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编码类磷脂酰乙醇胺结合蛋白的基因过表达促进了……中的帽状结构再分化。

Overexpression of the Gene Encoding the PEBP-like Protein Promotes the Cap Redifferentiation in .

作者信息

Cheng Bopu, Tao Nan, Ma Yuanhao, Chai Hongmei, Liu Ping, Chen Weimin, Zhao Yongchang

机构信息

College of Life Science, Southwest Forestry University, Kunming 650224, China.

Biotechnology and Germplasm Resources Institute, Yunnan Academy of Agricultural Sciences, Kunming 650223, China.

出版信息

J Fungi (Basel). 2023 Jun 12;9(6):657. doi: 10.3390/jof9060657.

Abstract

Phosphatidylethanolamine-binding protein (PEBP) is widely involved in various physiological behaviors, such as the transition from vegetative growth to reproductive growth in plants, tumorigenesis in the human, etc. However, few functional studies have examined genes affecting the development of fungi. In this study, was cloned from AC0007 strains based on the genome sequence and gene prediction, and the sequence alignment of CaPEBP2 with other PEBP proteins from other biological sources including plant, animal, fungi, and bacteria indicated that PEBP had low sequence similarity in fungi, whereas all protein sequences had some conserved motifs such as DPDAP and HRY. Expression analysis showed the transcription level of increased approximately 20-fold in fruiting bodies compared with mycelia. To uncover the function of in development, was cloned into a pATH vector driven by the promoter for obtaining overexpression transformant lines. Fruiting experiments showed the transformed strains overexpressing exhibited redifferentiation of the cap on their surface, including intact fruiting bodies or partial lamella during fruiting development stage, and the longitudinal section indicated that all regenerated bodies or lamella sprouted from the flesh and shared the epidermis with the mother fruiting bodies. In summary, the sequence characterization of , expression level during different development stages, and function on fruiting body development were documented in this study, and these findings provided a reference to study the role of in the development process of basidiomycetes. Importantly, gene mining of , function characterization, and the regulating pathways involved need to be uncovered in further studies.

摘要

磷脂酰乙醇胺结合蛋白(PEBP)广泛参与各种生理行为,如植物从营养生长向生殖生长的转变、人类肿瘤发生等。然而,很少有功能研究考察影响真菌发育的基因。在本研究中,基于基因组序列和基因预测从AC0007菌株中克隆了[该基因名称未给出],CaPEBP2与来自植物、动物、真菌和细菌等其他生物来源的其他PEBP蛋白的序列比对表明,PEBP在真菌中的序列相似性较低,而所有蛋白质序列都有一些保守基序,如DPDAP和HRY。表达分析表明,与菌丝体相比,[该基因名称未给出]在子实体中的转录水平增加了约20倍。为了揭示[该基因名称未给出]在[真菌名称未给出]发育中的功能,将[该基因名称未给出]克隆到由[启动子名称未给出]启动子驱动的pATH载体中,以获得过表达转化株系。结实实验表明,过表达[该基因名称未给出]的转化菌株在其表面表现出菌盖的再分化,在结实发育阶段包括完整的子实体或部分菌褶,纵切面表明所有再生体或菌褶都从果肉中萌发,并与母本结实体共享表皮。总之,本研究记录了[该基因名称未给出]的序列特征、不同发育阶段的表达水平以及对子实体发育的作用,这些发现为研究[该基因名称未给出]在担子菌发育过程中的作用提供了参考。重要的是,[该基因名称未给出]的基因挖掘、功能表征以及所涉及的调控途径需要在进一步的研究中揭示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6d7/10302294/e4abf1436274/jof-09-00657-g001.jpg

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Characterization of PEBP-like Genes and Function of and in Fruiting Body Regeneration in .
J Fungi (Basel). 2024 Jul 31;10(8):537. doi: 10.3390/jof10080537.

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