Metabolomics approach to understand molecular mechanisms involved in fungal pathogen–citrus pathosystems

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Evandro Silva, Rodolfo Dantas, Júlio César Barbosa, Roberto G. S. Berlinck and Taicia Fill
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Abstract

Citrus is a crucial crop with a significant economic impact globally. However, postharvest decay caused by fungal pathogens poses a considerable threat, leading to substantial financial losses. Penicillium digitatum, Penicillium italicum, Geotrichum citri-aurantii and Phyllosticta citricarpa are the main fungal pathogens, causing green mold, blue mold, sour rot and citrus black spot diseases, respectively. The use of chemical fungicides as a control strategy in citrus raises concerns about food and environmental safety. Therefore, understanding the molecular basis of host–pathogen interactions is essential to find safer alternatives. This review highlights the potential of the metabolomics approach in the search for bioactive compounds involved in the pathogen–citrus interaction, and how the integration of metabolomics and genomics contributes to the understanding of secondary metabolites associated with fungal virulence and the fungal infection mechanisms. Our goal is to provide a pipeline combining metabolomics and genomics that can effectively guide researchers to perform studies aiming to contribute to the understanding of the fundamental chemical and biochemical aspects of pathogen–host interactions, in order to effectively develop new alternatives for fungal diseases in citrus cultivation. We intend to inspire the scientific community to question unexplored biological systems, and to employ diverse analytical approaches and metabolomics techniques to address outstanding questions about the non-studied pathosystems from a chemical biology perspective.

Abstract Image

Abstract Image

通过代谢组学方法了解涉及真菌病原体-柑橘病理系统的分子机制。
柑橘是一种对全球经济具有重大影响的重要作物。然而,由真菌病原体引起的采后腐烂构成了相当大的威胁,导致了巨大的经济损失。数字青霉(Penicillium digitatum)、意大利青霉(Penicillium italicum)、柑橘腐烂酵母菌(Geotrichum citri-aurantii)和柑橘黑斑病菌(Phyllosticta citricarpa)是主要的真菌病原体,可分别引起绿霉病、蓝霉病、酸腐病和柑橘黑斑病。在柑橘中使用化学杀菌剂作为控制策略引起了人们对食品和环境安全的担忧。因此,了解宿主与病原体相互作用的分子基础对于找到更安全的替代品至关重要。本综述强调了代谢组学方法在寻找病原体与柑橘相互作用中的生物活性化合物方面的潜力,以及代谢组学和基因组学的整合如何有助于了解与真菌毒力和真菌感染机制相关的次级代谢物。我们的目标是提供一个结合代谢组学和基因组学的管道,有效地指导研究人员开展研究,以促进对病原体-宿主相互作用的基本化学和生物化学方面的了解,从而有效地开发出柑橘栽培中真菌疾病的新替代品。我们希望启发科学界对尚未探索的生物系统提出质疑,并采用多种分析方法和代谢组学技术,从化学生物学的角度解决尚未研究的病理系统的悬而未决的问题。
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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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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