首页> 外文期刊>Applied Microbiology >Heat Stress Modulates Mycelium Growth, Heat Shock Protein Expression, Ganoderic Acid Biosynthesis, and Hyphal Branching of Ganoderma lucidum via Cytosolic Ca2+
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Heat Stress Modulates Mycelium Growth, Heat Shock Protein Expression, Ganoderic Acid Biosynthesis, and Hyphal Branching of Ganoderma lucidum via Cytosolic Ca2+

机译:热应激通过胞质Ca2 +调节灵芝的菌丝体生长,热激蛋白表达,灵芝酸的生物合成和菌丝分支。

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Heat stress (HS) influences the growth and development of organisms. Thus, a comprehensive understanding of how organisms sense HS and respond to it is required. Ganoderma lucidum , a higher basidiomycete with bioactive secondary metabolites, has become a potential model system due to the complete sequencing of its genome, transgenic systems, and reliable reverse genetic tools. In this study, we found that HS inhibited mycelium growth, reduced hyphal branching, and induced the accumulation of ganoderic acid biosynthesis and heat shock proteins (HSPs) in G. lucidum . Our data showed that HS induced a significant increase in cytosolic Ca~(2+) concentration. Further evidence showed that Ca~(2+) might be a factor in the HS-mediated regulation of hyphal branching, ganoderic acid (GA) biosynthesis, and the accumulation of HSPs. Our results further showed that the calcium-permeable channel gene ( cch )-silenced and phosphoinositide-specific phospholipase gene ( plc )-silenced strains reduced the HS-induced increase in HSP expression compared with that observed for the wild type (WT). This study demonstrates that cytosolic Ca~(2+) participates in heat shock signal transduction and regulates downstream events in filamentous fungi.IMPORTANCE Ganoderma lucidum , a higher basidiomycete with bioactive secondary metabolites, has become a potential model system for evaluating how environmental factors regulate the development and secondary metabolism of basidiomycetes. Heat stress (HS) is an important environmental challenge. In this study, we found that HS inhibited mycelium growth, reduced hyphal branching, and induced HSP expression and ganoderic acid biosynthesis in G. lucidum . Further evidence showed that Ca~(2+) might be a factor in the HS-mediated regulation of hyphal branching, GA biosynthesis, and the accumulation of HSPs. This study demonstrates that cytosolic Ca~(2+) participates in heat shock signal transduction and regulates downstream events in filamentous fungi. Our research offers a new way to understand the mechanism underlying the physiological and metabolic responses to other environmental factors in G. lucidum . This research may also provide the basis for heat shock signal transduction studies of other fungi.
机译:热应激(HS)影响生物体的生长和发育。因此,需要对生物如何感知HS并对其做出反应有一个全面的了解。由于具有完整的基因组测序,转基因系统和可靠的反向遗传工具,具有生物活性次生代谢产物的高级担子菌灵芝已经成为潜在的模型系统。在这项研究中,我们发现HS抑制了灵芝中菌丝体的生长,减少了菌丝的分支,并诱导了灵芝酸的生物合成和热休克蛋白(HSPs)的积累。我们的数据显示,HS诱导胞质Ca〜(2+)浓度显着增加。进一步的证据表明Ca〜(2+)可能是HS介导的菌丝分支调节,灵芝酸(GA)生物合成和HSP积累的一个因素。我们的结果进一步表明,与野生型(WT)相比,钙渗透性通道基因(cch)沉默和磷酸肌醇特异性磷脂酶基因(plc)沉默的菌株减少了HS诱导的HSP表达增加。这项研究表明,胞质Ca〜(2+)参与了热激信号的传导并调节丝状真菌的下游事件。重要的灵芝,一种具有生物活性次生代谢产物的担子菌,已成为评估环境因素如何调节细菌代谢的潜在模型系统。菌的发育和次级代谢。热应力(HS)是一项重要的环境挑战。在这项研究中,我们发现HS可以抑制灵芝中菌丝体的生长,减少菌丝分支,并诱导HSP表达和灵芝酸的生物合成。进一步的证据表明Ca〜(2+)可能是HS介导的菌丝分支调节,GA生物合成和HSP积累的一个因素。这项研究表明胞质Ca〜(2+)参与热激信号转导并调节丝状真菌的下游事件。我们的研究提供了一种新的方式来了解灵芝对其他环境因子的生理和代谢反应的潜在机制。该研究也可为其他真菌的热激信号转导研究提供基础。

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