Hashimoto Light Energy Conversion Project, Exploratory Research for Advanced Technology (ERATO), Japan Science and Technology Agency, Tokyo 113-8656, Japan.
Proc Natl Acad Sci U S A. 2012 Jun 19;109(25):10042-6. doi: 10.1073/pnas.1117592109. Epub 2012 Jun 4.
In anaerobic biota, reducing equivalents (electrons) are transferred between different species of microbes [interspecies electron transfer (IET)], establishing the basis of cooperative behaviors and community functions. IET mechanisms described so far are based on diffusion of redox chemical species and/or direct contact in cell aggregates. Here, we show another possibility that IET also occurs via electric currents through natural conductive minerals. Our investigation revealed that electrically conductive magnetite nanoparticles facilitated IET from Geobacter sulfurreducens to Thiobacillus denitrificans, accomplishing acetate oxidation coupled to nitrate reduction. This two-species cooperative catabolism also occurred, albeit one order of magnitude slower, in the presence of Fe ions that worked as diffusive redox species. Semiconductive and insulating iron-oxide nanoparticles did not accelerate the cooperative catabolism. Our results suggest that microbes use conductive mineral particles as conduits of electrons, resulting in efficient IET and cooperative catabolism. Furthermore, such natural mineral conduits are considered to provide ecological advantages for users, because their investments in IET can be reduced. Given that conductive minerals are ubiquitously and abundantly present in nature, electric interactions between microbes and conductive minerals may contribute greatly to the coupling of biogeochemical reactions.
在厌氧生物群中,还原当量(电子)在不同种类的微生物之间传递[种间电子传递(IET)],从而建立了合作行为和群落功能的基础。迄今为止,所描述的 IET 机制基于氧化还原化学物质的扩散和/或细胞聚集体中的直接接触。在这里,我们展示了另一种可能性,即 IET 也可以通过天然导电矿物中的电流发生。我们的研究表明,导电磁铁矿纳米颗粒有助于 Geobacter sulfurreducens 到 Thiobacillus denitrificans 的 IET,实现了与硝酸盐还原偶联的乙酸盐氧化。尽管在充当扩散氧化还原物质的 Fe 离子存在下,这种两种物种的合作分解代谢发生的速度要慢一个数量级,但也发生了这种情况。半导电和不导电的氧化铁纳米颗粒不会加速合作分解代谢。我们的结果表明,微生物将导电矿物颗粒用作电子的导体,从而实现了有效的 IET 和合作分解代谢。此外,这种天然矿物导管被认为为使用者提供了生态优势,因为它们在 IET 方面的投资可以减少。鉴于导电矿物在自然界中普遍存在且丰富,微生物与导电矿物之间的电相互作用可能会极大地促进生物地球化学反应的耦合。