SBIR Phase II: Sample Classification and Biomarker Discovery by Comprehensive Metabolomic Analysis
SBIR 第二阶段:通过综合代谢组学分析进行样品分类和生物标志物发现
基本信息
- 批准号:1127264
- 负责人:
- 金额:$ 50万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Standard Grant
- 财政年份:2011
- 资助国家:美国
- 起止时间:2011-10-01 至 2016-08-31
- 项目状态:已结题
- 来源:
- 关键词:
项目摘要
This Small Business Innovation Research Phase II project proposes to develop a system for automated classification of biological samples and discovery of biomarkers. The system will be designed to perform comprehensive pattern analysis of state-of-the-art biochemical separations generated by comprehensive two-dimensional chromatography (GCxGC) with high-resolution mass spectrometry (HRMS). The pairing of GCxGC and HRMS combines highly effective molecular separations with precise elemental analysis. A critical challenge for effective utilization of GCxGC-HRMS for biochemical sample classification and biomarker discovery is the difficulty of analyzing and interpreting the massive, complex data for metabolomic features. The quantity and complexity of the data, as well as the large dimensionality of the metabolome, and the possibility that significant chemical characteristics may be subtle and involve patterns of multiple constituents, necessitate investigation and development of new bioinformatics. The principal technical objective is an innovative framework for comprehensive feature matching and analysis across many samples. Specifically, the framework will incorporate advanced methods for multidimensional peak detection, peak pattern matching across large sample sets, data alignment, comprehensive feature matching, and multi-sample analyses (e.g., classification and biomarker discovery) with large sample sets. The anticipated result is a commercial system for automated multi-sample analysis.The broader impact/commercial potential of this project will be realized through improved informatics for biological classification and biomarker discovery. These tools will enable researchers to better understand biochemical processes and to discover metabolic biomarkers, which could lead to improved methods for disease diagnoses and treatments. These information technologies will foster utilization of advanced GCxGC-HRMS instrumentation, thereby contributing to the impetus for future instrument development. The informatics developed in this project also will be relevant for other classification problems involving multidimensional, multispectral data, including other applications (such as biofuels), other types of chemical analyses (such as multidimensional spectroscopy), and other fields (such as remote-sensing multispectral geospatial imagers). This project will contribute to national competitiveness in the global market for analytical technologies and will contribute to workforce development by involving students in research experiences through internships and student projects. Software developed in the project and an example dataset will be available to educational institutions to allow students to more easily explore biochemical complexity.
