Novel Methods for in Vivo Imaging of Tissue Oxygenation
Novel Methods for in Vivo Imaging of Tissue Oxygenation
批准号:
6910574
负责人:
PERIANNAN KUPPUSAMY
金额:
$26.91万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-04-01 至 2009-01-31
关键词:
bioimaging /biomedical imagingcomputer program /softwarecomputer system design /evaluationdata collectiondisease /disorder modelelectron spin resonance spectroscopyfibrosarcomafree radicalslaboratory mousemagnetic fieldmathematicsneoplastic cell culture for noncancer researchoxygen transportrespiratory oxygenationthree dimensional imaging /topography
中文摘要
描述(由申请人提供):有氧生活依赖于氧气呼吸和生物能代谢。人体内氧浓度的异常与包括癌症、心肌梗塞和中风在内的多种疾病的发病机制密切相关。尽管氧的重要性,组织氧合的准确测量和映射是困难的。虽然许多成像模式仅提供关于组织氧合的相对或描述性数据,但电子顺磁共振(EPR)光谱具有提供体内组织中氧的定量数据的潜力。此外,EPR技术具有测量氧浓度绝对值的独特能力,其分辨率远远优于任何其他技术。这是可能的,使用分子或晶体顺磁探针,其EPR线宽是敏感的分子氧。这种能力,当与使用光谱-空间(光谱)EPR成像获得空间分辨信息的能力相结合时,可以提供氧浓度的精确映射。尽管在过去的十年中,在高氧敏感自旋探针和低频成像仪器的开发方面取得了重大进展,但这种重要技术在生物学应用中的使用受到过长的采集时间的严重限制,该提案的主要目标是开发新的图像采集和重建策略,以实现快速和高分辨率。组织中氧浓度的分辨率映射。该提案旨在发展:(1)用于组织中氧浓度空间映射的高分辨率3D/4D光谱成像软件和技术;(2)使用旋转/扫描磁场梯度的快速3D/4D光谱成像;(3)用于来自随机模式采集的图像的渐进可视化的直接单级图像重建算法;(4)用于提高数据采集效率和图像分辨率的灵敏模式自适应数据(SMAD)采集方法;(5)用于快速和高分辨率氧气成像的恒定时间谱空间成像(CT-SSI)方法。初步研究表明,与传统方法相比,图像采集速度可提高30倍。这些创新程序的可用性将提高我们执行快速/高分辨率图像采集的能力。该技术将在自由基和氧的生物医学成像领域提供令人兴奋的新机会。
英文摘要
DESCRIPTION (provided by applicant): Aerobic life relies on oxygen for respiration and bioenergetic metabolism. Abnormality in the concentration of oxygen in human body is strongly implicated in the pathogenesis of a variety of diseases including cancer, myocardial infarction and stroke. Despite the importance of oxygen, accurate measurement and mapping of tissue oxygenation is difficult. Although many imaging modalities provide only relative or descriptive data on tissue oxygenation, the electron paramagnetic resonance (EPR) spectroscopy has the potential of providing quantitative data of oxygen in tissues, in vivo. In addition, the EPR technique has the unique capability of measuring absolute value of oxygen concentration with resolutions far better than any other technique. This is possible using molecular or crystalline paramagnetic probes whose EPR line-width is sensitive to molecular oxygen. This capability, when combined with the ability to obtain spatially resolved information using spectral-spatial (spectroscopic) EPR imaging, can provide accurate mapping of oxygen concentration. Despite significant advances in the development of highly oxygen-sensitive spin probes and low-frequency imaging instrumentation in the past decade, the use of this important technology for biological applications is severely limited by the prohibitively long acquisition times, usually tens of min. The main objective of this proposal is to develop novel image acquisition and reconstruction strategies to enable fast and high-resolution mapping of oxygen concentration in tissues. The proposal seeks to develop: (1) High-resolution 3D/4D spectroscopic imaging software and techniques for spatial mapping of oxygen concentration in tissues; (2) Fast 3D/4D spectroscopic imaging using spinning/sweeping magnetic field gradients; (3) Direct single-stage image reconstruction algorithm for progressive visualization of images from random-mode acquisitions; (4) Sensitive-mode adaptive data (SMAD) acquisition approach for increased data acquisition efficiency and image resolution; (5) Constant-time spectral-spatial imaging (CT-SSI) methods for fast and high-resolution imaging of oxygen. Preliminary studies show that up to 30-fold increase in the speed of image acquisition can be achieved compared to the conventional methods. The availability of these innovative procedures will enhance our ability to perform fast/high-resolution image acquisition. The technology should offer exciting new opportunities in the field of biomedical imaging of free radicals and oxygen.
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