HIGH-FREQUENCY ULTRASONIC AND PHOTOACOUSTIC IMAGING SYSTEM
HIGH-FREQUENCY ULTRASONIC AND PHOTOACOUSTIC IMAGING SYSTEM
批准号:
8051412
负责人:
Lihong Wang
金额:
$59.89万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-04-01 至 2012-03-31
关键词:
Animal ExperimentationAnimal ModelAreaBiologicalBiologyCardiologyChick EmbryoClinical ResearchConfocal MicroscopyCustomDevelopmental BiologyElementsFrequenciesFunctional ImagingFundingHemoglobinImageImaging technologyInterdisciplinary StudyLengthMeasuresMechanicsMicroscopyModelingMusOptical Coherence TomographyOpticsOrganOrganellesOryctolagus cuniculusOxygenPhysiciansPlayRattusResearchResolutionRoleSkinSpeedSystemTissuesTranslational ResearchUltrasonicsUltrasonographyUnited States National Institutes of HealthUniversitiesVisualWashingtonZebrafishbasebioimagingdrug developmentimaging modalityimprovedin vivomolecular imagingnoveloncologyoptical imagingpre-clinicaltomographytwo-photon
中文摘要
描述(由申请人提供):为了提高美国国立卫生研究院资助的华盛顿大学项目的研究能力,将获得最先进的高频阵列超声成像系统(即Visual Sonics Vevo 2100),并为新型光声断层扫描(PAT)定制。超声成像和PAT提供互补对比;前者测量机械对比度并提供形态学和血流成像,而后者测量光学对比度并提供无斑点的功能和分子成像(例如,血红蛋白的总浓度和氧饱和度)。将PAT纳入超声检查不仅可以丰富临床前小动物研究,还可以通过促进医生对PAT的接受来加速转化和临床研究。
英文摘要
DESCRIPTION (provided by applicant): To enhance the research capabilities of NIH-funded projects in Washington University, a state-of-the-art high frequency array-based ultrasound imaging system (i.e., Visual Sonics Vevo 2100) will be acquired and custom-built for novel photoacoustic tomography (PAT). Ultrasound imaging and PAT provide complementary contrasts; the former measures mechanical contrast and provides morphological and flow imaging, whereas the latter measures optical contrast and provides speckle-free functional and molecular imaging (e.g., total concentration and oxygen saturation of hemoglobin). Incorporating PAT into ultrasonography will not only enrich preclinical small-animal research, but also accelerate translational and clinical research by facilitating physicians' acceptance of PAT.
Vevo 2100 was released at the end of 2008 and is not yet available at Washington University. High-frequency ultrasonic imaging has transformed conventional ultrasonic imaging by providing exquisite spatial and temporal resolution; this ultrasound-array-based model will supplant the older single-element-based Vevo 770. The new system, which offers further improved imaging speed and spatial resolution, can accommodate a variety of animal models, including: mouse, rat, rabbit, zebra fish, and chick embryo; reinforcing its role in multidisciplinary research areas that include oncology, cardiology, developmental biology, and drug development.
PAT is one of the fastest growing biomedical imaging technologies; it permits high-resolution sensing of rich optical contrast at super-depths in vivo-depths beyond the optical transport mean free path (~1 mm in the skin). While commercially available high-resolution three-dimensional optical imaging modalities-including confocal microscopy, two-photon microscopy and optical coherence tomography-have fundamentally impacted biomedicine, none can reach super-depths in scattering biological tissue. PAT uses low ultrasonic scattering to equivalently improve tissue optical transparency by a factor of 1000 and consequently penetrates super-depths at high resolution; simultaneous optical contrast-based functional and molecular imaging has been achieved. PAT can image sub cellular organelles and organs at multiple length scales in vivo with the same contrast origin. While PAT is expected to find broad applications, multiscale PAT will likely play a critical role in multiscale biology research.
PUBLIC HEALTH RELEVANCE: Advanced imaging technologies are integral to biomarker detection as well as early diagnosis of disease. Functional and molecular imaging that detects disease-specific biomarkers in the context of tissue structure will profoundly impact biomedicine. The combination of high-frequency ultrasound imaging and photoacoustic imaging will accelerate basic biomedical research and enhance clinical healthcare.
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