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Tracing metabolic pathways of lipid biosynthesis in ectomycorrhizal fungi from position-specific 13C-labelling in glucose

机译:从葡萄糖中的位置特异性13C标记追踪外生菌根真菌中脂质生物合成的代谢途径

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P>Six position-specific 13C-labelled isotopomers of glucose were supplied to the ectomycorrhizal fungi Suillus pungens and Tricholoma flavovirens. From the resulting distribution of 13C among fungal PLFAs, the overall order and contribution of each glucose atom to fatty acid 13C enrichment was: C6 (similar to 31%) > C5 (similar to 25%) > C1 (similar to 18%) > C2 (similar to 18%) > C3 (similar to 8%) > C4 (similar to 1%). These data were used to parameterize a metabolic model of the relative fluxes from glucose degradation to lipid synthesis. Our data revealed that a higher amount of carbon is directed to glycolysis than to the oxidative pentose phosphate pathway (60% and 40% respectively) and that a significant part flows through these pathways more than once (73%) due to the reversibility of some glycolysis reactions. Surprisingly, 95% of carbon cycled through glyoxylate prior to incorporation into lipids, possibly to consume the excess of acetyl-CoA produced during fatty acid turnover. Our approach provides a rigorous framework for analysing lipid biosynthesis in fungi. In addition, this approach could ultimately improve the interpretation of isotopic patterns at natural abundance in field studies.
机译:P>六个位置特异的13C标记的葡萄糖同分异构体被提供给了外生菌根真菌,牛肝菌和黄褐菌。从13C在真菌PLFA中的分布来看,每个葡萄糖原子对脂肪酸13C富集的总体顺序和贡献为:C6(约31%)> C5(约25%)> C1(约18%)> C2(约18%)> C3(约8%)> C4(约1%)。这些数据用于参数化从葡萄糖降解到脂质合成的相对通量的代谢模型。我们的数据表明,与氧化戊糖磷酸途径相比,更多的碳直接用于糖酵解(分别为60%和40%),并且由于某些途径的可逆性,其中很大一部分通过这些途径的流动不止一次(73%)。糖酵解反应。令人惊讶的是,在掺入脂质之前,有95%的碳循环通过乙醛酸盐,可能会消耗掉脂肪酸周转期间产生的过量乙酰基CoA。我们的方法为分析真菌中的脂质生物合成提供了严格的框架。此外,在野外研究中,这种方法最终可以改善自然形态下同位素模式的解释。

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