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Novel Scheme for Biosynthesis of Aryl Metabolites from l-Phenylalanine in the Fungus Bjerkandera adusta

机译:真菌Bjerkandera adusta中1-苯基丙氨酸生物合成芳基代谢物的新方案

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摘要

Aryl metabolite biosynthesis was studied in the white rot fungus Bjerkandera adusta cultivated in a liquid medium supplemented with l-phenylalanine. Aromatic compounds were analyzed by gas chromatography-mass spectrometry following addition of labelled precursors (14C- and 13C-labelled l-phenylalanine), which did not interfere with fungal metabolism. The major aromatic compounds identified were benzyl alcohol, benzaldehyde (bitter almond aroma), and benzoic acid. Hydroxy- and methoxybenzylic compounds (alcohols, aldehydes, and acids) were also found in fungal cultures. Intracellular enzymatic activities (phenylalanine ammonia lyase, aryl-alcohol oxidase, aryl-alcohol dehydrogenase, aryl-aldehyde dehydrogenase, lignin peroxidase) and extracellular enzymatic activities (aryl-alcohol oxidase, lignin peroxidase), as well as aromatic compounds, were detected in B. adusta cultures. Metabolite formation required de novo protein biosynthesis. Our results show that l-phenylalanine was deaminated to trans-cinnamic acid by a phenylalanine ammonia lyase and trans-cinnamic acid was in turn converted to aromatic acids (phenylpyruvic, phenylacetic, mandelic, and benzoylformic acids); benzaldehyde was a metabolic intermediate. These acids were transformed into benzaldehyde, benzyl alcohol, and benzoic acid. Our findings support the hypothesis that all of these compounds are intermediates in the biosynthetic pathway from l-phenylalanine to aryl metabolites. Additionally, trans-cinnamic acid can also be transformed via β-oxidation to benzoic acid. This was confirmed by the presence of acetophenone as a β-oxidation degradation intermediate. To our knowledge, this is the first time that a β-oxidation sequence leading to benzoic acid synthesis has been found in a white rot fungus. A novel metabolic scheme for biosynthesis of aryl metabolites from l-phenylalanine is proposed.
机译:在白腐真菌Bjerkandera adusta中,在补充有1-苯丙氨酸的液体培养基中研究了芳基代谢物的生物合成。加入不干扰真菌代谢的标记前体(14C和13C标记的1-苯丙氨酸)后,通过气相色谱-质谱法分析芳族化合物。鉴定出的主要芳香族化合物为苯甲醇,苯甲醛(苦杏仁香气)和苯甲酸。在真菌培养物中还发现了羟基和甲氧基苄基化合物(醇,醛和酸)。在B中检测到细胞内酶活性(苯丙氨酸氨裂合酶,芳基醇氧化酶,芳基醇脱氢酶,芳基醛脱氢酶,木质素过氧化物酶)和细胞外酶活性(芳基醇氧化酶,木质素过氧化物酶)以及芳香族化合物。 。adusta文化。代谢产物的形成需要从头进行蛋白质生物合成。我们的结果表明,L-苯丙氨酸被苯丙氨酸氨裂合酶脱氨为肉桂酸,而反肉桂酸又被转化为芳族酸(苯丙酮酸,苯乙酸,扁桃酸和苯甲酰基甲酸)。苯甲醛是代谢中间体。这些酸被转化为苯甲醛,苯甲醇和苯甲酸。我们的发现支持以下假设:所有这些化合物都是从1-苯丙氨酸到芳基代谢物的生物合成途径的中间体。另外,反式肉桂酸也可以通过β-氧化转化为苯甲酸。苯乙酮是β-氧化降解中间体,这证实了这一点。据我们所知,这是首次在白腐真菌中发现导致苯甲酸合成的β-氧化序列。提出了一种从1-苯丙氨酸生物合成芳基代谢物的新的代谢方案。

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