Liu Jia, Liu Xi, Ding Hongrui, Ren Guiping, Sun Yuan, Liu Ying, Ji Xiang, Ma Luyan Z, Li Yan, Lu Anhuai
The Key Laboratory of Orogenic Belts and Crustal Evolution, School of Earth and Space Sciences, Peking University, Beijing Key Laboratory of Mineral Environmental Function, Beijing 100871, China.
State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing 100101, China.
Bioelectrochemistry. 2021 Oct;141:107849. doi: 10.1016/j.bioelechem.2021.107849. Epub 2021 May 26.
Focusing the marine euphotic zone, which is the pivotal region for interaction of solar light-mineral-microorganism and the elements cycle, we have conducted the research on the mechanism of semiconducting minerals promoting extracellular electron transfer with microorganisms in depth. Therein, anatase which is one of the most representative semiconducting minerals in marine euphotic zone was selected. The mineralogical characterization of anatase was identified by ESEM, AFM, EDS, Raman, XRD, and its semiconducting characteristics was determined by UV-Vis and Mott-Schottky plots. Determined by the electrochemical measurement of I-t curves, the photocurrent density of anatase was more prominent than dark current density. Pseudomonas aeruginosa PAO1 was widely distributed in the euphotic zone, and its mutants of operons deficient in biosynthesis pyocyanin (Δphz1Δphz2) and pili deficient (ΔpilA) were employed in this study. I-t curves indicated that both direct and indirect extracellular electron transfer processes occurred between anatase and PAO1. The indirect electron transfer depending on pyocyanin secreted by PAO1 was the main electron transfer mode. This work demonstrated the light-driven extracellular electron transfer and further revealed the photo-catalyzed mechanisms between anatase and PAO1 in marine euphotic zone.
聚焦于海洋真光层,这是太阳光 - 矿物质 - 微生物相互作用及元素循环的关键区域,我们深入开展了半导体矿物促进微生物细胞外电子转移机制的研究。其中,选择了海洋真光层中最具代表性的半导体矿物之一锐钛矿。通过环境扫描电子显微镜(ESEM)、原子力显微镜(AFM)、能谱仪(EDS)、拉曼光谱(Raman)、X射线衍射仪(XRD)对锐钛矿进行矿物学表征,并通过紫外可见光谱(UV - Vis)和莫特 - 肖特基曲线(Mott - Schottky plots)确定其半导体特性。通过电流 - 时间(I - t)曲线的电化学测量确定,锐钛矿的光电流密度比暗电流密度更显著。铜绿假单胞菌PAO1广泛分布于真光层,本研究采用了其生物合成绿脓菌素缺陷型操纵子突变体(Δphz1Δphz2)和菌毛缺陷型突变体(ΔpilA)。I - t曲线表明,锐钛矿与PAO1之间发生了直接和间接的细胞外电子转移过程。依赖于PAO1分泌的绿脓菌素的间接电子转移是主要的电子转移模式。这项工作证明了光驱动的细胞外电子转移,并进一步揭示了海洋真光层中锐钛矿与PAO1之间的光催化机制。