Jing Chen , Rong Qu , Qiurong Chen , Ziyu Zhang , Siting Wu , Mengyu Bao , Xinyue Wang , Lei Liu , Siqi Lyu , Jialu Tian , Linna Lyu , Cigang Yu , Sheng Yuan , Zhonghua Liu
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Linoleate dioxygenases are enzymes involved in the biosynthesis of psi factors, yet their specific physiological functions in basidiomycete development remain unclear. In this study, linoleate dioxygenases in basidiomycetes were identified and characterized. Phylogenetic analysis revealed that linoleate dioxygenases from Basidiomycota formed a distinct clade, with linoleate dioxygenases from Agaricomycetes segregating into three groups and those from Ustilaginomycetes forming a separate group. Both basidiomycete and ascomycete linoleate dioxygenases shared two characteristic domains: the N-terminal of linoleate dioxygenase domain and the C-terminal of cytochrome P450 domain. While the linoleate dioxygenase domains exhibited similarity between basidiomycetes and ascomycetes, the cytochrome P450 domains displayed high diversity in key sites. Furthermore, the gene encoding the linoleate dioxygenase <em>Ccldo1</em> in <em>C. cinerea</em> was knocked out, resulting in a significant increase in fruiting body formation without affecting asexual conidia production. This observation suggests that secondary metabolites synthesized by CcLdo1 negatively regulate the sexual reproduction process in <em>C. cinerea</em> while not influencing the asexual reproductive process. 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引用次数: 0
摘要
Coprinopsis cinerea 是一种模式真菌,用于研究基枝菌的发育机制。基枝菌的发育是一个高度组织化的过程,需要遗传、环境和生理因素之间的协调。氧脂素是一类广泛分布的信号分子,在真菌生物学中发挥着至关重要的作用。在氧脂蛋白中,性信息素诱导因子(psi因子)已被确定为无性和有性孢子发育平衡的关键调节因子。亚油酸二氧酶是参与 psi 因子生物合成的酶,但它们在基枝菌发育过程中的具体生理功能仍不清楚。本研究对基生真菌中的亚油酸二氧酶进行了鉴定和表征。系统进化分析表明,基生真菌中的亚油酸二氧合酶形成了一个独特的支系,姬松茸中的亚油酸二氧合酶分为三组,子囊菌中的亚油酸二氧合酶形成了一个独立的组。基枝菌纲和子囊菌纲的亚油酸二氧合酶都有两个共同的特征结构域:亚油酸二氧合酶结构域的 N 端和细胞色素 P450 结构域的 C 端。亚油酸二氧合酶结构域在基生真菌和子囊菌之间表现出相似性,而细胞色素 P450 结构域则在关键位点上表现出高度的多样性。此外,敲除 C. cinerea 中编码亚油酸酯二氧合酶 Ccldo1 的基因后,子实体的形成显著增加,而不影响无性分生孢子的产生。这一观察结果表明,CcLdo1 合成的次生代谢物对 C. cinerea 的有性生殖过程有负面调节作用,而对无性生殖过程没有影响。这项研究首次发现了一个参与次生代谢物合成的基因,该基因调控基生真菌的基果发育。
Characterization of linoleate dioxygenases in basidiomycetes and the functional role of CcLdo1 in regulating fruiting body development in Coprinopsis cinerea
Coprinopsis cinerea, a model fungus, is utilized for investigating the developmental mechanisms of basidiomycetes. The development of basidiomycetes is a highly organized process that requires coordination among genetic, environmental, and physiological factors. Oxylipins, a class of widely distributed signaling molecules, play crucial roles in fungal biology. Among oxylipins, the sexual pheromone-inducing factors (psi factors) have been identified as key regulators of the balance between asexual and sexual spore development in Ascomycetes. Linoleate dioxygenases are enzymes involved in the biosynthesis of psi factors, yet their specific physiological functions in basidiomycete development remain unclear. In this study, linoleate dioxygenases in basidiomycetes were identified and characterized. Phylogenetic analysis revealed that linoleate dioxygenases from Basidiomycota formed a distinct clade, with linoleate dioxygenases from Agaricomycetes segregating into three groups and those from Ustilaginomycetes forming a separate group. Both basidiomycete and ascomycete linoleate dioxygenases shared two characteristic domains: the N-terminal of linoleate dioxygenase domain and the C-terminal of cytochrome P450 domain. While the linoleate dioxygenase domains exhibited similarity between basidiomycetes and ascomycetes, the cytochrome P450 domains displayed high diversity in key sites. Furthermore, the gene encoding the linoleate dioxygenase Ccldo1 in C. cinerea was knocked out, resulting in a significant increase in fruiting body formation without affecting asexual conidia production. This observation suggests that secondary metabolites synthesized by CcLdo1 negatively regulate the sexual reproduction process in C. cinerea while not influencing the asexual reproductive process. This study represents the first identification of a gene involved in secondary metabolite synthesis that regulates basidiocarp development in a basidiomycete.
期刊介绍:
Fungal Genetics and Biology, formerly known as Experimental Mycology, publishes experimental investigations of fungi and their traditional allies that relate structure and function to growth, reproduction, morphogenesis, and differentiation. This journal especially welcomes studies of gene organization and expression and of developmental processes at the cellular, subcellular, and molecular levels. The journal also includes suitable experimental inquiries into fungal cytology, biochemistry, physiology, genetics, and phylogeny.
Fungal Genetics and Biology publishes basic research conducted by mycologists, cell biologists, biochemists, geneticists, and molecular biologists.
Research Areas include:
• Biochemistry
• Cytology
• Developmental biology
• Evolutionary biology
• Genetics
• Molecular biology
• Phylogeny
• Physiology.