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A highly conductive fibre network enables centimetre-scale electron transport in multicellular cable bacteria

机译:高导电纤维网络使得多细胞电缆细菌中的厘米级电子传输能够

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Biological electron transport is classically thought to occur over nanometre distances, yet recent studies suggest that electrical currents can run along centimetre-long cable bacteria. The phenomenon remains elusive, however, as currents have not been directly measured, nor have the conductive structures been identified. Here we demonstrate that cable bacteria conduct electrons over centimetre distances via highly conductive fibres embedded in the cell envelope. Direct electrode measurements reveal nanoampere currents in intact filaments up to 10.1?mm long (2000 adjacent cells). A network of parallel periplasmic fibres displays a high conductivity (up to 79?S?cmsup-1/sup), explaining currents measured through intact filaments. Conductance rapidly declines upon exposure to air, but remains stable under vacuum, demonstrating that charge transfer is electronic rather than ionic. Our finding of a biological structure that efficiently guides electrical currents over long distances greatly expands the paradigm of biological charge transport and could enable new bio-electronic applications.
机译:生物电子传输经典思想发生在纳米距离上,但最近的研究表明电流可以沿厘米长的电缆细菌运行。然而,这种现象仍然难以捉摸,因为没有直接测量电流,也没有鉴定导电结构。在这里,我们证明电缆细菌通过嵌入细胞包络嵌入的高导电纤维传导电子在厘米距离上。直接电极测量揭示完整长丝的纳米罐电流,最高可达10.1Ω·mm长(> 2000相邻的细胞)。平行周质纤维的网络显示出高导电率(高达79℃的Δcm -1 ),解释通过完整细丝测量的电流。在暴露于空气时,电导迅速下降,但在真空下保持稳定,证明电荷转移是电子而不是离子。我们发现一种生物学结构,可高效地引导电流远距离扩展了生物电荷运输的范式,可以实现新的生物电子应用。

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