Katarzyna Nowak, Barbara Wójcikowska, Monika Gajecka, Anna Elżbieciak, Joanna Morończyk, Anna M Wójcik, Przemysław Żemła, Sylvie Citerne, Agnieszka Kiwior-Wesołowska, Justyna Zbieszczyk, Małgorzata D Gaj
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引用次数: 0
摘要
基因型有限的植株再生是阻碍遗传转化在大麦育种中广泛应用的主要障碍之一。因此,开发可能改善体外抗性基因型反应的新方法仍然是大麦生物技术的中心。在这里,我们分析了不同的大麦基因型,包括遗传转化中常用的基因型“Golden Promise”和4个再生潜力较差的麦芽品种。分析了具有不同植株再生能力的基因型中激素相关转录因子(TF)基因在植株再生中的表达。结果表明,在外植体和衍生培养物中,生长素相关TF基因在大麦基因型之间的表达存在差异。为了支持生长素在大麦再生中的作用,我们在不同基因型的大麦外植体和外植体愈伤组织中观察到游离生长素和氧化生长素积累的显著差异。基于修改基因表达可能促进大麦植株再生的假设,我们用trichostatin A (TSA)处理大麦外植体,其影响组蛋白乙酰化。TSA处理对两个大麦品种植株再生的影响是基因型依赖的。tsa诱导的植物再生变化与生长素生物合成相关tf的表达增加有关。研究表明,用TSA等染色质修饰剂进行外植体处理可能为改善大麦基因型的植株再生提供一种新的有效的表观遗传途径。
The improvement of the in vitro plant regeneration in barley with the epigenetic modifier of histone acetylation, trichostatin A.
Genotype-limited plant regeneration is one of the main obstacles to the broader use of genetic transformation in barley breeding. Thus, developing new approaches that might improve responses of in vitro recalcitrant genotypes remains at the center of barley biotechnology. Here, we analyzed different barley genotypes, including "Golden Promise," a genotype commonly used in the genetic transformation, and four malting barley cultivars of poor regenerative potential. The expression of hormone-related transcription factor (TF) genes with documented roles in plant regeneration was analyzed in genotypes with various plant-regenerating capacities. The results indicated differential expression of auxin-related TF genes between the barley genotypes in both the explants and the derived cultures. In support of the role of auxin in barley regeneration, distinct differences in the accumulation of free and oxidized auxin were observed in explants and explant-derived callus cultures of barley genotypes. Following the assumption that modifying gene expression might improve plant regeneration in barley, we treated the barley explants with trichostatin A (TSA), which affects histone acetylation. The effects of TSA were genotype-dependent as TSA treatment improved plant regeneration in two barley cultivars. TSA-induced changes in plant regeneration were associated with the increased expression of auxin biosynthesis-involved TFs. The study demonstrated that explant treatment with chromatin modifiers such as TSA might provide a new and effective epigenetic approach to improving plant regeneration in recalcitrant barley genotypes.
期刊介绍:
The Journal of Applied Genetics is an international journal on genetics and genomics. It publishes peer-reviewed original papers, short communications (including case reports) and review articles focused on the research of applicative aspects of plant, human, animal and microbial genetics and genomics.