Sensitivity Limits for in vivo ELISA Measurements of Molecular Biomarker Concentrations.

Q4 Medicine
John B Weaver, Yinpeng Shi, Dylan B Ness, Hafsa Khurshid, Anna Cristina S Samia
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引用次数: 6

Abstract

The extremely high sensitivity that has been suggested for magnetic particle imaging has its roots in the unique signal produced by the nanoparticles at the frequencies of the harmonics of the drive field. That sensitivity should be translatable to other methods that utilize magnetic nanoparticle probes, specifically towards magnetic nanoparticle spectroscopy that is used to measure molecular biomarker concentrations for an "in vivo ELISA" assay approach. In this paper, we translate the predicted sensitivity of magnetic particle imaging into a projected sensitivity limit for in vivo ELISA. The simplifying assumptions adopted are: 1) the limiting noise in the detection system is equivalent to the minimum detectable mass of nanoparticles; 2) the nanoparticle's signal arising from Brownian relaxation is completely eliminated by the molecular binding event, which can be accomplished by binding the nanoparticle to something so massive that it can no longer physically rotate and is large enough that Neel relaxation is minimal. Given these assumptions, the equation for the minimum concentration of molecular biomarker we should be able to detect is obtained and the in vivo sensitivity is estimated to be in the attomolar to zeptomolar range. Spectrometer design and nonspecific binding are the technical limitations that need to be overcome to achieve the theoretical limit presented.

Abstract Image

体内酶联免疫吸附法测定分子生物标志物浓度的灵敏度极限。
磁颗粒成像的极高灵敏度源于纳米颗粒在驱动场谐波频率下产生的独特信号。这种敏感性应该可以转化为其他利用磁性纳米颗粒探针的方法,特别是用于测量分子生物标志物浓度的磁性纳米颗粒光谱的“体内ELISA”测定方法。在本文中,我们将磁颗粒成像的预测灵敏度转化为体内ELISA的预测灵敏度极限。采用的简化假设是:1)检测系统中的极限噪声相当于纳米颗粒的最小可检测质量;2)纳米粒子由布朗弛豫产生的信号被分子结合事件完全消除,分子结合事件可以通过将纳米粒子绑定到一个大到不能再物理旋转的物体上来实现,这个物体足够大,以至于尼尔弛豫最小。根据这些假设,得到了我们应该能够检测到的分子生物标志物的最低浓度方程,并且体内灵敏度估计在原子摩尔到齐摩尔范围内。光谱仪的设计和非特异性结合是达到理论极限需要克服的技术限制。
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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来源期刊
International Journal on Magnetic Particle Imaging
International Journal on Magnetic Particle Imaging Medicine-Radiology, Nuclear Medicine and Imaging
CiteScore
1.20
自引率
0.00%
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