OPTICAL MICROANGIOGRAHY OF CEREBROVASCULAR PERFUSION
OPTICAL MICROANGIOGRAHY OF CEREBROVASCULAR PERFUSION
批准号:
9242685
负责人:
Ruikang Wang
金额:
$58.81万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-08-01 至 2019-03-31
关键词:
AcidsAcuteAnimal ModelAreaBedsBloodBlood Flow VelocityBlood VesselsBlood capillariesBlood flowBrainBrain InjuriesCerebrovascular CirculationCharacteristicsChronic PhaseClinicalClinical ResearchContrast MediaCraniotomyDevelopmentDiagnosisDiseaseDisorder of neurometabolic regulationDyesEvaluationEventFunctional ImagingFutureGoalsHistopathologyHourHumanImageImaging DeviceImaging TechniquesImaging technologyInfarctionInjection of therapeutic agentInjuryInvestigationIschemiaLaser Speckle ImagingLeftLightMeasuresMethodsMicrocirculationMonitorMorphologyMusNoiseOperative Surgical ProceduresOpticsOutcomeOutcomes ResearchOxygenParentsPathologicPerfusionPhysiologicalProgress ReportsPublicationsRecoveryReperfusion TherapyReportingResearchResolutionRetinaSamplingScanningSignal TransductionSourceStrokeStructureSurfaceSurveysSystemTechniquesTechnologyTherapeuticTherapeutic InterventionThree-Dimensional ImageTimeTissuesVascular DiseasesVascular remodelingVasodilator Agentsabsorptionblood perfusioncapillarycerebrovascularcraniumdeoxyhemoglobindesignimaging modalityimaging systemimprovedin vivoinjuredmicroangiographyneurovascularnext generationnon-invasive optical imagingnoveloptical imagingpost strokepre-clinicalpublic health relevanceresearch studyresponsetool
中文摘要
描述(由申请人提供):用于定量血流、血管重构和血氧饱和度(SaO2)至毛细血管水平分辨率的无创技术对于提高对神经血管和神经代谢疾病(如中风)的理解、诊断和治疗至关重要。目前还没有一种成像技术可以在体内微循环中不使用外源性造影剂的情况下无创地同时测量这些参数。我们开创了一种非侵入性3D光学成像技术,光学微血管造影(OMAG),以应对这一挑战。在母体R01项目中,我们已经成功地证明了OMAG可以在不需要外源性造影剂的情况下,以毛细血管水平分辨率生成组织结构和血流的实时3D图像,成像深度可达2mm(见进展报告中的出版物列表)。此外,我们还展示了许多新方法,以成功地从光学散射的巨大“噪声”背景中提取血流信号,这是几乎所有高分辨率光学成像技术的障碍。作为我们研究的直接结果,现在可以在临床前(小动物模型)和临床环境(人类视网膜)中对功能性3D微血管网络进行成像。自从我们的第一篇文章报道了OMAG以来,这个领域呈指数级增长,并且有几家公司计划销售OMAG产品。现在我们已经成功地开发了用于功能性微循环成像的OMAG,我们将把我们的研究工作转向下一代OMAG成像模式的开发。这种新一代技术将允许在扫描的组织体积内同时监测深度分辨脑血流量(CBF)、微血管形态和毛细血管水平的SaO2。为了实现这一目标,我们将首先开发一种多功能OMAG (mfOMAG)系统,能够测量脑血流和氧合的快速和长期反应。然后,我们将该系统与一种新型光谱激光散斑成像相结合,我们将使用该成像作为指导,立即进入受伤区域进行mfag的全面评估。最后,我们将确定mfag在小鼠实验性脑卒中后脑血流变化和血管重构的系列监测中的效用。
英文摘要
DESCRIPTION (provided by applicant): Non-invasive techniques for quantifying blood flow, vascular remodeling and blood oxygen saturation (SaO2) down to capillary-level resolution are of paramount importance for the improved understanding, diagnosis and treatment of neurovascular and neurometabolic disorders such as stroke. Currently there are no imaging techniques that can non-invasively and simultaneously measure these parameters without the use of exogenous contrast agents in the microcirculation in vivo. We have pioneered a non-invasive 3D optical imaging technology, optical microangiography (OMAG), that meets this challenge. In the parent R01 project, we have successfully demonstrated that OMAG generates real-time 3D images of both tissue structure and blood flow at capillary level resolution with an imaging depth up to 2 mm without the need for exogenous contrast agents (see publication list in the progress report). In addition, we also demonstrated a number of novel methods to successfully extract the blood flow signals from huge 'noise' background of optical scattering, an obstacle married with almost all high-resolution optical imaging techniques. As a direct result of our research, it is now practical to image functional 3D microvascular networks in pre-clinical (small animal models) and clinical settings (human retina). Since our first publication that reported OMAG, the field has grown exponentially, and there are several companies planning to market the OMAG product. Now that we have successfully developed OMAG for imaging functional microcirculations, we will direct our research efforts towards the development of the next generation OMAG imaging modality. This next generation technology will allow depth-resolved cerebral blood flow (CBF), microvascular morphology and SaO2 at the capillary level to be simultaneously monitored within a scanned tissue volume. To achieve this goal, we will first develop a multifunctional OMAG (mfOMAG) system capable of measuring rapid and long term responses of cerebral blood flow and oxygenation. We will then combine this system with a novel spectral laser-speckle imaging which we will use as a guide to immediately hone into injured regions for a thorough evaluation with mfOMAG. Finally, we will determine the utility of mfOMAG for serial monitoring of cerebral blood flow changes and vascular remodeling following experimental stroke in mice.
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DOI:
10.1016/j.mvr.2014.09.007
发表时间:
2015-01
期刊:
MICROVASCULAR RESEARCH
影响因子:
3.1
作者:
[Yousefi, Siavash, Liu, Ting, Wang, Ruikang K.]
通讯作者:
Wang, Ruikang K.
DOI:
10.1364/boe.4.001214
发表时间:
2013-07-01
期刊:
Biomedical optics express
影响因子:
3.4
作者:
[Yousefi S, Qin J, Wang RK]
通讯作者:
Wang RK
DOI:
10.1364/boe.3.000455
发表时间:
2012-03-01
期刊:
Biomedical optics express
影响因子:
3.4
作者:
[Qin J, Reif R, Zhi Z, Dziennis S, Wang R]
通讯作者:
Wang R
DOI:
10.1002/lsm.22387
发表时间:
2015-10
期刊:
Lasers in surgery and medicine
影响因子:
2.4
作者:
[Qin W, Baran U, Wang R]
通讯作者:
Wang R
DOI:
10.1117/1.jbo.21.3.036005
发表时间:
2016-03
期刊:
Journal of biomedical optics
影响因子:
3.5
作者:
[Wei W, Xu J, Baran U, Song S, Qin W, Qi X, Wang RK]
通讯作者:
Wang RK
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