生物技术通报 ›› 2026, Vol. 42 ›› Issue (9): 70-81.doi: 10.13560/j.cnki.biotech.bull.1985.2025-0914
宋文清1,2, 陈智翔1, 李雨倩1,2, 王海龙1, 邢国芳2(
), 张杰伟1(
)
收稿日期:2025-08-23
出版日期:2026-09-26
发布日期:2026-09-16
通讯作者:
邢国芳sxauxgf@126.com基金资助:
SONG Wen-qing1,2, CHEN Zhi-xiang1, LI Yu-qian1,2, WANG Hai-long1, XING Guo-fang2(
), ZHANG Jie-wei1(
)
Received:2025-08-23
Published:2026-09-26
Online:2026-09-16
摘要:
TIFY转录因子是植物特有的一类转录因子,含有高度保守的TIF[F/Y]XG基序,可分为TIFY、JAZ、PPD和ZML 4个亚家族。随着植物基因组学和功能基因组学的发展,TIFY转录因子在多种植物中被鉴定,且该基因家族在不同物种中数量差异显著。本文综述了TIFY转录因子的结构特征,系统阐述了其在植物生长发育(如叶片、花器官等)、激素信号转导(如茉莉酸、脱落酸等)以及逆境胁迫响应(包括生物胁迫、低温、干旱等)中的作用。现有研究已明确TIFY转录因子在植物生长发育与逆境响应中具有重要作用,然而其特异性作用机制尚未完全阐明;翻译后修饰(如甲基化、磷酸化等)对其功能的精细调控作用亦有待深入解析。未来可整合比较基因组学,系统分析不同科属、不同倍性植物TIFY基因的共线性区块与演化轨迹,揭示其功能分化规律;依托X射线晶体学、冷冻电镜等结构生物学技术,解析TIFY蛋白核心结构域(如TIFY、JAS)的三维结构,明确其与靶蛋白、激素配体的互作界面;结合CRISPR-Cas9等基因编辑技术,深入解析TIFY转录因子调控机理,并通过基因工程策略定向开展遗传改良,为培育抗逆优质、高产广适的新一代作物提供重要候选基因。
宋文清, 陈智翔, 李雨倩, 王海龙, 邢国芳, 张杰伟. TIFY转录因子在植物生长发育和逆境胁迫响应中的作用[J]. 生物技术通报, 2026, 42(9): 70-81.
SONG Wen-qing, CHEN Zhi-xiang, LI Yu-qian, WANG Hai-long, XING Guo-fang, ZHANG Jie-wei. Roles of TIFY Transcription Factors in Plant Growth, Development and Stress Adaptation[J]. Biotechnology Bulletin, 2026, 42(9): 70-81.
| 物种Species | 基因Gene | 功能Function | 参考文献 Reference |
|---|---|---|---|
| 拟南芥 Arabidopsis thaliana | TIFY8 | 叶绿素损失减缓、光系统II功能维持更久,延缓叶片衰老进程 | [ |
| 甘蓝型油菜 Brassica napus | BnaJAZ2 BnaJAZ3 | BnaJAZ2正向调控耐旱性 BnaJAZ3负向调控耐盐性 | [ |
| 辣椒 Capsicum annuum | CaTIFY7 CaTIFY10b | 提高植物叶片的活性氧含量,正向调控辣椒对低温胁迫的抗性 | [ |
| 菊花 Chrysanthemum morifolium | CmJAZ1-like CmBPE2 | CmJAZ1-like通过与CmBPE2相互作用,从而共同影响花瓣大小 | [ |
| 鹰嘴豆 Cicer arietinum | Ca4-TIFY4B | 调控植株活力相关性状(叶片大小、种子大小) | [ |
| 黄瓜 Cucumis sativus | CsJAZ2 CsJAZ6, CsZML2 | 过表达植株中ROS清除系统的POD、SOD和CAT酶活性显著降低,负调控黄瓜对灰霉病的抗性 | [ |
| 苦荞 Fagopyrum tataricum | FtJAZ10, FtJAZ12 | 抑制热诱导的细胞死亡,提高烟草对热胁迫的耐受能力 | [ |
| 大豆 Glycine max | GmTIFY10e, GmTIFY10g | 主根长度和鲜重均显著增高,正向调控植物的盐胁迫耐受性 | [ |
| 陆地棉 Gossypium hirsutum | GhTIFY9 | 棉花抗黄萎病反应的正向调控因子,增强棉花对黄萎病菌的敏感性 | [ |
| 枸杞 Lycium barbarum | LrJAZ2 | 气孔密度和气孔指数显著降低,叶片失水率下降,负调控植物气孔发育 | [ |
| 烟草 Nicotiana tabacum | NtTIFY7 | NtTIFY7 沉默植株对青枯病的敏感性显著增强。正向调控烟草对青枯病的抗性 | [ |
| 茄子 Solanum melongena | SmJAZ10 | 负向调控叶片叶绿素合成 | [ |
| 丹参 Salvia miltiorrhiza | SmWD40-170 | 促进根系生长和次生代谢物积累,调节气孔运动来应对干旱胁迫 | [ |
| 马铃薯 Solanum tuberosum | StJAZ23 | 促进根系发育,增强根系活力,提升抗氧化能力,调控胁迫相关激素积累 | [ |
| 蓝莓 Vaccinium corymbosum | VcTIFY6B, VcTIFY9, VcTIFY10A | 增加果实的横径、单果质量及种子数目,调控果实发育 | [ |