这个小型企业创新研究第二阶段项目建议开发一个系统,用于生物样本的自动分类和生物标志物的发现。该系统将用高分辨率质谱仪(HRMS)对综合二维色谱(GCxGC)产生的最先进的生化分离进行全面的模式分析。GCxGC和HRMS的配对结合了高效的分子分离和精确的元素分析。有效利用GCxGC-HRMS进行生化样品分类和生物标志物发现的一个关键挑战是难以分析和解释代谢组特征的海量复杂数据。数据的数量和复杂性,以及代谢组的大维度,以及重要的化学特征可能是微妙的和涉及多种成分的模式的可能性,需要研究和开发新的生物信息学。主要的技术目标是一个创新的框架,用于对许多样本进行全面的特征匹配和分析。具体地说,该框架将结合用于多维峰值检测、跨大样本集的峰值模式匹配、数据对齐、综合特征匹配以及大样本集的多样本分析(例如,分类和生物标记物发现)的先进方法。预期的结果是一个用于自动多样本分析的商业系统。该项目将通过改进生物分类和生物标记物发现的信息学来实现更广泛的影响/商业潜力。这些工具将使研究人员能够更好地了解生化过程并发现代谢生物标记物,这可能导致改进疾病诊断和治疗的方法。这些信息技术将促进使用先进的GCxGC-HRMS仪器,从而推动未来仪器的发展。该项目开发的信息学还将与涉及多维、多光谱数据的其他分类问题有关,包括其他应用(如生物燃料)、其他类型的化学分析(如多维光谱分析)和其他领域(如遥感多光谱地理空间成像仪)。该项目将有助于提高国家在全球分析技术市场上的竞争力,并将通过实习和学生项目让学生参与研究经验,从而促进劳动力发展。在该项目中开发的软件和一个示例数据集将提供给教育机构,使学生能够更容易地探索生化复杂性。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Qingping Tao其他文献
Retraction Note: A streak detection approach for comprehensive two-dimensional gas chromatography based on image analysis
- DOI:
10.1007/s00521-024-09878-6 - 发表时间:
2024-04-29 - 期刊:
- 影响因子:4.500
- 作者:
Bo Li;Stephen E. Reichenbach;Qingping Tao;Rongbo Zhu - 通讯作者:
Rongbo Zhu
Moderate Intensity Low Frequency Rotating Magnetic Field Inhibits Breast Cancer Growth in Mice
- DOI:
DOI: 10.1080/15368378.2018.1506989 - 发表时间:
2018 - 期刊:
- 影响因子:
- 作者:
Meng Zha;Qingping Tao;Jun Li;Xiaofei Tian;Shuang Feng;Zhongcai Liao;Zhicai Fang;Xin Zhang - 通讯作者:
Xin Zhang
Augmented visualization by computer vision and chromatographic fingerprinting on comprehensive two-dimensional gas chromatographic patterns: Unraveling diagnostic signatures in food volatilome.
通过计算机视觉和综合二维气相色谱模式的色谱指纹图谱增强可视化:揭示食品挥发性分析中的诊断特征。
- DOI:
- 发表时间:
2023 - 期刊:
- 影响因子:4.1
- 作者:
Andrea Caratti;Simone Squara;C. Bicchi;Qingping Tao;Daniel Geschwender;S. Reichenbach;F. Ferrero;G. Borreani;C. Cordero - 通讯作者:
C. Cordero
AN ANALYSIS OF MCMC SAMPLING METHODS FOR ESTIMATING WEIGHTED SUMS IN WINNOW
WINNOW中估计加权和的MCMC采样方法分析
- DOI:
- 发表时间:
2004 - 期刊:
- 影响因子:0
- 作者:
Qingping Tao;S. Scott - 通讯作者:
S. Scott
Reliable peak selection for multisample analysis with comprehensive two-dimensional chromatography.
通过全面的二维色谱进行多样品分析的可靠峰选择。
- DOI:
- 发表时间:
2013 - 期刊:
- 影响因子:7.4
- 作者:
S. Reichenbach;Xue Tian;A. Boateng;Charles A. Mullen;C. Cordero;Qingping Tao - 通讯作者:
Qingping Tao
Qingping Tao的其他文献
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{{ truncateString('Qingping Tao', 18)}}的其他基金
SBIR Phase I: Sample Classification and Biomarker Discovery by Comprehensive Metabolomic Analysis
SBIR 第一阶段:通过综合代谢组学分析进行样品分类和生物标志物发现
- 批准号:
1013180 - 财政年份:2010
- 资助金额:
$ 50万 - 项目类别:
Standard Grant
STTR Phase I: Advanced Informatics for Chemical Imaging: Visualization, Mapping, and Analysis
STTR 第一阶段:化学成像高级信息学:可视化、绘图和分析
- 批准号:
0741027 - 财政年份:2008
- 资助金额:
$ 50万 - 项目类别:
Standard Grant
SBIR Phase II: A Bioinformatics System for GCxGC-MS (Comprehensive Two-Dimensional Gas Chromography)
SBIR 第二阶段:GCxGC-MS(综合二维气相色谱)生物信息学系统
- 批准号:
0450540 - 财政年份:2005
- 资助金额:
$ 50万 - 项目类别:
Standard Grant
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