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Degradation of Phenolic Compounds and Ring Cleavage of Catechol by Phanerochaete chrysosporium

机译:Phanerochaete chrysosporium降解酚类化合物和邻苯二酚的环解

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摘要

POL-88, a mutant of the white-rot fungus Phanerochaete chrysosporium, was selected for diminished phenol-oxidizing enzyme activity. A wide variety of phenolic compounds were degraded by ligninolytic cultures of this mutant. With several o-diphenolic substrates, degradation intermediates were produced that had UV spectra consistent with muconic acids. Extensive spectrophotometric and polarographic assays failed to detect classical ring-cleaving dioxygenases in cell homogenates or in extracts from ligninolytic cultures. Even so, a sensitive carrier-trapping assay showed that intact cultures degraded [U-14C]catechol to [14C]muconic acid, establishing the presence of a system capable of 1,2-intradiol fission. Significant accumulation of [14C]muconic acid into carrier occurred only when evolution of 14CO2 from [14C]catechol was inhibited by treating cultures with excess nutrient nitrogen (e.g., l-glutamic acid) or with cycloheximide. l-Glutamic acid is known from past work to repress the ligninolytic system in P. chrysosporium and to mimic the effect of cycloheximide. The results here indicate, therefore, that the enzyme system responsible for degrading ring-cleavage products to CO2 turns over faster than does the system responsible for ring cleavage.
机译:选择POL-88(白腐真菌Phanerochaete chrysosporium的突变体)来降低酚氧化酶的活性。该突变体的木质素分解培养物降解了多种酚类化合物。使用几种邻二酚底物,可生产降解中间体,其紫外光谱与粘康酸一致。广泛的分光光度法和极谱法检测未能在细胞匀浆或木质素分解培养物中提取物检测到经典的开环双加氧酶。即便如此,灵敏的载流子捕获试验表明完整的培养物将[U- 14 C]儿茶酚降解为[ 14 C]粘康酸,建立了一个能够1,2-内二醇裂变。仅当通过处理培养物抑制[ 14 C]邻苯二酚从 14 CO2的放出时,[ 14 C]粘康酸大量积累到载体中含有过量的营养氮(例如l-谷氨酸)或环己酰亚胺。从过去的工作中已知1-谷氨酸可抑制金黄色葡萄球菌的木质素分解系统并模拟环己酰亚胺的作用。因此,此处的结果表明,负责将环裂解产物降解为CO2的酶体系比负责环裂解的体系的翻转速度更快。

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