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Microfluidic Approaches to Multiplexing Heterogeneous Protein Assays.

机译:微流体方法,用于异质蛋白分析的多重化。

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摘要

While genetic sequencing and other technologies have enabled the investigation of DNA and RNA at an unprecedented scale, new tools are needed to more rapidly advance proteomics research. New protein detection technologies can enable improved disease biomarker identification, more efficient antibody epitope mapping for vaccine development, better point of care diagnostic assays, and accelerated drug discovery. Microfluidic approaches to protein measurements can offer advantages over benchtop methods in terms of faster assay times, increased multiplexing, reduced consumption of sample and reagents, compatibility with full automation, and potential for implementation even in locations with limited lab infrastructure.;This dissertation presents the development of three novel microfluidic platforms for multiplexed protein detection in biological samples: 1) A microfluidic Western blot for low-molecular-mass proteins that enables the separation of proteins down to 6.5kDa with 40% higher separation resolution and a >100-fold improved signal to noise ratio in small-pore-size gels compared to previous approaches. 2) A microfluidic device for synthesizing spectrally encoded microspheres for large scale parallel peptide synthesis and other biological multiplexing applications with the potential to code up to millions of uniquely identifiable microspheres through the use of lanthanide nanoparticles. 3) Initial development towards a microfluidic tool for PSA glycan specific isoform identification for improved prostate cancer diagnosis and prognosis.
机译:尽管基因测序和其他技术已使DNA和RNA的研究达到空前的规模,但仍需要新的工具来更快地推进蛋白质组学研究。新的蛋白质检测技术可以改善疾病生物标志物的鉴定,为疫苗开发提供更有效的抗体表位作图,更好的即时诊断方法以及加速的药物发现。微流体蛋白质测量方法与台式方法相比,可以提供更快的化验时间,增加的多重检测,减少的样品和试剂消耗,与全自动化的兼容性以及即使在实验室基础设施有限的地方也具有实施潜力的优势。开发了三种用于生物样品中多重蛋白质检测的新型微流控平台:1)用于低分子量蛋白质的微流控蛋白质印迹,可分离低至6.5kDa的蛋白质,分离分辨率提高40%,并提高了100倍以上与以前的方法相比,小孔径凝胶的信噪比更高。 2)一种微流体装置,用于合成光谱编码的微球,以进行大规模平行肽合成和其他生物多路复用应用,并可能通过使用镧系元素纳米粒子来编码多达数百万个唯一可识别的微球。 3)初步开发了用于PSA聚糖特异性同工型鉴定的微流体工具,以改善前列腺癌的诊断和预后。

著录项

  • 作者

    Gerver, Rachel E.;

  • 作者单位

    University of California, San Francisco with the University of California, Berkeley.;

  • 授予单位 University of California, San Francisco with the University of California, Berkeley.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 社会学;
  • 关键词

  • 入库时间 2022-08-17 11:52:45

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