Omics-Based Comparison of Fungal Virulence Genes, Biosynthetic Gene Clusters, and Small Molecules in Penicillium expansum and Penicillium chrysogenum.

IF 4.2 2区 生物学 Q2 MICROBIOLOGY Journal of Fungi Pub Date : 2024-12-28 DOI:10.3390/jof11010014
Holly P Bartholomew, Christopher Gottschalk, Bret Cooper, Michael R Bukowski, Ronghui Yang, Verneta L Gaskins, Dianiris Luciano-Rosario, Jorge M Fonseca, Wayne M Jurick
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Abstract

Penicillium expansum is a ubiquitous pathogenic fungus that causes blue mold decay of apple fruit postharvest, and another member of the genus, Penicillium chrysogenum, is a well-studied saprophyte valued for antibiotic and small molecule production. While these two fungi have been investigated individually, a recent discovery revealed that P. chrysogenum can block P. expansum-mediated decay of apple fruit. To shed light on this observation, we conducted a comparative genomic, transcriptomic, and metabolomic study of two P. chrysogenum (404 and 413) and two P. expansum (Pe21 and R19) isolates. Global transcriptional and metabolomic outputs were disparate between the species, nearly identical for P. chrysogenum isolates, and different between P. expansum isolates. Further, the two P. chrysogenum genomes revealed secondary metabolite gene clusters that varied widely from P. expansum. This included the absence of an intact patulin gene cluster in P. chrysogenum, which corroborates the metabolomic data regarding its inability to produce patulin. Additionally, a core subset of P. expansum virulence gene homologues were identified in P. chrysogenum and were similarly transcriptionally regulated in vitro. Molecules with varying biological activities, and phytohormone-like compounds were detected for the first time in P. expansum while antibiotics like penicillin G and other biologically active molecules were discovered in P. chrysogenum culture supernatants. Our findings provide a solid omics-based foundation of small molecule production in these two fungal species with implications in postharvest context and expand the current knowledge of the Penicillium-derived chemical repertoire for broader fundamental and practical applications.

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基于组学的扩张青霉和黄化青霉真菌毒力基因、生物合成基因簇和小分子比较
扩张青霉是一种普遍存在的致病真菌,可引起苹果果实采后的蓝色霉菌腐烂,而该属的另一成员青霉菌是一种研究得很好的腐生植物,可用于抗生素和小分子生产。虽然这两种真菌已经被单独研究过,但最近的一项发现表明,P. chrysogenum可以阻止P. expansum介导的苹果果实腐烂。为了阐明这一观察结果,我们对两个P. chrysogenum(404和413)和两个P. expansum (Pe21和R19)分离株进行了比较基因组学、转录组学和代谢组学研究。全球转录和代谢组学输出在不同物种之间是不同的,在黄芽孢杆菌分离株中几乎相同,而在扩张芽孢杆菌分离株中则不同。此外,两个黄顶孢基因组显示的次生代谢物基因簇与阔顶孢差异很大。这包括在P. chrysogenum中缺乏完整的棒曲霉素基因簇,这证实了其无法产生棒曲霉素的代谢组学数据。此外,在黄孢假单胞菌中发现了一个核心毒力基因同源亚群,并在体外进行了类似的转录调控。在P. expansum中首次检测到具有不同生物活性的分子和植物激素样化合物,而在P. chrysogenum培养上清中发现了青霉素G等抗生素和其他生物活性分子。我们的研究结果为这两种真菌的小分子生产提供了坚实的组学基础,对采后环境具有重要意义,并扩展了目前对青霉菌衍生化学库的了解,以获得更广泛的基础和实际应用。
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来源期刊
Journal of Fungi
Journal of Fungi Medicine-Microbiology (medical)
CiteScore
6.70
自引率
14.90%
发文量
1151
审稿时长
11 weeks
期刊介绍: Journal of Fungi (ISSN 2309-608X) is an international, peer-reviewed scientific open access journal that provides an advanced forum for studies related to pathogenic fungi, fungal biology, and all other aspects of fungal research. The journal publishes reviews, regular research papers, and communications in quarterly issues. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on paper length. Full experimental details must be provided so that the results can be reproduced.
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