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本文引用的文献

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Magnetic levitation of single cells.单细胞的磁悬浮
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2
On the Slow Diffusion of Point-of-Care Systems in Therapeutic Drug Monitoring.在治疗药物监测中的即时检测系统的缓慢扩散。
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Paper and flexible substrates as materials for biosensing platforms to detect multiple biotargets.纸和柔性基板作为用于检测多种生物靶标的生物传感平台的材料。
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Microchip ELISA coupled with cell phone to detect ovarian cancer HE4 biomarker in urine.微芯片酶联免疫吸附测定法结合手机检测尿液中的卵巢癌HE4生物标志物。
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Two-dimensional acoustic particle focusing enables sheathless chip Coulter counter with planar electrode configuration.二维声粒子聚焦使得平面电极结构的无鞘片库尔特计数器成为可能。
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Guided and magnetic self-assembly of tunable magnetoceptive gels.可调谐磁敏凝胶的导向和磁性自组装
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Cell separation using tilted-angle standing surface acoustic waves.使用倾斜角驻波表面声波进行细胞分离。
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Immunological analyses of whole blood via "microfluidic drifting" based flow cytometric chip.通过基于“微流体漂移”的流式细胞术芯片对全血进行免疫分析。
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9
Micro-a-fluidics ELISA for rapid CD4 cell count at the point-of-care.用于即时护理时快速检测CD4细胞计数的微流控酶联免疫吸附测定法。
Sci Rep. 2014 Jan 22;4:3796. doi: 10.1038/srep03796.
10
Paramagnetic ionic liquids for measurements of density using magnetic levitation.利用磁悬浮测量密度的顺磁离子液体。
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将手机成像与磁悬浮技术相结合(i-LEV)用于即时居家无标记血液分析。

Integrating Cell Phone Imaging with Magnetic Levitation (i-LEV) for Label-Free Blood Analysis at the Point-of-Living.

作者信息

Baday Murat, Calamak Semih, Durmus Naside Gozde, Davis Ronald W, Steinmetz Lars M, Demirci Utkan

机构信息

Canary Center at Stanford for Cancer Early Detection, Radiology Department, School of Medicine, Stanford University, CA, USA, 94304.

Department of Biochemistry, School of Medicine, Stanford University, CA, USA, 94304.

出版信息

Small. 2016 Mar 2;12(9):1222-1229. doi: 10.1002/smll.201501845. Epub 2015 Nov 2.

DOI:10.1002/smll.201501845
PMID:26523938
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4775401/
Abstract

There is an emerging need for portable, robust, inexpensive, and easy-to-use disease diagnosis and prognosis monitoring platforms to share health information at the point-of-living, including clinical and home settings. Recent advances in digital health technologies have improved early diagnosis, drug treatment, and personalized medicine. Smartphones with high-resolution cameras and high data processing power enable intriguing biomedical applications when integrated with diagnostic devices. Further, these devices have immense potential to contribute to public health in resource-limited settings where there is a particular need for portable, rapid, label-free, easy-to-use, and affordable biomedical devices to diagnose and continuously monitor patients for precision medicine, especially those suffering from rare diseases, such as sickle cell anemia, thalassemia, and chronic fatigue syndrome. Here, a magnetic levitation-based diagnosis system is presented in which different cell types (i.e., white and red blood cells) are levitated in a magnetic gradient and separated due to their unique densities. Moreover, an easy-to-use, smartphone incorporated levitation system for cell analysis is introduced. Using our portable imaging magnetic levitation (i-LEV) system, it is shown that white and red blood cells can be identified and cell numbers can be quantified without using any labels. In addition, cells levitated in i-LEV can be distinguished at single-cell resolution, potentially enabling diagnosis and monitoring, as well as clinical and research applications.

摘要

对于便携式、坚固耐用、价格低廉且易于使用的疾病诊断和预后监测平台的需求日益增长,以便在生活现场(包括临床和家庭环境)共享健康信息。数字健康技术的最新进展改善了早期诊断、药物治疗和个性化医疗。配备高分辨率摄像头和高数据处理能力的智能手机与诊断设备集成后,可实现引人入胜的生物医学应用。此外,这些设备在资源有限的环境中对公共卫生具有巨大潜力,在这些环境中,特别需要便携式、快速、无标记、易于使用且价格合理的生物医学设备来诊断和持续监测患者以实现精准医疗,尤其是那些患有镰状细胞贫血、地中海贫血和慢性疲劳综合征等罕见疾病的患者。在此,提出了一种基于磁悬浮的诊断系统,其中不同类型的细胞(即白细胞和红细胞)在磁梯度中悬浮,并因其独特的密度而分离。此外,还介绍了一种易于使用的、集成了智能手机的用于细胞分析的悬浮系统。使用我们的便携式成像磁悬浮(i-LEV)系统表明,无需使用任何标记即可识别白细胞和红细胞并对细胞数量进行定量。此外,在i-LEV中悬浮的细胞可以在单细胞分辨率下进行区分,这有可能实现诊断和监测以及临床和研究应用。