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Determination of tumour prognosis based on angiogenesis-related vascular patterns measured by fractal and syntactic structure analysis.

机译:基于通过分形和句法结构分析测量的与血管生成相关的血管模式确定肿瘤预后。

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AIMS: Intratumoural micro-vessel density (IMD) has recently been shown to be a valuable prognostic tool in many tumours. Yet, IMD does not take into account the spatial arrangement of the vessels, therefore only partly reflecting the angiogenic situation. In order to describe contextual vascular relationships more accurately, we have used fractal and syntactic structure analysis (SSA) based on computerised image processing to quantify micro-vascular hot spots. MATERIALS AND METHODS: The parametric performance in prediction of patients' outcome was evaluated by univariate analysis and compared with manually obtained IMDs, whereas an automated K-nearest-neighbour (KNN) classifier searched most discriminative parametric combinations. The method is based on analysis of vascular 'hot-spots' of paraffin-embedded tissue sections of invasive cervical carcinoma, colorectal carcinoma and malignant mesothelioma. RESULTS: For all three cancers, prediction of prognosis based on SSA yielded in general much higher recognition scores compared with IMD or fractal dimension. Survival of cervical carcinoma was mostly correlated with clinical data, with the vascular permeation being the only parameter with independent value. Prognosis of colorectal carcinoma is best described by SSA, completed with IMD, indicating an inverse correlation of survival time with a more irregular pattern and a slight increase in vessel number. For mesothelioma, we found a strong correlation with SSA and patients' outcome, with two SSA-parameters having independent prognostic value. CONCLUSIONS: The more accurate angiogenic description obtained with SSA may be useful for further exploitation as a prognosticator in a general diagnostic pathology service.
机译:目的:肿瘤内微血管密度(IMD)最近已被证明是许多肿瘤中有价值的预后工具。然而,IMD并未考虑血管的空间布置,因此仅部分反映了血管生成情况。为了更准确地描述上下文血管关系,我们使用了基于计算机图像处理的分形和句法结构分析(SSA)来量化微血管热点。材料与方法:通过单因素分析评估了预测患者预后的参数性能,并将其与手动获得的IMD进行了比较,而自动K近邻(KNN)分类器则搜索了大多数判别性参数组合。该方法基于对浸润性宫颈癌,结肠直肠癌和恶性间皮瘤石蜡包埋的组织切片的血管“热点”的分析。结果:对于所有三种癌症,与IMD或分形维数相比,基于SSA的预后预测通常获得更高的识别评分。宫颈癌的存活率与临床数据主要相关,血管渗透是唯一具有独立价值的参数。结直肠癌的预后最好用SSA来描述,并用IMD完成,表明生存时间与更不规则的模式和血管数目的轻微增加呈负相关。对于间皮瘤,我们发现SSA与患者预后密切相关,其中两个SSA参数具有独立的预后价值。结论:用SSA获得的更准确的血管生成描述可能对进一步利用其作为一般诊断病理学服务中的预后因素有用。

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