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Projection method as a probe for multiplexing/demultiplexing of magnetically enriched biological tissues

机译:投影方法作为用于多路复用/解复用的磁性富集的生物组织的探针

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The unmet demand for cheap, accurate, and fast multiplexing of biomarkers has urged nanobiotechnology to prioritize the invention of new biomarkers that make feasible the remote detection, identification, and quantification of biological units, such as regenerative tissues. Here, we introduce a novel approach that highlights magnetic nanowires (MNWs) with such capabilities. This method employs the stable magnetization states of MNWs as a unique characteristic that can be realized by projecting the MNWs' switching field on the backward field (P-Hb), also known as the irreversible switching field. Experimentally, several types of MNWs were directly synthesized inside polycarbonate tissues and their P-Hb characteristics were measured and analyzed. Our results show that the P-Hb gives an excellent identification and quantification characteristic for demultiplexing MNWs embedded in these tissues. Furthermore, this method significantly improves the characterization speed by a factor of 50x-100x that makes it superior to the current state of the art that ceased the progression of magnetic nanoparticles in multiplexing/demultiplexing applications.
机译:对生物标志物的廉价,准确和快速复用的未满足的需求已经推动了纳米能力,优先考虑新的生物标志物的发明,使得可行的远程检测,鉴定和定量生物单位(例如再生组织)。这里,我们介绍一种新的方法,该方法突出显示磁纳米线(MNW)的能力。该方法采用MNW的稳定磁化状态作为独特的特性,这可以通过突出向后场(P-HB)上的MNWS的开关字段来实现,也称为不可逆的开关场。通过实验,在聚碳酸酯组织内直接合成几种类型的MNW,并测量并分析它们的P-HB特征。我们的结果表明,P-HB对嵌入在这些组织中的多路分解MNW进行了优异的鉴定和定量特性。此外,该方法显着提高了表征速度,其倍数为50x-100倍,使其优于磁纳米粒子在多路复用/解复用应用中的磁性纳米颗粒的进展的当前状态。

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