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Temperature Modulated-Fluorescence Tomography: A New Modality for Cancer Imaging

Temperature Modulated-Fluorescence Tomography: A New Modality for Cancer Imaging
温度调制荧光断层扫描:癌症成像的新模式
批准号:
8546153
负责人:
Tiffany Kwong
金额:
$3.53万
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-14 至 2015-09-13

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项目成果

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中文摘要
翻译
描述(由申请人提供):根据CDC,在美国男性中,前列腺癌是最常见的癌症类型,也是癌症死亡的第二大原因。由于前列腺癌的扩散性质,需要安全、廉价和便携的前列腺肿瘤成像,而MRI或核成像不能满足这种需要。荧光成像作为最灵敏的活体分子成像手段之一,在临床前和临床研究中具有巨大的潜力。事实上,体内荧光光学成像 从细胞水平到器官水平,它的应用范围很广。不幸的是,在器官水平应用中,由于生物组织的高散射性质,尤其是在深层组织中,荧光成像具有低分辨率。在过去的十年里,学术界和工业界的研究小组为提高荧光层析成像(FT)的分辨率做出了大量努力。然而,如果荧光靶不能在解剖图像中定位,则诸如将FT与诸如MRI或CT的其他解剖成像模态集成的方法不能很好地执行。有几种技术试图使用超声调制荧光信号以实现更高的分辨率。然而,低调制效率和极低的信噪比(SNR)是使这些技术难以实现的两个主要因素。因此,荧光成像的低定量准确性和分辨率仍然是这种强大技术临床转化的主要障碍。为了克服这些限制,我们在这项提案中的主要目标是开发一种全新的方法“温度调制荧光断层扫描(TM-FT)”,可以提供高达6 cm深度的高分辨率图像,而不会牺牲基于荧光的检测的特殊灵敏度。这种高度创新的方法有两个关键组成部分:a)温度敏感的荧光分子探针(热敏点)和B)基于高强度聚焦超声(HIFU)的组织温度调制(仅3- 50 ℃),具有高空间分辨率。焦斑的小尺寸(~ 1 mm)允许不仅以高空间分辨率而且以高定量准确度对这些温度敏感剂的分布进行成像。该新型系统的开发将包括:TM-FT重建算法的开发和优化,TM-FT系统的开发和体模研究的评价,最后,体内研究的验证。该培训计划是针对这种新型成像方式的第一次体内可行性研究。该提案的结果可能是一种无辐射、具有成本效益的便携式肿瘤成像系统。携带原位前列腺癌模型的小鼠将用于检验“与独立FT系统相比,TM-FT将提供定量更准确和更高分辨率的荧光图像”的假设。如果成功,结果将是一个新的成像模式的开始。
英文摘要
DESCRIPTION (provided by applicant): According to the CDC, among US men, cancer of the prostate is the most common type of cancer and the second leading cause of cancer death. Due to the diffuse nature of prostate cancer, there is a need for safe, inexpensive, and portable prostate tumor imaging, which MRI or nuclear imaging cannot satisfy. As one of the most sensitive in vivo molecular imaging modalities, fluorescence imaging has great potential to play an important role in preclinical and clinical studies. Indeed, in vivo fluorescence optical imaging extends across a wide range of applications, from cellular to organ levels. Unfortunately, in organ level applications, fluorescence imaging suffers from low resolution due to the high scattering nature of the biological tissue especially in deep tissue. Extensive effort has been spent to improve the resolution of fluorescence tomography (FT) by research groups from academia and industry in the last decade. However, approaches such as integrating FT with other anatomic imaging modalities such as MRI or CT does not perform well if the fluorescent target cannot be localized in the anatomical image. There are several techniques that attempt to modulate fluorescence signals using ultrasound to achieve higher resolution. However, low modulation efficiency and extremely low signal to noise ratio (SNR) are the two primary factors that make the implementation of these techniques difficult. Therefore, the low quantitative accuracy and resolution of fluorescence imaging remain as the main barriers for clinical translation of this powerful technique. To overcome these limitations, our main goal in this proposal is to develop an entirely new approach "Temperature-modulated fluorescence tomography (TM-FT)" that can provide high resolution images at depths up to 6 cm without sacrificing the exceptional sensitivity of fluorescence-based detection. There are two key components to this highly innovative approach: a) Temperature sensitive florescent molecular probes (thermo-dots) and b) High Intensity Focused Ultrasound (HIFU) based modulation of tissue temperature (only 3-50C) with high spatial resolution. The small size of the focal spot (~1mm) allows imaging the distribution of these temperature sensitive agents with not only high spatial resolution but also high quantitative accuracy. Development of this novel system will include: development and optimization of the TM-FT reconstruction algorithm, development of the TM-FT system and evaluation with phantom studies, and finally, validation with in vivo studies. This training proposal is geared toward the first in vivo feasibility studies of this nove imaging modality. The outcome of this proposal could be a radiation free, cost-effective, and portable tumor imaging system. Mice bearing orthotopic prostate cancer model will be used to test the hypothesis that "TM-FT will provide quantitatively more accurate and higher resolution fluorescence images compared to a stand-alone FT system". If successful, the outcome will be the beginning of a new imaging modality.
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Temperature Modulated-Fluorescence Tomography: A New Modality for Cancer Imaging
  • 批准号:
    8459898
  • 项目类别:
  • 资助金额:
    $3.53万
  • 财政年份:
    2012
  • 负责人:
    Tiffany Kwong
  • 依托单位:
Temperature Modulated-Fluorescence Tomography: A New Modality for Cancer Imaging
  • 批准号:
    8711389
  • 项目类别:
  • 资助金额:
    $3.57万
  • 财政年份:
    2012
  • 负责人:
    Tiffany Kwong
  • 依托单位:
海外基金