真菌挥发性有机化合物的多样性和功能,特别是蘑菇醇的多种生物活性。

IF 4.4 2区 生物学 Q1 MYCOLOGY
Mycology Pub Date : 2025-02-02 eCollection Date: 2025-01-01 DOI:10.1080/21501203.2025.2453717
Guohua Yin, Geromy G Moore, Joan Wennstrom Bennett
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引用次数: 0

摘要

不同种类的真菌通常有许多共同的代谢途径,但它们也有一些独特的代谢途径(例如专门代谢物的代谢途径)。目前尚不清楚基因表达模式如何显著促进各种挥发性化合物的产生。基于对大多数VOCs的研究,不同真菌挥发性化合物的功能主要有:对其他微生物的抑制或协同作用,促进植物生长或诱导作物防御反应,参与物质循环或影响生态系统中生物之间的相互作用。已经从真菌中鉴定出大约300种挥发性有机化合物。根据其化学性质,真菌挥发性有机化合物主要有萜类、芳香族化合物、醇类、烷烃、酯类、醛类、酮类和杂环化合物。八碳醇(1-辛烯-3-醇)是真菌中最具特征的挥发性有机化合物之一。这种大量产生的挥发性有机化合物是由亚油酸分解产生的,并引起一种独特的蘑菇味。因此,它的存在被用作真菌生长的信号。它也由某些植物产生,并作为许多节肢动物的符号化学物质。用果蝇作为测试真菌挥发性有机化合物毒性的模型表明,某些挥发性有机化合物在一定浓度下会延迟果蝇的蜕变和/或导致果蝇死亡。当果蝇在与几种医学上重要的真菌(包括烟曲霉)生长培养物释放的VOC混合物共享的气氛中培养时,观察了毒性。此外,我们提出黑胃d.m anogaster遗传免疫系统的成分主要通过诱导Toll通路参与真菌VOCs的毒性。例如,在果蝇生物测定中,1-辛烯-3-醇的存在与较高的毒性水平有关。本文综述了(1)真菌挥发性有机化合物的多样性和功能,(2)1-辛烯-3-醇的生物合成和生物活性特征,以及(3)利用黑胃霉作为遗传模型来评估真菌挥发性有机化合物对健康的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Diversity and functions of fungal VOCs with special reference to the multiple bioactivities of the mushroom alcohol.

Diversity and functions of fungal VOCs with special reference to the multiple bioactivities of the mushroom alcohol.

Diversity and functions of fungal VOCs with special reference to the multiple bioactivities of the mushroom alcohol.

Diversity and functions of fungal VOCs with special reference to the multiple bioactivities of the mushroom alcohol.

Different species of fungi usually share many common pathways but they also have some unique metabolic pathways (e.g. those for specialised metabolites). It is not clear how gene expression patterns significantly contribute to the creation of diverse volatile compounds. Based on the research of most VOCs, the functions of different fungal volatile compounds are mainly as follows: inhibitory or synergistic effects on other microorganisms, promoting growth in plants or inducing a defensive response in crops, and participating in the material cycle or affecting the interactions between organisms in the ecosystem. Approximately three hundred VOCs have been identified from fungi. According to their chemical properties, the major categories of fungal VOCs are terpenoids, aromatic compounds, alcohols, alkanes, esters, aldehydes, ketones, and heterocyclic compounds. The eight-carbon alcohol (1-octen-3-ol) is one of the most characteristic fungal VOC. This abundantly produced VOC results from the breakdown of linoleic acid and causes a distinctive mushroom-like odour. Consequently, its presence has been utilised as a signal of fungal growth. It is also produced by certain plants and functions as a semiochemical for numerous arthropods. The use of Drosophila melanogaster (fruit flies) as a model for testing the toxicity of fungal VOCs showed that some VOCs delayed metamorphosis and/or caused fly death at certain concentrations. When Drosophila was cultivated in an atmosphere shared with VOC mixtures released from growing cultures of several medically important fungi, including Aspergillus fumigatus, toxicity was observed. Additionally, we propose that components of the genetic immune system of D. melanogaster are engaged in the toxicity of fungal VOCs mainly via the elicitation of the Toll pathway. The presence of 1-octen-3-ol, for example, was associated with higher levels of toxicity in the fruit fly bioassay. In this review, we summarise (1) the diversity and functions of different fungal VOCs, (2) the biosynthesis and bioactive characteristics of 1-octen-3-ol, and (3) the use of D. melanogaster as a genetic model to assess the health impacts of fungal VOCs.

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来源期刊
Mycology
Mycology Medicine-Infectious Diseases
CiteScore
9.10
自引率
0.00%
发文量
18
审稿时长
13 weeks
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