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Biosensing Based on Magnetically Induced Self-Assembly of Particles in Magnetic Colloids

机译:基于磁性胶体中粒子的磁诱导自组装的生物传感

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Superparamagnetic beads and nonmagnetic beads of different sizes were assembled to form a "ring-structure" in a magnetorheological (MR) fluid solution by the application of external magnetic fields. For superparamagnetic beads and non-magnetic beads functionalized with probe and target molecules, respectively, the ring-structure was maintained even after removing the external magnetic field due to biomolecular bonding. Several experiments are described, including the formation process of ring-structures with and without molecular interactions, the accelerating effect of external magnetic fields, and the effect of biotin concentration on the structures of the rings. We define the small nonmagnetic particles as "petals" because the whole structure looks like a flower. The number of remnant ring petals was a function of the concentration of target molecules in the concentration range of 0.0768 ng/ml~3.8419 ng/ml which makes this protocol a promising method for biosensing. Not only was the formation process rapid, but the resulting two-dimensional colloidal system also offers a simple method for reducing reagent consumption and waste generation.
机译:通过施加外部磁场,在磁流变(MR)流体溶液中组装不同尺寸的超顺磁性珠和非磁性珠,以形成“环结构”。对于分别用探针和靶分子功能化的超顺磁性珠和非磁性珠,即使在由于生物分子键合而除去外部磁场之后,环结构仍得以保持。描述了几个实验,包括具有和没有分子相互作用的环结构的形成过程,外部磁场的加速作用以及生物素浓度对环结构的影响。我们将小的非磁性粒子定义为“花瓣”,因为整个结构看起来像一朵花。在0.0768 ng / ml〜3.8419 ng / ml的浓度范围内,残留环瓣的数目是靶分子浓度的函数,这使该方案成为一种有前途的生物传感方法。不仅形成过程迅速,而且所得的二维胶体系统还提供了一种减少试剂消耗和废物产生的简单方法。

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