8.5±2.7c | 0.78±0.08a |
表1 过表达BoFLC3拟南芥T3代表型分析
Table 1 Phenotypic analysis of Arabidopsis plants overexpressing BoFLC3 at T3 generation
植株 Group | 抽薹时间 Bolting time (d) | 莲座叶片数 Number of leaves | 初花时间 Time to first flowering (d) | 初花期株高 Plant height at first flowering (cm) | 初花期花薹粗 Flower stalk diameter at first flowering (mm) |
|---|---|---|---|---|---|
| WT | 27.8±2.0c | 8.4±0.9c | 35.6±2.1c | 10.3±2.2b | 0.68±0.07b |
| OE1 | 31.4±3.8b | 10±0.9b | 39.4±1.9b | 14.8±1.0a | 0.65±0.05b |
| OE2 | 38.4±6.8a | 12.9±2.2a | 42.7±3.7a | 8.5±2.7c | 0.78±0.08a |
图1 BoFLC3的克隆及其编码氨基酸序列A:BoFLC3的PCR扩增(M:2 000 bp DNA marker;1:BoFLC3);B:BoFLC3的核苷酸与氨基酸序列
Fig. 1 Cloning and deduced amino acid sequence of BoFLC3A: PCR amplification of BoFLC3 (M: 2 000 bp DNA marker; 1: BoFLC3). B: The nucleotide and amino acid sequences of BoFLC3
图2 BoFLC3蛋白的序列比对与进化关系A:BoFLC3蛋白的氨基酸序列与其他物种FLC的比对;B:BoFLC3与其他物种FLC蛋白的系统发育树;红色框线代表本研究所用物种
Fig. 2 Sequence alignment and phylogenetic analysis of BoFLC3 proteinA: Sequence alignment of BoFLC3 with homologous FLC proteins from diverse species. B: Phylogenetic tree of BoFLC3 and related FLC proteins. Red box indicates the species used in this study
图3 青花菜BoFLC3的组织表达模式CK:生长在25 ℃/17 ℃的对照植株;V15:17 ℃/9 ℃处理15 d的植株。*P<0.05;**P<0.01
Fig. 3 Tissue expression pattern of BoFLC3 in broccoliCK: Control plant grown at 25 ℃/17 ℃. V15: Plants treated at 17 ℃/9 ℃ for 15 d. * P<0.05, ** P<0.01
图5 转基因拟南芥植株的鉴定A:转基因拟南芥中BoFLC3的PCR鉴定(M:2 000 bp DNA marker,1:pBI121-BoFLC3(阳性对照),2:野生型(阴性对照),3‒4:过表达BoFLC3拟南芥);B:转基因株系中BoFLC3的相对表达量;C:过表达BoFLC3拟南芥植株表型。WT:野生型,OE:过表达BoFLC3植株。不同小写字母表示在P<0.05水平差异显著。下同
Fig. 5 Identification of transgenic Arabidopsis plantsA: PCR verification of BoFLC3 in transgenic Arabidopsis plants (M: 2 000 bp DNA marker, 1: pBI121-BoFLC3 plasmid (positive control), 2: wild-type (negative control), 3‒4: transgenic Arabidopsis plants). B: The relative expression level of BoFLC3 in transgenic plants. C: Phenotypes of BoFLC3 overexpression transgenic Arabidopsis plants. WT: Wild type. OE: BoFLC3 overexpression lines. Different letters indicate significant differences at P<0.05. The same below
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