Suppr超能文献

杨树营养芽自然休眠启动和解除过程中的广泛转录组变化

Extensive Transcriptome Changes During Natural Onset and Release of Vegetative Bud Dormancy in Populus.

作者信息

Howe Glenn T, Horvath David P, Dharmawardhana Palitha, Priest Henry D, Mockler Todd C, Strauss Steven H

机构信息

Department of Forest Ecosystems and Society, Oregon State University Corvallis, OR, USA.

Biosciences Research Laboratory, United States Department of Agriculture-Agricultural Research Service Fargo, ND, USA.

出版信息

Front Plant Sci. 2015 Dec 17;6:989. doi: 10.3389/fpls.2015.00989. eCollection 2015.

Abstract

To survive winter, many perennial plants become endodormant, a state of suspended growth maintained even in favorable growing environments. To understand vegetative bud endodormancy, we collected paradormant, endodormant, and ecodormant axillary buds from Populus trees growing under natural conditions. Of 44,441 Populus gene models analyzed using NimbleGen microarrays, we found that 1,362 (3.1%) were differentially expressed among the three dormancy states, and 429 (1.0%) were differentially expressed during only one of the two dormancy transitions (FDR p-value < 0.05). Of all differentially expressed genes, 69% were down-regulated from paradormancy to endodormancy, which was expected given the lower metabolic activity associated with endodormancy. Dormancy transitions were accompanied by changes in genes associated with DNA methylation (via RNA-directed DNA methylation) and histone modifications (via Polycomb Repressive Complex 2), confirming and extending knowledge of chromatin modifications as major features of dormancy transitions. Among the chromatin-associated genes, two genes similar to SPT (SUPPRESSOR OF TY) were strongly up-regulated during endodormancy. Transcription factor genes and gene sets that were atypically up-regulated during endodormancy include a gene that seems to encode a trihelix transcription factor and genes associated with proteins involved in responses to ethylene, cold, and other abiotic stresses. These latter transcription factors include ETHYLENE INSENSITIVE 3 (EIN3), ETHYLENE-RESPONSIVE ELEMENT BINDING PROTEIN (EBP), ETHYLENE RESPONSE FACTOR (ERF), ZINC FINGER PROTEIN 10 (ZAT10), ZAT12, and WRKY DNA-binding domain proteins. Analyses of phytohormone-associated genes suggest important changes in responses to ethylene, auxin, and brassinosteroids occur during endodormancy. We found weaker evidence for changes in genes associated with salicylic acid and jasmonic acid, and little evidence for important changes in genes associated with gibberellins, abscisic acid, and cytokinin. We identified 315 upstream sequence motifs associated with eight patterns of gene expression, including novel motifs and motifs associated with the circadian clock and responses to photoperiod, cold, dehydration, and ABA. Analogies between flowering and endodormancy suggest important roles for genes similar to SQUAMOSA-PROMOTER BINDING PROTEIN-LIKE (SPL), DORMANCY ASSOCIATED MADS-BOX (DAM), and SUPPRESSOR OF OVEREXPRESSION OF CONSTANS 1 (SOC1).

摘要

为了度过冬天,许多多年生植物进入内休眠状态,即使在适宜的生长环境中,这种生长暂停状态也会持续。为了解营养芽的内休眠,我们从自然条件下生长的杨树中收集了处于旁休眠、内休眠和生态休眠状态的腋芽。在使用NimbleGen微阵列分析的44441个杨树基因模型中,我们发现1362个(3.1%)在三种休眠状态间差异表达,429个(1.0%)仅在两个休眠转变之一期间差异表达(FDR p值<0.05)。在所有差异表达基因中,69%从旁休眠到内休眠下调,鉴于与内休眠相关的较低代谢活性,这是预期的。休眠转变伴随着与DNA甲基化(通过RNA介导的DNA甲基化)和组蛋白修饰(通过多梳抑制复合物2)相关基因的变化,证实并扩展了染色质修饰作为休眠转变主要特征的知识。在与染色质相关的基因中,两个类似于SPT(TY抑制子)的基因在内休眠期间强烈上调。在内休眠期间异常上调的转录因子基因和基因集包括一个似乎编码三螺旋转录因子的基因以及与参与乙烯、寒冷和其他非生物胁迫响应的蛋白质相关的基因。这些后一类转录因子包括乙烯不敏感3(EIN3)、乙烯反应元件结合蛋白(EBP)、乙烯反应因子(ERF)、锌指蛋白10(ZAT10)、ZAT12和WRKY DNA结合结构域蛋白。对植物激素相关基因的分析表明,在内休眠期间,对乙烯、生长素和油菜素类固醇的反应发生了重要变化。我们发现与水杨酸和茉莉酸相关基因变化的证据较弱,与赤霉素、脱落酸和细胞分裂素相关基因发生重要变化的证据也很少。我们鉴定出315个与八种基因表达模式相关的上游序列基序,包括新基序以及与生物钟和光周期、寒冷、脱水和脱落酸反应相关的基序。开花和内休眠之间的相似性表明,类似于SQUAMOSA启动子结合蛋白样(SPL)、休眠相关MADS盒(DAM)和CONSTANS过表达抑制子1(SOC1)的基因具有重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e6d/4681841/07136d40f574/fpls-06-00989-g001.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验