BRUKER BIOSPEC 47/30 MRI UPGRADE
BRUKER BIOSPEC 47/30 MRI UPGRADE
批准号:
2803522
负责人:
Ferenc A Jolesz
金额:
$33.0万
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-08-15 至 2002-11-14
中文摘要
我们请求资助升级4.7特斯拉/ 33厘米直径的欧米茄磁共振成像(MRI)光谱仪,该光谱仪被布里格姆妇女医院(BWH)、儿童医院、哈佛医学院(HMS)的朗伍德医学研究中心的科学家和我们在波士顿大学的合作者广泛用于正在进行的多学科核磁共振(NMR)和MRI生物医学研究和研究培训。Omega核磁共振仪器目前存在严重问题,严重降低了对其进行的研究质量。它的硬件限制产生较差的谱线形状,可获得的图像质量较差,分辨率有限。这台过时的计算机使用的是十年前的、对用户不友好的软件,无法升级限制了实验的范围和实现它们的敏捷性。幸运的是,4.7特斯拉的超导磁体状况良好,不需要更换。硬件升级足以将我们有缺陷的仪器转变为一个最新的、多功能的工具,从而加强和加速研究和培训。拟议的布鲁克Biospect升级包括新的梯度线圈,具有改进的涡流补偿和额外的梯度强度,快速计算机控制的梯度振荡,改进的射频电子设备,专门的射频线圈,动物处理组件,用户友好,大大增强功率的软件和现代菜单驱动界面。提出了一个内部咨询委员会和详细的管理计划,以监督所要求的MRI仪器的调度,操作和维护,并满足其用户的研究和培训需求。使用该仪器的NIH支持的MRI研究项目包括,除其他外,肌酸激酶和脑能量学的研究,体内31P研究的快速光谱成像开发,矿物侵入性手术组织中热相互作用的MRI,易损性动脉粥样硬化斑块的识别和调节,MRI引导的聚焦超声手术,实验性脑肿瘤血管生成和水肿的MRI,体积定位二维核磁共振波谱研究的临床意义。其他研究项目包括开发一种新型生物医学技术激光超偏振诺贝尔气体MRI,最初是由一个主要用户和其他人开创的。惰性气体核磁共振正被应用于气道和肺组织力学的研究,以及脑功能的使用。旨在提高研究活动质量的项目包括设计和实施动态3D成像的光学方法-“适应性MRI”,以及开发用于MR图像定量分析的计算机图像处理方法,以及用于术中MRI引导手术。
英文摘要
We request funding to upgrade our 4.7 Tesla/ 33 cm diameter Omega magnetic resonance imaging (MRI) spectrometer, which is intensively used for on-going, multi-disciplinary nuclear magnetic resonance (NMR) and MRI biomedical research and research training, by scientists at the Longwood Medical Research enter of the Brigham and Women's Hospital (BWH), Children's Hospital, Harvard Medical School (HMS), and our collaborators at Boston University. The Omega MRI instrument currently has serious problems that significantly degrade the quality of research performed on it. Its hardware limitations yield poor spectral lineshapes, and the images obtainable are of poor quality and limited resolution. The obsolete computer employs decade-old, user-unfriendly software, and the unavailability of upgrades limits both the range of experiments and the agility with which they can be implemented. Fortunately, the 4.7 Tesla superconducting magnet is in good condition and does not need replacement. A hardware upgrade is sufficient to transform our flawed instrument into an up-to-date, versatile tool that would enhance and accelerate research and training. The proposed Bruker Biospect upgrade includes new gradient coils with improved eddy current compensation and additional gradient strength, fast computer-controlled gradient-shimming, improved RF electronics, specialized RF coils, an animal handling assembly, user-friendly, software of greatly augmented power and a modern menu-driven interface. An internal advisory committee and a detailed management plan is proposed to supervise the scheduling, operation, and maintenance of the requested MRI instrument, and to satisfy the research and training needs of its users. NIH supported MRI research projects employing this instrument include, among others, investigations of creatine kinase and brain energetics, fast spectroscopic imaging development for in vivo 31P studies, MRI of thermal-interactions in tissue for minerally invasive surgery, identification and modulation of the vulnerable atherosclerotic plaque, MRI guided focused ultrasound surgery, MRI of angiogenesis and edema in experimental brain tumors, volume localized two-dimensional NMR spectroscopy studies of clinical relevance. Additional research projects include the development of a novel biomedical technology laser hyperpolarized nobel gas MRI, originally pioneered by one of the major users and others. Noble gas MRI is being applied to investigations of airway and lung tissue mechanics, and use of brain function. Projects aimed at improving the quality of the research activities include the design and implementation of optical methods for dynamic 3D imaging-- "Adaptive MRI", and the development of computerized image processing methods for quantitative analysis for MR images, and for intraoperative MRI guided surgery.
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