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Alteration of the Magnetic Properties of Aquaspirillum magnetotacticum by a Pulse Magnetization Technique

机译:脉冲磁化技术改变水螺螺旋藻的磁性

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摘要

The presence of a narrow shape and size distribution for magnetite crystals within magnetotactic organisms suggests strongly that there are species-specific mechanisms that control the process of biomineralization. In order to explore the extent of this control, cultures of Aquaspirillum magnetotacticum in the exponential growth phase were exposed to increasing magnetic pulses with the aim of separating cell populations on the basis of their magnetic coercivities. Isothermal remanent magnetization and anhysteretic remanent magnetization studies were performed with freeze-dried magnetic cells after the remagnetization treatment. Subpopulations of A. magnetotacticum that showed an increase in coercivity correlated with the intensity of the magnetic pulses were isolated. After successive subcultures of the remaining north-seeking cells, a maximum bulk coercivity (Hbmax) of 40 mT was obtained after treatment with a 55-mT pulse. Although we obtained A. magnetotacticum variants displaying higher coercivities than the wild-type strain, changes in crystal size or shape of the magnetite crystals were below reliable detection limits with transmission electron microscopy. Attempts to shift the coercivity towards higher values caused it to decrease, a change which was accompanied by an increase in magnetostatic interactions of the magnetosome chains as well as an increase in the cell population displaying an abnormal distribution of the magnetosome chains. Ultrastructural analyses of cells and magnetosomes revealed the appearance of cystlike bodies which occasionally contained magnetosomes. The increase in cystlike cells and abnormal magnetosome chains when higher magnetic pulses were used suggested that magnetosomes were collapsing because of stronger interparticle magnetostatic forces.
机译:在趋磁生物内,磁铁矿晶体的形状和尺寸分布较窄,这强烈表明存在控制生物矿化过程的特定物种机制。为了探索这种控制的程度,将处于指数生长期的磁链水成螺旋藻培养物暴露于增加的磁脉冲下,目的是根据其磁矫顽力分离细胞群体。磁化处理后,对冻干的磁性细胞进行了等温剩余磁化和磁滞剩余磁化研究。分离了表现出矫顽力增加与磁脉冲强度相关的磁趋线杆菌亚群。其余的寻北细胞连续传代培养后,用55 mT脉冲处理后,获得的最大整体矫顽力(Hb max )为40 mT。尽管我们获得了比野生型菌株具有更高矫顽力的磁趋线变种,但磁铁矿晶体的晶体尺寸或形状变化均低于透射电子显微镜的可靠检测极限。试图将矫顽力移向更高的值会导致其降低,这种变化伴随着磁小体链的静磁相互作用的增加以及显示出磁小体链的异常分布的细胞群的增加。细胞和磁小体的超微结构分析显示出囊状小体的出现,偶尔含有磁小体。当使用较高的磁脉冲时,囊样细胞和异常的磁小体链的增加表明,由于更强的粒子间静磁力,磁小体正在坍塌。

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