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Evaluation of Early Tumor Angiogenesis Using Ultrasound Acoustic Angiography

机译:超声声学血管造影评估早期肿瘤血管生成

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摘要

Cancer angiogenesis is a feature of tumor growth that produces disorganized and dysfunctional vascular networks. Acoustic angiography is a unique implementation of contrast-enhanced ultrasound that allows us to visualize microvasculature with high resolution and contrast, including blood vessels as small as 100 to 150 micrometers. These angiography images can be analyzed to evaluate the morphology of the blood vessels for the purpose of detecting and diagnosing tumors.;This thesis describes the implementation, advantages, and disadvantages of acoustic angiography and evaluates tumor vasculature in a pre-clinical cancer model. Measurements of tortuosity and vascular density in tumor regions were significantly higher than those of control regions, including in the smallest palpable tumors (2-3 mm). Additionally, abnormal tortuosity extended beyond the margin of tumors, as distal tissue separated from the tumor by at least 4 mm exhibited higher tortuosity than healthy individuals. Vascular tortuosity was negatively correlated to distance from the tumor margin using linear regression.;Analysis of full images to detect tumors was performed using a reader study approach to assess visual interpretations, and quantitative analysis combined tortuosity with spatial relationships between vessels using a density-based clustering approach. Visual assessment using a reader study design resulted in an area under the receiver operating characteristic (ROC) curve of approximately 0.8, and the ROC curve was significantly correlated with tumor diameter, indicating that larger tumors were detected more accurately using this approach. Quantitative analysis of the same images used a density-based clustering algorithm to combine vessels in an image into clusters based on their tortuosity (using 2 metrics), radius, and proximity to one another. In tumors, highly tortuous vessels were closely packed, forming large clusters in the analysis, while control images lacked such patterns and formed much smaller clusters. Therefore, maximum cluster size was used to detect tumors, achieving an area under the ROC curve of 0.96.;Finally, superharmonic molecular imaging was used to image targeted microbubbles with higher contrast to tissue ratios than conventional molecular imaging. These molecular images were combined with vascular acoustic angiography images to begin to relate the expression of endothelial markers of angiogenesis with vascular features such as tortuosity.
机译:癌症血管生成是肿瘤生长的特征,其产生混乱且功能失调的血管网络。声学血管造影是造影剂超声的独特实现方式,它使我们能够以高分辨率和对比度可视化微血管,包括小至100至150微米的血管。可以对这些血管造影图像进行分析,以评估血管的形态,以检测和诊断肿瘤。本论文描述了声学血管造影的实现,优缺点,并评估了临床前癌症模型中的肿瘤脉管系统。肿瘤区域中曲折度和血管密度的测量值显着高于对照区域,包括最小的可触知肿瘤(2-3毫米)。另外,异常曲折延伸到肿瘤的边缘之外,因为与肿瘤分开至少4mm的远端组织显示出比健康个体更高的曲折。血管曲折度与使用线性回归的距肿瘤边缘的距离呈负相关。聚类方法。使用阅读器研究设计的视觉评估导致接收器工作特征(ROC)曲线下的面积约为0.8,并且ROC曲线与肿瘤直径显着相关,表明使用此方法可以更准确地检测到较大的肿瘤。对相同图像的定量分析使用基于密度的聚类算法,基于图像的血管的曲折度(使用2个度量),半径和彼此之间的接近度,将图像中的血管组合为群集。在肿瘤中,高度曲折的血管紧密堆积,在分析中形成大簇,而对照图像缺乏这种模式,而形成的簇则小得多。因此,最大簇尺寸用于检测肿瘤,ROC曲线下的面积达到0.96。最后,与传统分子成像相比,超谐波分子成像用于对目标微气泡成像,具有更高的组织对比度。这些分子图像与血管声学血管造影图像相结合,开始将血管生成的内皮标记物的表达与诸如曲折的血管特征相关联。

著录项

  • 作者

    Shelton, Sarah E.;

  • 作者单位

    The University of North Carolina at Chapel Hill.;

  • 授予单位 The University of North Carolina at Chapel Hill.;
  • 学科 Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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