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综合酶活性和转录组揭示了外源褪黑素对……菌株退化的影响。 (原文中“. ”部分内容缺失)

Integrated enzymes activity and transcriptome reveal the effect of exogenous melatonin on the strain degeneration of .

作者信息

Zu Zhichao, Wang Siqi, Zhao Yingming, Fan Wenli, Li Tianlai

机构信息

Key Laboratory of Ministry of Education for Facility Horticulture, Shenyang, China.

Key Laboratory of Protected Horticulture, National and Local Joint Engineering Research Center of Northern Horticultural Facilities Design and Application Technology, Shenyang, China.

出版信息

Front Microbiol. 2023 Apr 6;14:1112035. doi: 10.3389/fmicb.2023.1112035. eCollection 2023.

Abstract

As a valuable medicinal and edible fungus, has been industrialized with broad development prospects. It contains a lot of bioactive compounds that are beneficial to our health. However, during artificial cultivation, strain degeneration is a challenge that inhibits the industrialization utility of . Exogenous melatonin (MT) can scavenge for reactive oxygen species (ROS) in fungus and can alleviate strain degeneration. To establish the significance and molecular mechanisms of MT on strain degeneration, we investigated the third-generation strain (W5-3) of morphological, biochemical, and transcriptomic approaches under MT treatment. Morphological analyses revealed that colony angulation of was significantly weakened, and the aerial hypha was reduced by 60 μmol L MT treatment. Biochemical analyses showed low levels of ROS and malondialdehyde (MDA), as well as increasing endogenous MT levels as exogenous MT increased. RNA-Seq revealed that compared with the control, several antioxidant enzyme-related genes were up-regulated under 60 μmol L MT treatment. Among them, genes were up-regulated by a factor of 11.04. In addition, genes that are potentially involved in cordycepin, adenosine and active compound biosynthesis for the growth and development of mycelium were up-regulated. Collectively, these findings provide the basis for further elucidation of the molecular mechanisms involved in strain degeneration.

摘要

作为一种珍贵的药食两用真菌,已实现产业化,具有广阔的发展前景。它含有许多对我们健康有益的生物活性化合物。然而,在人工栽培过程中,菌株退化是一个挑战,抑制了其产业化应用。外源性褪黑素(MT)可以清除真菌中的活性氧(ROS),并能缓解菌株退化。为了确定MT对菌株退化的意义和分子机制,我们采用形态学、生化和转录组学方法研究了MT处理下第三代菌株(W5-3)。形态学分析表明,经60 μmol/L MT处理后,菌落的棱角明显变弱,气生菌丝减少。生化分析显示,ROS和丙二醛(MDA)水平较低,且随着外源性MT的增加,内源性MT水平升高。RNA测序显示,与对照相比,在60 μmol/L MT处理下,几个抗氧化酶相关基因上调。其中,基因上调了11.04倍。此外,与虫草素、腺苷和活性化合物生物合成相关的基因上调,这些基因可能参与菌丝体的生长和发育。总的来说,这些发现为进一步阐明菌株退化的分子机制提供了依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b747/10117847/ef677e7284a7/fmicb-14-1112035-g001.jpg

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