School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02543, USA.
Environ Microbiol. 2013 Apr;15(4):1063-77. doi: 10.1111/1462-2920.12029. Epub 2012 Nov 15.
Microbially mediated oxidation of Mn(II) to Mn(III/IV) oxides influences the cycling of metals and remineralization of carbon. Despite the prevalence of Mn(II)-bearing minerals in nature, little is known regarding the ability of microbes to oxidize mineral-hosted Mn(II). Here, we explored oxidation of the Mn(II)-bearing mineral rhodochrosite (MnCO3 ) and characteristics of ensuing Mn oxides by six Mn(II)-oxidizing Ascomycete fungi. All fungal species substantially enhanced rhodochrosite dissolution and surface modification. Mineral-hosted Mn(II) was oxidized resulting in formation of Mn(III/IV) oxides that were all similar to δ-MnO2 but varied in morphology and distribution in relation to cellular structures and the MnCO3 surface. For four fungi, Mn(II) oxidation occurred along hyphae, likely mediated by cell wall-associated proteins. For two species, Mn(II) oxidation occurred via reaction with fungal-derived superoxide produced at hyphal tips. This pathway ultimately resulted in structurally unique Mn oxide clusters formed at substantial distances from any cellular structure. Taken together, findings for these two fungi strongly point to a role for fungal-derived organic molecules in Mn(III) complexation and Mn oxide templation. Overall, this study illustrates the importance of fungi in rhodochrosite dissolution, extends the relevance of biogenic superoxide-based Mn(II) oxidation and highlights the potential role of mycogenic exudates in directing mineral precipitation.
微生物介导的 Mn(II)氧化为 Mn(III/IV)氧化物会影响金属的循环和碳的再矿化。尽管自然界中存在大量含 Mn(II)的矿物,但对于微生物氧化矿物中结合的 Mn(II)的能力却知之甚少。在这里,我们研究了六种 Mn(II)氧化的子囊菌真菌对含 Mn(II)矿物菱锰矿(MnCO3)的氧化作用及随后的 Mn 氧化物的特征。所有真菌种类都大大促进了菱锰矿的溶解和表面改性。矿物结合的 Mn(II)被氧化,形成了类似于 δ-MnO2 的 Mn(III/IV)氧化物,但在形态和分布上因与细胞结构和 MnCO3 表面的关系而有所不同。对于四种真菌,Mn(II)氧化沿着菌丝发生,可能是由细胞壁相关蛋白介导的。对于两种真菌,Mn(II)氧化是通过与真菌衍生的超氧化物反应发生的,这种超氧化物在菌丝尖端产生。这种途径最终导致在与任何细胞结构都有相当距离的地方形成结构独特的 Mn 氧化物簇。总的来说,这两种真菌的研究结果强烈表明,真菌衍生的有机分子在 Mn(III)络合和 Mn 氧化物模板化中起重要作用。总的来说,这项研究说明了真菌在菱锰矿溶解中的重要性,扩展了生物源超氧化物基 Mn(II)氧化的相关性,并强调了真菌分泌物在指导矿物沉淀方面的潜在作用。