Spatial-demographic analysis model for brain metastases distribution.

IF 9.7 1区 医学 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Radiologia Medica Pub Date : 2025-03-01 Epub Date: 2025-02-28 DOI:10.1007/s11547-025-01965-5
Lin Zhang, Tongtong Che, Bowen Xin, Shuyu Li, Guanzhong Gong, Xiuying Wang
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引用次数: 0

Abstract

Purpose: The distribution analysis of the morphologic characteristics and spatial relations among brain metastases (BMs) to guide screening and early diagnosis.

Material and methods: This retrospective study analysed 4314 BMs across 30 brain regions from MRIs of 304 patients. This paper proposed a unified analysis model based on persistent homology (PH) and graph modelling to provide a comprehensive portrait of BMs distribution. Spatial relationships are quantified through dynamic multiple-scale graphs constructed with Rips filtration. The multi-scale centrality importance and clustering coefficients are extracted to decode BMs spatial relations. Morphologic BMs characteristics are further analysed by varying radius and volume values that are considered as clinically influential factors. Finally, two-tailed proportional hypothesis testing is used for BM statistical distribution analysis.

Results: For spatial analysis, results have shown a statistical increase in the proportions of high-level centrality BMs at the left cerebellum (p<0.01). BMs rapidly form graphs with high clustering rather than those with high centrality. For demographic analysis, the cerebellum and frontal are the top high-frequency areas of BMs with 0-4 and 5-10 radii. Statistical increases in the proportions of BMs at cerebellum (p<0.01).

Conclusion: Results indicate that distributions of both BMs spatial relations and demographics are statistically non-random. This research offers novel insights into the BMs distribution analysis, providing physicians with the BMs demographic to guide screening and early diagnosis.

脑转移瘤分布的空间-人口分析模型
目的:分析脑转移瘤(BMs)的形态特征及空间关系分布,指导筛查和早期诊断。材料和方法:本回顾性研究分析了304例患者30个脑区的4314个脑转移灶。本文提出了一种基于持久同源性(PH)和图建模的统一分析模型,以全面描述脑转移瘤的分布。空间关系通过Rips过滤构造的动态多尺度图来量化。提取多尺度中心性重要度系数和聚类系数,解码脑卒中空间关系。形态学上的脑转移特征通过不同的半径和体积值进一步分析,这被认为是临床影响因素。最后,采用双尾比例假设检验进行BM统计分布分析。结果:在空间分析中,结果显示左小脑高中心性脑转移的比例在统计学上有所增加(p结论:结果表明脑转移的空间关系和人口分布在统计学上都是非随机的。这项研究为脑转移分布分析提供了新的见解,为医生提供了脑转移人口统计数据,以指导筛查和早期诊断。
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来源期刊
Radiologia Medica
Radiologia Medica 医学-核医学
CiteScore
14.10
自引率
7.90%
发文量
133
审稿时长
4-8 weeks
期刊介绍: Felice Perussia founded La radiologia medica in 1914. It is a peer-reviewed journal and serves as the official journal of the Italian Society of Medical and Interventional Radiology (SIRM). The primary purpose of the journal is to disseminate information related to Radiology, especially advancements in diagnostic imaging and related disciplines. La radiologia medica welcomes original research on both fundamental and clinical aspects of modern radiology, with a particular focus on diagnostic and interventional imaging techniques. It also covers topics such as radiotherapy, nuclear medicine, radiobiology, health physics, and artificial intelligence in the context of clinical implications. The journal includes various types of contributions such as original articles, review articles, editorials, short reports, and letters to the editor. With an esteemed Editorial Board and a selection of insightful reports, the journal is an indispensable resource for radiologists and professionals in related fields. Ultimately, La radiologia medica aims to serve as a platform for international collaboration and knowledge sharing within the radiological community.
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