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Label-Free Screening Using Photonic Crystal Sensors for the Apoptotic Pathway

Label-Free Screening Using Photonic Crystal Sensors for the Apoptotic Pathway
使用光子晶体传感器进行细胞凋亡途径的无标记筛选
批准号:
7141038
负责人:
Brian T. Cunningham
金额:
$20.79万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-07-01 至 2009-05-31

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中文摘要
翻译
描述(由申请人提供):在本提案中,我们描述了一种新的无标记分析,可用于快速筛选蛋白质-小分子相互作用,这些相互作用不易通过任何其他方法筛选。无标签分析是基于一种称为“光子晶体”结构的光学生物传感器技术,该技术由连续的塑料薄膜制成,成本低廉,并结合到标准的96孔和384孔板中。通过消除对标签的需要,该分析不太容易受到构象变化或活性结合表位阻断引起的错误和伪影的影响。一旦完全开发,预计该技术将用于化学文库的主筛选和/或作为测量蛋白质-小分子组合的剂量反应特性的次级筛选。拟议的项目开发了一种新型的无标签分析,称为“斑点方案”,其中所需的目标蛋白体积<0.1 μ l/井,并且自动消除了由于体积折射率变化和非特异性结合引起的误差源。新的分析方法利用基于图像的方法来实现小分子结合信号的高灵敏度检测,但结合了一种新的图像处理算法,提供简单的数值输出,直接测量蛋白质和分析物之间的结合相互作用。这项工作的成功完成将代表光子晶体分析技术首次应用于高通量筛选(HTS)应用。通过将最初的演示集中在不具有酶功能的蛋白质上,因此难以通过更标准的HTS过程靶向,该技术在靶向传统上被视为“不可药物”的蛋白质方面的好处将是显而易见的。因此,我们的目标是发展这种检测技术,使任何研究人员都可以使用这种无标记检测方法来识别感兴趣蛋白质的小分子配体,即使该蛋白质不是酶,因此没有方便监测的基于活性的读数。为了让社会意识到这种方法的潜力,从而促进其转移到其他实验室,我们在凋亡途径中靶向蛋白质。通过关注调节细胞凋亡的生化途径,该项目旨在对理解程序性细胞死亡的基本过程以及这些过程的错误调节如何导致癌症和神经退行性疾病产生影响。选择和鉴定具有选择性诱导癌细胞凋亡或阻止健康细胞凋亡能力的化合物是开发针对许多疾病的新药物治疗的关键之一。
英文摘要
DESCRIPTION (provided by applicant): In this proposal we describe a novel label-free assay that can be used to rapidly screen protein-small molecule interactions that are not easily screened by any other method. The label-free assay is based upon an optical biosensor technology called a "photonic crystal" structure that is inexpensively manufactured from continuous sheets of plastic film and incorporated into standard 96- and 384-well plates. By eliminating the need for a label, the assay is less susceptible to errors and artifacts caused by conformational change or blocking of active binding epitopes. Once fully developed, it is envisioned that the technology will be used in the context of a primary screen of a chemical library and/or as a secondary screen for measuring dose- response characteristics of a protein-small molecule combination. The proposed project develops a new type of label-free assay, called the "Spot Protocol," in which the volume of target protein required is <0.1 mu l/well, and error sources due to bulk refractive index variability and nonspecific binding are automatically eliminated. The new assay utilizes an image-based method to enable high sensitivity detection of small- molecule binding signals, but incorporates a novel image-processing algorithm to provide a simple numerical output that is a direct measurement of the binding interaction between protein and analyte. The successful completion of the proposed work would represent the first application of the photonic crystal assay technology to a high-throughput screening (HTS) application. By focusing the initial demonstrations on proteins that do not function as enzymes and are thus difficult to target through more standard HTS processes, the benefits of this technology towards the targeting of proteins traditionally viewed as "nondrugable" will be obvious. Thus, our goal is to develop this assay technology to the point where any researcher could use this label-free detection method to identify a small molecule ligand to a protein of interest, even if that protein in not an enzyme and thus has no conveniently-monitored activity-based readout. To make the community aware of the potential of such a method and thus facilitate its transfer into other laboratories, we have targeted proteins in the apoptotic pathway. By focusing on biochemical pathways that regulate apoptosis, the proposed project aims to make an impact on understanding the fundamental processes involved in programmed cell death, and on how misregulation of such processes are result in cancer and neurodegenerative disorders. The selection and identification of chemical compounds with the ability to selectively induce apoptosis of cancer cells, or to prevent apoptosis of healthy cells is one key to the development of new drug therapies for many diseases.
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  • 批准号:
    10196015
  • 项目类别:
  • 资助金额:
    $74.21万
  • 财政年份:
    2021
  • 负责人:
    Brian T. Cunningham
  • 依托单位:
国内基金
海外基金
新型二茂铁基四咪唑类大环配体的合成、表征及其金属配合物在非均相C-C偶联反应中的应用研究
  • 批准号:
    21102132
  • 项目类别:
    青年科学基金项目
  • 资助金额:
    25.0万元
  • 批准年份:
    2011
  • 负责人:
    张金莉
  • 依托单位: