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转录组分析揭示了高粱粒霉病早期防御调控因子和与抗性相关的代谢途径。

Transcriptome analysis of early stages of sorghum grain mold disease reveals defense regulators and metabolic pathways associated with resistance.

机构信息

Department of Botany and Plant Pathology, Purdue University, West Lafayette, IN, 47907, USA.

Department of Horticulture and Landscape Architecture, Purdue University, West Lafayette, IN, 47907, USA.

出版信息

BMC Genomics. 2021 Apr 22;22(1):295. doi: 10.1186/s12864-021-07609-y.

Abstract

BACKGROUND

Sorghum grain mold is the most important disease of the crop. The disease results from simultaneous infection of the grain by multiple fungal species. Host responses to these fungi and the underlying molecular and cellular processes are poorly understood. To understand the genetic, molecular and biochemical components of grain mold resistance, transcriptome profiles of the developing grain of resistant and susceptible sorghum genotypes were studied.

RESULTS

The developing kernels of grain mold resistant RTx2911 and susceptible RTx430 sorghum genotypes were inoculated with a mixture of fungal pathogens mimicking the species complexity of the disease under natural infestation. Global transcriptome changes corresponding to multiple molecular and cellular processes, and biological functions including defense, secondary metabolism, and flavonoid biosynthesis were observed with differential regulation in the two genotypes. Genes encoding pattern recognition receptors (PRRs), regulators of growth and defense homeostasis, antimicrobial peptides, pathogenesis-related proteins, zein seed storage proteins, and phytoalexins showed increased expression correlating with resistance. Notably, SbLYK5 gene encoding an orthologue of chitin PRR, defensin genes SbDFN7.1 and SbDFN7.2 exhibited higher expression in the resistant genotype. The SbDFN7.1 and SbDFN7.2 genes are tightly linked and transcribed in opposite orientation with a likely common bidirectional promoter. Interestingly, increased expression of JAZ and other transcriptional repressors were observed that suggested the tight regulation of plant defense and growth. The data suggest a pathogen inducible defense system in the developing grain of sorghum that involves the chitin PRR, MAPKs, key transcription factors, downstream components regulating immune gene expression and accumulation of defense molecules. We propose a model through which the biosynthesis of 3-deoxyanthocynidin phytoalexins, defensins, PR proteins, other antimicrobial peptides, and defense suppressing proteins are regulated by a pathogen inducible defense system in the developing grain.

CONCLUSIONS

The transcriptome data from a rarely studied tissue shed light into genetic, molecular, and biochemical components of disease resistance and suggested that the developing grain shares conserved immune response mechanisms but also components uniquely enriched in the grain. Resistance was associated with increased expression of genes encoding regulatory factors, novel grain specific antimicrobial peptides including defensins and storage proteins that are potential targets for crop improvement.

摘要

背景

高粱粒霉病是该作物最重要的病害。该病害源于多种真菌同时感染谷物。宿主对这些真菌的反应以及潜在的分子和细胞过程还知之甚少。为了了解粒霉病抗性的遗传、分子和生化组成,研究了抗性和易感高粱基因型发育籽粒的转录组谱。

结果

将模拟自然侵染下病害物种复杂性的混合真菌病原体接种到粒霉病抗性 RTx2911 和易感 RTx430 高粱基因型的发育籽粒中。在两种基因型中观察到与多个分子和细胞过程以及生物功能相关的全局转录组变化,包括防御、次生代谢和类黄酮生物合成。编码模式识别受体(PRRs)、生长和防御动态平衡调节剂、抗菌肽、病程相关蛋白、zein 种子贮藏蛋白和植物抗毒素的基因表达增加,与抗性相关。值得注意的是,编码几丁质 PRR 同源物的 SbLYK5 基因、防御素基因 SbDFN7.1 和 SbDFN7.2 在抗性基因型中表达更高。SbDFN7.1 和 SbDFN7.2 基因紧密连锁并以相反方向转录,可能具有共同的双向启动子。有趣的是,观察到 JAZ 和其他转录抑制因子的表达增加,表明植物防御和生长的紧密调控。数据表明,高粱发育籽粒中存在一种依赖于病原体的诱导防御系统,该系统涉及几丁质 PRR、MAPKs、关键转录因子、调节免疫基因表达和防御分子积累的下游成分。我们提出了一个模型,即 3-脱氧黄烷素植物抗毒素、防御素、PR 蛋白、其他抗菌肽和防御抑制蛋白的生物合成受发育籽粒中病原体诱导防御系统的调节。

结论

来自一个很少研究的组织的转录组数据揭示了疾病抗性的遗传、分子和生化组成,并表明发育籽粒具有保守的免疫反应机制,但也具有籽粒中特有的成分。抗性与编码调节因子的基因表达增加有关,包括防御素和贮藏蛋白等新型粒特异抗菌肽,它们可能是作物改良的潜在靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50a6/8063297/6e8403f64e20/12864_2021_7609_Fig1_HTML.jpg

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