转录因子 Pofst3 通过靶向多种生物通路调控胸棘藻的发育

IF 2.9 3区 生物学 Q2 MYCOLOGY
Yuancheng Qi, Wenfeng Xie, Ruixia Zhang, Fengqin Wang, Qing Wen, Yanru Hu, Qing Liu, Jinwen Shen
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引用次数: 0

摘要

牛肝菌是一种广受欢迎的食用菌,世界各地都有栽培。然而,牛肝菌原基形成的机制尚不清楚。Pofst3 是一种 MHR 超家族转录因子,具有调控原基形成的功能。本研究通过 DAP-Seq 方法在基因组水平上鉴定了 Pofst3 的靶基因,共获得 1481 个峰值,Pofst3 的结合基序为 GARGRVGARGAR。通过电泳迁移(EMSA)和酵母单杂交筛选(Y1H)实验,证实了转录因子 Pofst3 与该基序的体外和体内相互作用。在前 20 个 GO 富集结果中,大部分与转录调控有关,并获得了一些转录因子编码基因,如 HMG-box(基因_5346)、MADS-box(基因_86)、FOG(基因_6211)和 RFX(基因_3496)。除基础代谢外,MAPK 信号通路、磷酸肌醇代谢、糖基磷脂酰肌醇(GPI)-锚生物合成和磷酸戊糖通路在 KEGG 通路分析中也有显著富集。随机选取的 11 个基因、一些转录因子基因以及参与代谢途径的基因在野生和 Pofst3 转基因奥斯特培尔菌株中的表达水平表明,目标基因可能参与了奥斯特培尔原基的发育。这些结果表明,转录因子 Pofst3 最终很可能通过调控一系列生物通路来负向调控牡蛎原基的发育。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transcription factor Pofst3 regulates Pleurotus ostreatus development by targeting multiple biological pathways
Pleurotus ostreatus is a popular edible mushroom cultivated worldwide. However, the mechanism of P. ostreatus primordia formation is unclear. Pofst3 is a MHR superfamily transcription factor, which has the function of regulating primordia formation. In this study, the target genes of Pofst3 in P. ostreatus were identified by DAP-Seq approach at the genome level, 1481 peaks were obtained and the Pofst3 binding motif sequence was GARGRVGARGAR. The interaction between transcription factor Pofst3 and this motif was confirmed in vitro and in vivo through electrophoretic mobility shift (EMSA) and yeast one-hybrid screening (Y1H) assays. Among the top 20 GO enrichment results, most were related to transcriptional regulation, and some transcription factor encoding genes, such as HMG-box (gene_5346), MADS-box (gene_86), FOG (gene_6211) and RFX (gene_3496) were obtained. Besides basic metabolism, MAPK signaling pathway, Inositol phosphate metabolism, Glycosylphosphatidylinositol (GPI)-anchor biosynthesis and Pentose phosphate pathway were significantly enriched in the KEGG pathway analysis. The expression levels of randomly selected 11 genes, some transcription factor genes, and genes involved in metabolic pathways in wild and Pofst3 transgenic P. ostreatus strains indicated that target genes likely involved in the development of the P. ostreatus primordia. These results indicated that transcription factor Pofst3 ultimately negatively regulated the development of P. ostreatus primordia very likely through regulating a series of biological pathways.
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来源期刊
Fungal biology
Fungal biology MYCOLOGY-
CiteScore
5.80
自引率
4.00%
发文量
80
审稿时长
49 days
期刊介绍: Fungal Biology publishes original contributions in all fields of basic and applied research involving fungi and fungus-like organisms (including oomycetes and slime moulds). Areas of investigation include biodeterioration, biotechnology, cell and developmental biology, ecology, evolution, genetics, geomycology, medical mycology, mutualistic interactions (including lichens and mycorrhizas), physiology, plant pathology, secondary metabolites, and taxonomy and systematics. Submissions on experimental methods are also welcomed. Priority is given to contributions likely to be of interest to a wide international audience.
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