Center for Anatomy and Cell Biology, Department of Systematic Anatomy, Medical University of Vienna, Vienna, Austria.
Microvasc Res. 2011 Mar;81(2):222-30. doi: 10.1016/j.mvr.2010.12.006. Epub 2010 Dec 28.
There is currently no standard technique to objectively quantify the microvascularization of brain tumors. Fractal analysis has been proposed as a useful descriptor of tumor microvascularity. Standardization of the fractal analysis methodology could offer a new tool for this type of characterization. In this study, we applied fractal analysis to the characterization of the different angioarchitectures found in specimens of glioblastoma multiforme (GBM), the most common and most malignant type of human brain tumor. A retrospective series of 114 primary GBM specimens was carried out. To quantify neoplastic microvascularity, the level of two-dimensional geometrical complexity of the microvascular patterns was assessed using the box-counting algorithm, which estimates the microvascular fractal dimension (mvFD). mvFD makes information on the non-Euclidean space filled by vessels embedded in the tumor microenvironment available because it depends on vessel number, shape, magnitude and distribution pattern. A mean mvFD value of 1.44 ± 0.17 (range: 1.06-1.87) was found. The coefficient of variation was 44%. The high geometric variability, found objectively, in these samples reflects the angioarchitectural heterogeneity underlying GBM. The present study shows that angioarchitectural subtypes can be identified by mvFD, making this parameter a potential tool for quantifying different neoplastic microvascular patterns.
目前,尚无用于客观量化脑肿瘤微血管化的标准技术。分形分析已被提出作为肿瘤微血管性的有用描述符。分形分析方法的标准化可为这种类型的特征提供新工具。在这项研究中,我们将分形分析应用于多形性胶质母细胞瘤(GBM)标本中发现的不同血管结构的特征描述,GBM 是最常见和最恶性的人类脑肿瘤。进行了回顾性系列 114 例原发性 GBM 标本的研究。为了量化肿瘤微血管,使用盒计数算法评估微血管模式的二维几何复杂性的程度,该算法估计微血管分形维数(mvFD)。mvFD 提供了有关嵌入肿瘤微环境中的血管所填充的非欧几里得空间的信息,因为它取决于血管数量、形状、大小和分布模式。发现平均 mvFD 值为 1.44 ± 0.17(范围:1.06-1.87)。变异系数为 44%。这些样本中客观发现的高几何变异性反映了 GBM 下的血管结构异质性。本研究表明,mvFD 可识别血管结构亚型,使该参数成为量化不同肿瘤微血管模式的潜在工具。