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首页> 外文期刊>Antonie van Leeuwenhoek: Journal of Microbiology and serology >Inquisition of Microcystis aeruginosa and Synechocystis nanowires: characterization and modelling
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Inquisition of Microcystis aeruginosa and Synechocystis nanowires: characterization and modelling

机译:微囊杆菌铜绿假单胞菌和综合症纳米线的探究:表征和建模

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Identification of extracellular conductive pilus-like structures (PLS) i.e. microbial nanowires has spurred great interest among scientists due to their potential applications in the fields of biogeochemistry, bioelectronics, bioremediation etc. Using conductive atomic force microscopy, we identified microbial nanowires in Microcystis aeruginosa PCC 7806 which is an aerobic, photosynthetic microorganism. We also confirmed the earlier finding that Synechocystis sp. PCC 6803 produces microbial nanowires. In contrast to the use of highly instrumented continuous flow reactors for Synechocystis reported earlier, we identified simple and optimum culture conditions which allow increased production of nanowires in both test cyanobacteria. Production of these nanowires in Synechocystis and Microcystis were found to be sensitive to the availability of carbon source and light intensity. These structures seem to be proteinaceous in nature and their diameter was found to be 4.5-7 and 8.5-11 nm in Synechocystis and M. aeruginosa, respectively. Characterization of Synechocystis nanowires by transmission electron microscopy and biochemical techniques confirmed that they are type IV pili (TFP) while nanowires in M. aeruginosa were found to be similar to an unnamed protein (GenBank : CAO90693.1). Modelling studies of the Synechocystis TFP subunit i.e. PilA1 indicated that strategically placed aromatic amino acids may be involved in electron transfer through these nanowires. This study identifies PLS from Microcystis which can act as nanowires and supports the earlier hypothesis that microbial nanowires are widespread in nature and play diverse roles.
机译:鉴定细胞外导电菌革状结构(PLS),即微生物纳米线在使用导电原子力显微镜的生物地球化学,生物电化学,生物修复等领域的潜在应用,我们在科学家们对科学家感到兴趣。我们鉴定了微囊肿铜绿假单胞菌PCC中的微生物纳米线7806这是一种有氧的光合微生物。我们还确认了较早的发现SyneChocystis SP。 PCC 6803产生微生物纳米线。相反,对于先前报道的综合症的高仪表连续流量反应器,我们确定了简单且最佳的培养条件,允许在两种测试蓝杆菌中增加纳米线的产生。发现这些纳米线在同步细胞和微阴压中的产生对碳源和光强度的可用性敏感。这些结构似乎是蛋白质的性质,分别在SyneChocystis和M.铜绿假单胞菌中发现它们的直径为4.5-7和8.5-11nm。通过透射电子显微镜和生物化学技术表征SyneChocystis纳米线的表征证实它们是IV型pili(TFP),而发现M.铜绿假单胞菌中的纳米线类似于未命名的蛋白质(Genbank:CaO9063.1)。 SyneChocystis TFP亚基的建模研究I.e.I.I11表明,策略性放置的芳族氨基酸可通过这些纳米线涉及电子传递。该研究识别来自微囊杆菌的PLS,其可以充当纳米线并支持前面的假设,即微生物纳米线在自然界中普及并发挥不同的作用。

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