On the Internalisation, Intraplasmodial Carriage and Excretion of Metallic Nanoparticles in the Slime Mould, Physarum Polycephalum

Richard Mayne, David Patton, B. D. L. Costello, A. Adamatzky, R. C. Patton
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引用次数: 30

Abstract

The plasmodium of Physarum polycephalum is a large single cell visible with the naked eye. When inoculated on a substrate with attractants and repellents the plasmodium develops optimal networks of protoplasmic tubes which span sites of attractants (i.e. nutrients) yet avoid domains with a high nutrient concentration. It should therefore be possible to program the plasmodium towards deterministic adaptive transformation of internalised nano- and micro-scale materials. In laboratory experiments with magnetite nanoparticles and glass micro-spheres coated with silver metal we demonstrate that the plasmodium of P. polycephalum can propagate the nano-scale objects using a number of distinct mechanisms including endocytosis, transcytosis and dragging. The results of our experiments could be used in the development of novel techniques targeted towards the growth of metallised biological wires and hybrid nano- and micro-circuits.
多头绒泡菌黏菌中金属纳米颗粒的内化、胞内运输和排泄
多头绒泡菌的疟原虫是肉眼可见的大单细胞。当用引诱剂和驱避剂接种在基质上时,疟原虫会形成最佳的原生质管网络,这些网络跨越引诱剂(即营养物)的位点,但会避开营养物浓度高的区域。因此,应该有可能对疟原虫进行编程,使其向内化纳米和微尺度材料的确定性自适应转化。在磁铁矿纳米颗粒和涂有金属银的玻璃微球的实验室实验中,我们证明了多头疟原虫可以通过许多不同的机制,包括内吞作用、胞吞作用和拖拽作用来传播纳米级物体。我们的实验结果可以用于开发针对金属化生物线和混合纳米和微电路生长的新技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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