Detection of biomarkers using recombinant antibodies coupled to nanostructured platforms.

Nano reviews Pub Date : 2012-01-01 Epub Date: 2012-07-23 DOI:10.3402/nano.v3i0.17240
Michael R Kierny, Thomas D Cunningham, Brian K Kay
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引用次数: 63

Abstract

The utility of biomarker detection in tomorrow's personalized health care field will mean early and accurate diagnosis of many types of human physiological conditions and diseases. In the search for biomarkers, recombinant affinity reagents can be generated to candidate proteins or post-translational modifications that differ qualitatively or quantitatively between normal and diseased tissues. The use of display technologies, such as phage-display, allows for manageable selection and optimization of affinity reagents for use in biomarker detection. Here we review the use of recombinant antibody fragments, such as scFvs and Fabs, which can be affinity-selected from phage-display libraries, to bind with both high specificity and affinity to biomarkers of cancer, such as Human Epidermal growth factor Receptor 2 (HER2) and Carcinoembryonic antigen (CEA). We discuss how these recombinant antibodies can be fabricated into nanostructures, such as carbon nanotubes, nanowires, and quantum dots, for the purpose of enhancing detection of biomarkers at low concentrations (pg/mL) within complex mixtures such as serum or tissue extracts. Other sensing technologies, which take advantage of 'Surface Enhanced Raman Scattering' (gold nanoshells), frequency changes in piezoelectric crystals (quartz crystal microbalance), or electrical current generation and sensing during electrochemical reactions (electrochemical detection), can effectively provide multiplexed platforms for detection of cancer and injury biomarkers. Such devices may soon replace the traditional time consuming ELISAs and Western blots, and deliver rapid, point-of-care diagnostics to market.

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利用纳米结构平台偶联的重组抗体检测生物标志物。
生物标志物检测在未来个性化医疗领域的应用将意味着对多种人类生理状况和疾病的早期和准确诊断。在寻找生物标志物的过程中,重组亲和试剂可以生成候选蛋白或翻译后修饰,这些修饰在正常组织和病变组织之间在质量或数量上存在差异。使用显示技术,如噬菌体显示,可以管理选择和优化用于生物标志物检测的亲和试剂。在这里,我们回顾了重组抗体片段的使用,如scFvs和fab,它们可以从噬菌体展示文库中亲和力选择,以高特异性和亲和力结合癌症生物标志物,如人表皮生长因子受体2 (HER2)和癌胚抗原(CEA)。我们讨论了如何将这些重组抗体制造成纳米结构,如碳纳米管、纳米线和量子点,以增强对复杂混合物(如血清或组织提取物)中低浓度(pg/mL)生物标志物的检测。其他传感技术,利用“表面增强拉曼散射”(金纳米壳),压电晶体(石英晶体微天平)的频率变化,或电化学反应过程中的电流产生和传感(电化学检测),可以有效地为检测癌症和损伤生物标志物提供多路平台。这种设备可能很快取代传统耗时的elisa和Western blots,并将快速的即时诊断推向市场。
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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