Deciphering the Interaction between Coniella granati and Pomegranate Fruit Employing Transcriptomics

Life Pub Date : 2024-06-13 DOI:10.3390/life14060752
A. Tsafouros, P. Tsalgatidou, Anastasia Boutsika, C. Delis, A. Mincuzzi, Antonio Ippolito, Antonios Zambounis
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Abstract

Pomegranate fruit dry rot is caused by Coniella granati, also referred as Pilidiella granati. In order to decipher the induced responses of mature pomegranates inoculated with the pathogen, an RNA-seq analysis was employed. A high number of differentially expressed genes (DEGs) were observed through a three-time series inoculation period. The transcriptional reprogramming was time-dependent, whereas the majority of DEGs were suppressed and the expression patterns of specific genes may facilitate the pathogen colonization at 1 day after inoculation (dai). In contrast, at 2 dai and mainly thereafter at 3 dai, defense responses were partially triggered in delay. Particularly, DEGs were mainly upregulated at the latest time point. Among them, specific DEGs involved in cell wall modification and degradation processes, pathogen recognition and signaling transduction cascades, activation of specific defense and metabolite biosynthesis-related genes, as well in induction of particular families of transcriptional factors, may constitute crucial components of a defense recruiting strategy employed by pomegranate fruit upon C. granati challenge. Overall, our findings provide novel insights to the compatible interaction of pomegranates—C. granati and lay the foundations for establishing integrated pest management (IPM) strategies involving advanced approaches, such as gene editing or molecular breeding programs for disease resistance, according to European Union (EU) goals.
利用转录组学破解 Granati 柯尼利亚菌与石榴果实之间的相互作用
石榴果实干腐病由 Granati Coniella(又称 Pilidiella granati)引起。为了解读接种了病原体的成熟石榴的诱导反应,我们采用了 RNA-seq 分析方法。通过三次系列接种,观察到大量差异表达基因(DEG)。转录重编程与时间有关,在接种后 1 天(dai),大多数 DEGs 被抑制,特定基因的表达模式可能会促进病原体的定殖。相反,在接种后第 2 天,主要是在接种后第 3 天,防御反应被部分延迟触发。特别是,DEGs 主要在最近的时间点被上调。其中,参与细胞壁修饰和降解过程、病原体识别和信号转导级联、激活特定防御和代谢物生物合成相关基因以及诱导特定转录因子家族的特定 DEGs,可能构成石榴果实在受到 C. granati 挑战时所采用的防御招募策略的关键组成部分。总之,我们的研究结果为了解石榴与 C. granati 的相容性相互作用提供了新的视角,并为根据欧盟(EU)目标制定涉及先进方法(如基因编辑或抗病分子育种计划)的害虫综合治理(IPM)战略奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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