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Nutritional Regulation of Lignin Degradation by Phanerochaete chrysosporium

机译:Phanerochaete chrysosporium对木质素降解的营养调控

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Previous studies have shown that a lignin-degrading system appears in cultures of the white rot fungus Phanerochaete chrysosporium in response to nitrogen starvation, apparently as part of secondary metabolism. We examined the influence of limiting carbohydrate, sulfur, or phosphorus and the effect of varying the concentrations of four trace metals, Ca2+, and Mg2+. Limitation of carbohydrate or sulfur but not limitation of phosphorus triggered ligninolytic activity. When only carbohydrate was limiting, supplementary carbohydrate caused a transient repression of activity. In carbohydrate-limited cultures, ligninolytic activity appeared when the supplied carbohydrate was depleted, and this activity was associated with a decrease in mycelial dry weight. The amount of lignin degraded depended on the amount of carbohydrate provided, which determined the amount of mycelium produced during primary growth. Carbohydrate-limited cultures synthesized only small amounts of the secondary metabolite veratryl alcohol compared with nitrogen-limited cultures. l-Glutamate sharply repressed ligninolytic activity in carbohydrate-starved cultures, but NH4+ did not. Ligninolytic activity was also triggered in cultures supplied with 37 μM sulfur as the only limiting nutrient. The balance of trace metals, Mg2+, and Ca2+ was important for lignin degradation.
机译:先前的研究表明,木质素降解系统出现在白腐真菌Phanerochaete chrysosporium的培养物中,这是对氮饥饿的一种响应,显然是次级代谢的一部分。我们研究了限制碳水化合物,硫或磷的影响以及改变四种痕量金属Ca2 +和Mg2 +的浓度的影响。碳水化合物或硫的限制而不是磷的限制触发了木质素分解活性。当仅碳水化合物受到限制时,补充碳水化合物会导致活动的短暂抑制。在碳水化合物有限的培养物中,当所提供的碳水化合物耗尽时会出现木质素分解活性,并且这种活性与菌丝体干重的减少有关。木质素降解的数量取决于所提供的碳水化合物的数量,而碳水化合物的数量决定了初级生长过程中产生的菌丝体的数量。与氮限制培养相比,碳水化合物限制培养仅合成了少量的次生代谢产物藜芦醇。 1-谷氨酸在缺乏碳水化合物的培养物中能显着抑制木质素分解活性,但NH4 +却不能。在提供37μM硫作为唯一限制性营养素的培养物中,木质​​素分解活性也被触发。微量金属,Mg2 +和Ca2 +的平衡对于木质素降解很重要。

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