首页> 美国卫生研究院文献>G3: GenesGenomesGenetics >Predicted Glycerol 3-Phosphate Dehydrogenase Homologs and the Glycerol Kinase GlcA Coordinately Adapt to Various Carbon Sources and Osmotic Stress in Aspergillus fumigatus
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Predicted Glycerol 3-Phosphate Dehydrogenase Homologs and the Glycerol Kinase GlcA Coordinately Adapt to Various Carbon Sources and Osmotic Stress in Aspergillus fumigatus

机译:预测的甘油3-磷酸脱氢酶同源物和甘油激酶GlcA协调适应烟曲霉的各种碳源和渗透胁迫

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摘要

Glycerol plays an important role in the adaptation of fungi to various microenvironments and stressors, including heat shock, anoxic conditions and osmotic stress. Glycerol 3-phosphate dehydrogenase (G3PDH) is able to catalyze dihydroxyacetone phosphate to glycerol 3-phosphate (G3P), which is subsequently dephosphorylated into glycerol. However, current knowledge about the functions of G3PDH homologs in glycerol biosynthesis in Aspergillus fumigatus is limited. Here, we show that the A. fumigatus G3PDH gene, gfdA, is crucial for normal colony growth in glucose media under both normoxic and hypoxic conditions. In addition, failure of the overexpression of the gfdA homolog, gfdB, to rescue the phenotype of a gfdA null mutant suggests that gfdA plays a predominant role in the synthesis of G3P and glycerol. However, in a wild-type background, overexpressing either gfdA or gfdB is able to significantly enhance biomass production of mycelia, suggesting that gfdA and gfdB have similar functions in promoting the use of glucose. Interestingly, overexpression of the gene encoding the predicted glycerol kinase, GlcA, which is capable of phosphorylating glycerol to form G3P, significantly rescues the growth defects of gfdA null mutants in glucose media, indicating that the growth defects of gfdA null mutants might be due to the absence of G3P rather than glycerol. Moreover, Western blotting analysis revealed that gfdA is inducibly expressed by osmotic mediators. However, in the absence of gfdA, osmotic stress can rescue colony growth defects and allow colonies to partially bypass the gfdA requirement in a high osmolarity glycerol pathway-dependent manner. Therefore, the findings of this study elucidate how saprophytic filamentous fungi have developed pathways distinct from those of budding yeasts to adapt to varied carbon sources and survive environmental stresses.
机译:甘油在真菌适应各种微环境和应激源(包括热休克,缺氧条件和渗透胁迫)中起重要作用。甘油3-磷酸脱氢酶(G3PDH)能够将磷酸二羟基丙酮催化生成3-磷酸甘油(G3P),随后将其磷酸化为甘油。但是,目前关于烟曲霉中G3PDH同系物在甘油生物合成中的功能的知识是有限的。在这里,我们显示了烟曲霉G3PDH基因gfdA对于在常氧和低氧条件下葡萄糖培养基中正常菌落的生长至关重要。此外,gfdA同源物gfdB的过表达未能挽救gfdA空突变体的表型,这表明gfdA在G3P和甘油的合成中起主要作用。但是,在野生型背景下,过表达gfdA或gfdB能够显着增强菌丝体的生物量产生,这表明gfdA和gfdB在促进葡萄糖的利用方面具有相似的功能。有趣的是,编码甘油的预测激酶GlcA的基因过表达,该基因能够使甘油磷酸化以形成G3P,从而大大挽救了gfdA null突变体在葡萄糖培养基中的生长缺陷,这表明gfdA null突变体的生长缺陷可能是由于没有G3P而不是甘油。此外,蛋白质印迹分析表明gfdA由渗透介导物诱导表达。但是,在没有gfdA的情况下,渗透压可以挽救菌落生长缺陷,并允许菌落以高渗透压的甘油途径依赖性方式部分绕过gfdA需求。因此,这项研究的结果阐明了腐生丝状真菌如何发展出与发芽酵母不同的途径,以适应各种碳源并在环境压力下生存。

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