双孢蘑菇
木质素
菌丝体
化学
蘑菇
蘑菇
擔子菌門
碳纤维
碳源
植物
核化学
食品科学
有机化学
材料科学
生物
生物化学
复合材料
复合数
作者
Katharina Duran,Michael Kohlstedt,Gijs van Erven,Cynthia E. Klostermann,Antoine H. P. America,Edwin J. Bakx,J.J.P. Baars,A. Gorissen,Ries de Visser,Ronald P. de Vries,Christoph Wittmann,Rob N.J. Comans,Thomas W. Kuyper,Mirjam A. Kabel
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2024-04-19
卷期号:10 (16): eadl3419-eadl3419
被引量:59
标识
DOI:10.1126/sciadv.adl3419
摘要
Plant biomass conversion by saprotrophic fungi plays a pivotal role in terrestrial carbon (C) cycling. The general consensus is that fungi metabolize carbohydrates, while lignin is only degraded and mineralized to CO 2 . Recent research, however, demonstrated fungal conversion of 13 C-monoaromatic compounds into proteinogenic amino acids. To unambiguously prove that polymeric lignin is not merely degraded, but also metabolized, carefully isolated 13 C-labeled lignin served as substrate for Agaricus bisporus , the world’s most consumed mushroom. The fungus formed a dense mycelial network, secreted lignin-active enzymes, depolymerized, and removed lignin. With a lignin carbon use efficiency of 0.14 (g/g) and fungal biomass enrichment in 13 C, we demonstrate that A. bisporus assimilated and further metabolized lignin when offered as C-source. Amino acids were high in 13 C-enrichment, while fungal-derived carbohydrates, fatty acids, and ergosterol showed traces of 13 C. These results hint at lignin conversion via aromatic ring-cleaved intermediates to central metabolites, underlining lignin’s metabolic value for fungi.
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