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光对……子实体颜色和差异表达基因的影响

Effects of Light on the Fruiting Body Color and Differentially Expressed Genes in .

作者信息

Im Ji-Hoon, Park Che-Hwon, Shin Ju-Hyeon, Oh Youn-Lee, Oh Minji, Paek Nam-Chon, Park Young-Jin

机构信息

Department of Agriculture, Forestry and Bioresources, College of Agriculture and Life Sciences, Seoul National University, Seoul 08826, Republic of Korea.

Mushroom Research Division, National Institute of Horticultural and Herbal Science, Rural Development Administration, Eumseong-gun 27709, Republic of Korea.

出版信息

J Fungi (Basel). 2024 May 22;10(6):372. doi: 10.3390/jof10060372.

Abstract

Light plays vital roles in fungal growth, development, reproduction, and pigmentation. In , the color of the fruiting body exhibits distinct changes in response to light; however, the underlying molecular mechanisms remain unknown. Therefore, in this study, we aimed to analyze the transcriptome under red, green, and blue light-emitting diode (LED) lights to identify the key genes affecting the light response and fruiting body color in this fungus. Additionally, we conducted protein-protein interaction (PPI) network analysis of the previously reported fruiting body color-related gene, , to identify the hub genes. Phenotypic analysis revealed that fruiting bodies exposed to green and blue lights were darker than those untreated or exposed to red light, with the color intensifying more after 48 h of exposure to blue light compared to that after 24 h of exposure. Differentially expressed gene (DEG) analyses of all light treatments for 24 h revealed that the numbers of DEGs were 17, 74, and 257 under red, green, and blue lights, respectively. Subsequently, functional enrichment analysis was conducted of the DEGs identified under green and blue lights, which influenced the color of . In total, 103 of 168 downregulated DEGs under blue and green lights were included in the enrichment analysis. Among the DEGs enriched under both green and blue light treatments, four genes were related to monooxygenases, with three genes annotated as cytochrome P450s that are crucial for various metabolic processes in fungi. PPI network analysis of Fvpal1 revealed associations with 11 genes, among which the expression of one gene, pyridoxal-dependent decarboxylase, was upregulated in exposed to blue light. These findings contribute to our understanding of the molecular mechanisms involved in the fruiting body color changes in response to light and offer potential molecular markers for further exploration of light-mediated regulatory pathways.

摘要

光在真菌的生长、发育、繁殖和色素沉着中起着至关重要的作用。在[具体情境未提及]中,子实体的颜色会因光照而发生明显变化;然而,其潜在的分子机制仍不清楚。因此,在本研究中,我们旨在分析在红色、绿色和蓝色发光二极管(LED)光照下的[真菌名称未提及]转录组,以确定影响该真菌光反应和子实体颜色的关键基因。此外,我们对先前报道的与子实体颜色相关的基因Fvpal1进行了蛋白质-蛋白质相互作用(PPI)网络分析,以确定枢纽基因。表型分析表明,暴露于绿色和蓝色光下的子实体比未处理或暴露于红色光下的子实体颜色更深,与暴露24小时相比,暴露于蓝光48小时后颜色加深更明显。对所有光照处理24小时的差异表达基因(DEG)分析表明,在红色、绿色和蓝色光下,DEG的数量分别为17、74和257个。随后,对在绿色和蓝色光下鉴定出的影响[真菌名称未提及]颜色的DEG进行了功能富集分析。在蓝色和绿色光下下调的168个DEG中,共有103个被纳入富集分析。在绿色和蓝色光处理下富集的DEG中,有四个基因与单加氧酶相关,其中三个基因被注释为细胞色素P450,它们对真菌的各种代谢过程至关重要。Fvpal1的PPI网络分析显示与11个基因有关联,其中一个基因,即吡哆醛依赖性脱羧酶,在暴露于蓝光的[真菌名称未提及]中表达上调。这些发现有助于我们理解子实体颜色响应光照变化的分子机制,并为进一步探索光介导的调控途径提供潜在的分子标记。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62de/11204606/527b4091cd64/jof-10-00372-g001.jpg

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