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开发一种新型的镰刀菌属 DNA 微阵列并分析唑类杀菌剂的反应。

Development of a novel multiplex DNA microarray for Fusarium graminearum and analysis of azole fungicide responses.

机构信息

Institut für Agrar- und Ernährungswissenschaften, Naturwissenschaftliche Fakultät III, Martin-Luther-Universität Halle-Wittenberg, Betty-Heimann-Str. 3, D-06120 Halle (Saale), Germany.

出版信息

BMC Genomics. 2011 Jan 21;12:52. doi: 10.1186/1471-2164-12-52.

Abstract

BACKGROUND

The toxigenic fungal plant pathogen Fusarium graminearum compromises wheat production worldwide. Azole fungicides play a prominent role in controlling this pathogen. Sequencing of its genome stimulated the development of high-throughput technologies to study mechanisms of coping with fungicide stress and adaptation to fungicides at a previously unprecedented precision. DNA-microarrays have been used to analyze genome-wide gene expression patterns and uncovered complex transcriptional responses. A recently developed one-color multiplex array format allowed flexible, effective, and parallel examinations of eight RNA samples.

RESULTS

We took advantage of the 8 × 15 k Agilent format to design, evaluate, and apply a novel microarray covering the whole F. graminearum genome to analyze transcriptional responses to azole fungicide treatment. Comparative statistical analysis of expression profiles uncovered 1058 genes that were significantly differentially expressed after azole-treatment. Quantitative RT-PCR analysis for 31 selected genes indicated high conformity to results from the microarray hybridization. Among the 596 genes with significantly increased transcript levels, analyses using GeneOntology and FunCat annotations detected the ergosterol-biosynthesis pathway genes as the category most significantly responding, confirming the mode-of-action of azole fungicides. Cyp51A, which is one of the three F. graminearum paralogs of Cyp51 encoding the target of azoles, was the most consistently differentially expressed gene of the entire study. A molecular phylogeny analyzing the relationships of the three CYP51 proteins in the context of 38 fungal genomes belonging to the Pezizomycotina indicated that CYP51C (FGSG_11024) groups with a new clade of CYP51 proteins. The transcriptional profiles for genes encoding ABC transporters and transcription factors suggested several involved in mechanisms alleviating the impact of the fungicide. Comparative analyses with published microarray experiments obtained from two different nutritional stress conditions identified subsets of genes responding to different types of stress. Some of the genes that responded only to tebuconazole treatment appeared to be unique to the F. graminearum genome.

CONCLUSIONS

The novel F. graminearum 8 × 15 k microarray is a reliable and efficient high-throughput tool for genome-wide expression profiling experiments in fungicide research, and beyond, as shown by our data obtained for azole responses. The array data contribute to understanding mechanisms of fungicide resistance and allow identifying fungicide targets.

摘要

背景

产毒真菌植物病原体禾谷镰刀菌会影响全世界的小麦产量。唑类杀菌剂在控制这种病原体方面发挥着重要作用。其基因组测序刺激了高通量技术的发展,使我们以前所未有的精度研究应对杀菌剂胁迫和适应杀菌剂的机制。DNA 微阵列已被用于分析全基因组基因表达模式,并揭示了复杂的转录反应。最近开发的一种单颜色多重阵列格式允许灵活、有效和并行地检查 8 个 RNA 样本。

结果

我们利用 8 × 15 k Agilent 格式设计、评估和应用了一种新型的全禾谷镰刀菌基因组微阵列,以分析唑类杀菌剂处理后的转录反应。对表达谱的比较统计分析发现,1058 个基因在唑类处理后差异显著表达。对 31 个选定基因的定量 RT-PCR 分析表明,与微阵列杂交结果高度一致。在转录水平显著增加的 596 个基因中,使用 GeneOntology 和 FunCat 注释的分析检测到甾醇生物合成途径基因是反应最显著的类别,证实了唑类杀菌剂的作用模式。Cyp51A 是编码唑类靶标的三个禾谷镰刀菌 Cyp51 之一,是整个研究中最一致差异表达的基因。在属于 Pezizomycotina 的 38 个真菌基因组的 Cyp51 蛋白的关系中分析三个 CYP51 蛋白的分子系统发育表明,CYP51C(FGSG_11024)与 CYP51 蛋白的一个新分支聚类。编码 ABC 转运蛋白和转录因子的基因的转录谱表明,有几个基因参与缓解杀菌剂影响的机制。与从两种不同营养胁迫条件获得的已发表的微阵列实验进行比较分析,确定了对不同类型胁迫反应的基因子集。仅对戊唑醇处理有反应的一些基因似乎是禾谷镰刀菌基因组所特有的。

结论

新型禾谷镰刀菌 8 × 15 k 微阵列是一种可靠高效的高通量工具,可用于杀菌剂研究中的全基因组表达谱实验,我们的数据表明,它也可用于唑类反应。该阵列数据有助于了解杀菌剂抗性机制,并允许鉴定杀菌剂靶标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d97e/3037902/28053e2d76f3/1471-2164-12-52-1.jpg

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