Fungus-initiated catalytic reactions at hyphal-mineral interfaces drive iron redox cycling and biomineralization

菌丝 赤铁矿 生物矿化 矿物 化学 氧化还原 生物地球化学循环 风化作用 溶解 真菌 环境化学 植物 矿物学 天体生物学 无机化学 地质学 地球化学 生物 有机化学
作者
Guanghui Yu,Zhi-Lai Chi,H. Henry Teng,Hai-Liang Dong,Andreas Kappler,Michael R. Gillings,Matthew L. Polizzotto,Cong-Qiang Liu,Yong‐Guan Zhu
出处
期刊:Geochimica et Cosmochimica Acta [Elsevier BV]
卷期号:260: 192-203 被引量:60
标识
DOI:10.1016/j.gca.2019.06.029
摘要

The ability of fungi to weather a wide range of minerals influences plant nutrition and enhances global biogeochemical cycles of life-essential elements. The fungus-mineral interface plays a key role in weathering, but the specific mechanisms underlying these processes remain poorly understood. Here, we examined fungal-mineral weathering using hematite and Trichoderma guizhouense. We showed that hematite dissolution increased over cultivation time, with the formation of secondary minerals up to ∼3000 µm−2 at the interfaces after 66 h cultivation. Of the hematite associated with hyphae, approximately 15% was converted to the secondary mineral ferrihydrite. Importantly, superoxide radicals were detected at the hyphal tips and along the whole hyphae. During cultivation, a high concentration (∼1000 nM) of hydroxyl radical was also detected. Synchrotron radiation based spectromicroscopies at fungus-mineral interfaces suggest that fungus hyphae alter the local redox state of iron and thus are redox-active. These findings indicate that fungus-initiated catalytic reactions occur at hyphal-mineral interfaces, in view of the fact that superoxide does not diffuse far from the site of formation. Furthermore, these results also suggest that the catalytic reactions may serve as a new strategy for microbial iron uptake. Together, these findings constitute a significant step forward in understanding the ways that fungi make minerals available to biological systems.
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