| 葡萄 Vitis vinifera | VvTIFY10A | 促进果实纵向生长、抑制横向生长,对果实形状产生调控作用 | [ |
| 玉米 Zea mays | ZmJAZ13 | 调节次生代谢产物和酶活性,增强植物对干旱和盐胁迫的耐受性 | [ |
表1 2020‒2025年植物TIFY基因及其功能
Table 1 Plant TIFY genes and their functions from 2020 to 2025
| 物种Species | 基因Gene | 功能Function | 参考文献 Reference |
|---|---|---|---|
| 拟南芥 Arabidopsis thaliana | TIFY8 | 叶绿素损失减缓、光系统II功能维持更久,延缓叶片衰老进程 | [ |
| 甘蓝型油菜 Brassica napus | BnaJAZ2 BnaJAZ3 | BnaJAZ2正向调控耐旱性 BnaJAZ3负向调控耐盐性 | [ |
| 辣椒 Capsicum annuum | CaTIFY7 CaTIFY10b | 提高植物叶片的活性氧含量,正向调控辣椒对低温胁迫的抗性 | [ |
| 菊花 Chrysanthemum morifolium | CmJAZ1-like CmBPE2 | CmJAZ1-like通过与CmBPE2相互作用,从而共同影响花瓣大小 | [ |
| 鹰嘴豆 Cicer arietinum | Ca4-TIFY4B | 调控植株活力相关性状(叶片大小、种子大小) | [ |
| 黄瓜 Cucumis sativus | CsJAZ2 CsJAZ6, CsZML2 | 过表达植株中ROS清除系统的POD、SOD和CAT酶活性显著降低,负调控黄瓜对灰霉病的抗性 | [ |
| 苦荞 Fagopyrum tataricum | FtJAZ10, FtJAZ12 | 抑制热诱导的细胞死亡,提高烟草对热胁迫的耐受能力 | [ |
| 大豆 Glycine max | GmTIFY10e, GmTIFY10g | 主根长度和鲜重均显著增高,正向调控植物的盐胁迫耐受性 | [ |
| 陆地棉 Gossypium hirsutum | GhTIFY9 | 棉花抗黄萎病反应的正向调控因子,增强棉花对黄萎病菌的敏感性 | [ |
| 枸杞 Lycium barbarum | LrJAZ2 | 气孔密度和气孔指数显著降低,叶片失水率下降,负调控植物气孔发育 | [ |
| 烟草 Nicotiana tabacum | NtTIFY7 | NtTIFY7 沉默植株对青枯病的敏感性显著增强。正向调控烟草对青枯病的抗性 | [ |
| 茄子 Solanum melongena | SmJAZ10 | 负向调控叶片叶绿素合成 | [ |
| 丹参 Salvia miltiorrhiza | SmWD40-170 | 促进根系生长和次生代谢物积累,调节气孔运动来应对干旱胁迫 | [ |
| 马铃薯 Solanum tuberosum | StJAZ23 | 促进根系发育,增强根系活力,提升抗氧化能力,调控胁迫相关激素积累 | [ |
| 蓝莓 Vaccinium corymbosum | VcTIFY6B, VcTIFY9, VcTIFY10A | 增加果实的横径、单果质量及种子数目,调控果实发育 | [ |
| 葡萄 Vitis vinifera | VvTIFY10A | 促进果实纵向生长、抑制横向生长,对果实形状产生调控作用 | [ |
| 玉米 Zea mays | ZmJAZ13 | 调节次生代谢产物和酶活性,增强植物对干旱和盐胁迫的耐受性 | [ |
图2 TIFY蛋白作用模式图A:植物叶片发育相关通路;B:花发育相关通路;C:果实生长发育相关通路;D:干旱胁迫响应相关通路;E:生物胁迫响应相关通路;F:低温胁迫响应相关通路;G:盐胁迫响应相关通路;At:拟南芥;Os:水稻;Ah:花生;Ft:苦荞;Gh:棉花;Gm:大豆;Ha:向日葵;Pt:油松;Zm:玉米
Fig. 2 Schematic model illuminating TIFY protein functionA: Pathways related to leaf development in plants. B: Pathways related to flower development. C: Pathways related to fruit and seed growth and development. D: Pathways related to drought stress response. E: Pathways related to biotic stress response. F: Pathways related to cold stress response. G: Pathways related to salt stress response. At: Arabidopsis thaliana. Os: Oryza sativa. Ah: Arachis hypogaea. Ft: Fagopyrum tataricum. Gh: Gossypium hirsutum. Gm: Glycine max. Ha: Helianthus annuus. Pt: Pinus tabuliformis. Zm: Zea mays
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