Institute of Surface-Earth System Science, School of Earth System Science, Tianjin Key Laboratory of Earth Critical Zone Science and Sustainable Development in Bohai Rim, Tianjin University, Tianjin 300072, China.
Jiangsu Provincial Key Laboratory for Organic Solid Waste Utilization, College of Resource & Environmental Sciences, Nanjing Agricultural University, Nanjing 210095, China.
Environ Sci Technol. 2022 Jan 4;56(1):672-680. doi: 10.1021/acs.est.1c06596. Epub 2021 Dec 14.
Fungal-mediated extracellular reactive oxygen species (ROS) are essential for biogeochemical cycles of carbon, nitrogen, and contaminants in terrestrial environments. These ROS levels may be modulated by iron nanoparticles that possess intrinsic peroxidase (POD)-like activity (nanozymes). However, it remains largely undescribed how fungi modulate the POD-like activity of the iron nanoparticles with various crystallinities and crystal facets. Using well-controlled fungal-mineral cultivation experiments, here, we showed that fungi possessed a robust defect engineering strategy to modulate the POD-like activity of the attached iron minerals by decreasing the catalytic activity of poorly ordered ferrihydrite but enhancing that of well-crystallized hematite. The dynamics of POD-like activity were found to reside in molecular trade-offs between lattice oxygen and oxygen vacancies in the iron nanoparticles, which may be located in a cytoprotective fungal exoskeleton. Together, our findings unveil coupled POD-like activity and oxygen redox dynamics during fungal-mineral interactions, which increase the understanding of the catalytic mechanisms of POD-like nanozymes and microbial-mediated biogeochemical cycles of nutrient elements as well as the attenuation of contaminants in terrestrial environments.
真菌介导的细胞外活性氧(ROS)对于陆地环境中碳、氮和污染物的生物地球化学循环至关重要。这些 ROS 水平可能会受到具有固有过氧化物酶(POD)样活性(纳米酶)的铁纳米粒子的调节。然而,真菌如何调节具有不同结晶度和晶面的铁纳米粒子的 POD 样活性在很大程度上仍未被描述。在这里,我们使用经过良好控制的真菌-矿物培养实验表明,真菌具有强大的缺陷工程策略,可以通过降低无定形水铁矿的催化活性但增强结晶良好的赤铁矿的催化活性来调节附着铁矿物的 POD 样活性。发现 POD 样活性的动力学存在于铁纳米粒子中晶格氧和氧空位之间的分子权衡之中,这些氧空位可能位于细胞保护性真菌外骨骼中。总之,我们的研究结果揭示了真菌-矿物相互作用过程中 POD 样活性和氧氧化还原动力学的耦合,这增加了对 POD 样纳米酶的催化机制以及陆地环境中营养元素的微生物介导的生物地球化学循环和污染物衰减的理解。