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Magnetic-field induced rotation of magnetosome chains in silicified magnetotactic bacteria

机译:硅片磁体细菌中磁场链的磁场诱导旋转

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摘要

Understanding the biological processes enabling magnetotactic bacteria to maintain oriented chains of magnetic iron-bearing nanoparticles called magnetosomes is a major challenge. The study aimed to constrain the role of an external applied magnetic field on the alignment of magnetosome chains in Magnetospirillum magneticum AMB-1 magnetotactic bacteria immobilized within a hydrated silica matrix. A deviation of the chain orientation was evidenced, without significant impact on cell viability, which was preserved after the field was turned-off. Transmission electron microscopy showed that the crystallographic orientation of the nanoparticles within the chains were preserved. Off-axis electron holography evidenced that the change in magnetosome orientation was accompanied by a shift from parallel to anti-parallel interactions between individual nanocrystals. The field-induced destructuration of the chain occurs according to two possible mechanisms: (i) each magnetosome responds individually and reorients in the magnetic field direction and/or (ii) short magnetosome chains deviate in the magnetic field direction. This work enlightens the strong dynamic character of the magnetosome assembly and widens the potentialities of magnetotactic bacteria in bionanotechnology.
机译:了解使能磁性细菌的生物学过程维持磁力传导纳米颗粒的导向链是一个主要的挑战。该研究旨在限制外部施加磁场在固定在水合硅基基质中固定在固定的磁摩托少年块磁性磁体细菌中磁体链中的对准的作用。可引导链取向的偏差,对细胞活力的显着影响,在截止场后被保存。透射电子显微镜显示,保留了链内纳米颗粒的晶体取向。轴轴电子全全息记录证明,磁体取向的变化伴随着平行于各自纳米晶体之间的抗并联相互作用的偏移。基本诱导的链的破坏性根据两个可能的机制发生:(i)每个磁体在磁场方向上单独响应,并且在磁场方向上的重新入射,/或(ii)短磁体链偏离磁场方向。这项工作启发了磁体组装的强大动态特征,并扩大了Bionanootechnology中磁通细菌的潜力。

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