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微流控集成用于自动化靶向蛋白质组学分析。

Microfluidic integration for automated targeted proteomic assays.

机构信息

Department of Bioengineering, and University of California, Berkeley-University of California San Francisco Graduate Program in Bioengineering, University of California, Berkeley, CA 94720, USA.

出版信息

Proc Natl Acad Sci U S A. 2012 Apr 17;109(16):5972-7. doi: 10.1073/pnas.1108617109. Epub 2012 Apr 2.

Abstract

A dearth of protein isoform-based clinical diagnostics currently hinders advances in personalized medicine. A well-organized protein biomarker validation process that includes facile measurement of protein isoforms would accelerate development of effective protein-based diagnostics. Toward scalable protein isoform analysis, we introduce a microfluidic "single-channel, multistage" immunoblotting strategy. The multistep assay performs all immunoblotting steps: separation, immobilization of resolved proteins, antibody probing of immobilized proteins, and all interim wash steps. Programmable, low-dispersion electrophoretic transport obviates the need for pumps and valves. A three-dimensional bulk photoreactive hydrogel eliminates manual blotting. In addition to simplified operation and interfacing, directed electrophoretic transport through our 3D nanoporous reactive hydrogel yields superior performance over the state-of-the-art in enhanced capture efficiency (on par with membrane electroblotting) and sparing consumption of reagents (ca. 1 ng antibody), as supported by empirical and by scaling analyses. We apply our fully integrated microfluidic assay to protein measurements of endogenous prostate specific antigen isoforms in (i) minimally processed human prostate cancer cell lysate (1.1 pg limit of detection) and (ii) crude sera from metastatic prostate cancer patients. The single-instrument functionality establishes a scalable microfluidic framework for high-throughput targeted proteomics, as is relevant to personalized medicine through robust protein biomarker verification, systematic characterization of new antibody probes for functional proteomics, and, more broadly, to characterization of human biospecimen repositories.

摘要

目前,缺乏基于蛋白质同工型的临床诊断方法阻碍了个性化医疗的发展。一个组织良好的蛋白质生物标志物验证过程,包括方便地测量蛋白质同工型,将加速有效的基于蛋白质的诊断方法的发展。为了实现可扩展的蛋白质同工型分析,我们引入了一种微流控“单通道、多阶段”免疫印迹策略。多步测定法执行所有免疫印迹步骤:分离、已分离蛋白质的固定、固定蛋白质的抗体探测以及所有中间的洗涤步骤。可编程、低分散的电泳传输免除了对泵和阀的需求。三维整体光反应水凝胶消除了手动印迹的需要。除了简化操作和接口之外,通过我们的三维纳米多孔反应水凝胶进行定向电泳传输,在增强的捕获效率(与膜电印迹相当)和试剂消耗的节约(约 1ng 抗体)方面优于最新技术,这得到了经验和扩展分析的支持。我们将我们的完全集成的微流控测定法应用于(i)经最小处理的人前列腺癌细胞裂解物中的内源性前列腺特异性抗原同工型的蛋白质测量和(ii)转移性前列腺癌患者的粗血清中的蛋白质测量。这种单仪器功能为高通量靶向蛋白质组学建立了可扩展的微流控框架,通过对稳健的蛋白质生物标志物的验证、对功能性蛋白质组学的新抗体探针的系统表征以及更广泛地对人类生物标本库的表征,与个性化医疗相关。

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