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Working principle and application of magnetic separation for biomedical diagnostic at high- and low-field gradients

机译:磁场分离在高场和低场梯度下的生物医学诊断工作原理和应用

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摘要

Magnetic separation is a versatile technique used in sample preparation for diagnostic purpose. For such application, an external magnetic field is applied to drive the separation of target entity (e.g. bacteria, viruses, parasites and cancer cells) from a complex raw sample in order to ease the subsequent task(s) for disease diagnosis. This separation process not only can be achieved via the utilization of high magnetic field gradient, but also, in most cases, low magnetic field gradient with magnitude less than 100 T m−1 is equally feasible. It is the aim of this review paper to summarize the usage of both high gradient magnetic separation and low gradient magnetic separation (LGMS) techniques in this area of research. It is noteworthy that effectiveness of the magnetic separation process not only determines the outcome of a diagnosis but also directly influences its accuracy as well as sensing time involved. Therefore, understanding the factors that simultaneously influence the efficiency of both magnetic separation process and target detection is necessary. Moreover, for LGMS, there are several important considerations that should be taken into account in order to ensure its successful implementation. Hence, this review paper aims to provide an overview to relate all this crucial information by linking the magnetic separation theory to biomedical diagnostic applications.
机译:磁分离是用于诊断目的的样品制备中的一种通用技术。对于这样的应用,施加外部磁场以驱动从复杂的原始样品中分离目标实体(例如细菌,病毒,寄生虫和癌细胞),以便于进行随后的疾病诊断任务。这种分离过程不仅可以通过利用高磁场梯度来实现,而且在大多数情况下,大小小于100 T m -1 的低磁场梯度同样可行。本文的目的是总结高梯度磁分离和低梯度磁分离(LGMS)技术在该研究领域中的使用。值得注意的是,磁选过程的有效性不仅决定诊断的结果,而且直接影响其准确性以及所涉及的检测时间。因此,有必要了解同时影响磁选过程和目标检测效率的因素。此外,对于LGMS,为了确保其成功实施,应考虑几个重要的考虑因素。因此,本综述旨在通过将磁分离理论与生物医学诊断应用联系起来,提供概述所有这些关键信息的方法。

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