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一种用于脑血管疾病血流动力学个体化模拟的精准医学框架。

A precision medicine framework for personalized simulation of hemodynamics in cerebrovascular disease.

机构信息

Charite Lab for Artificial Intelligence in Medicine, Department of Neurosurgery, Charité University Medicine Berlin, Chariteplatz 1, 10115, Berlin, Germany.

Department of Neurosurgery, Charité University Medicine Berlin, Berlin, Germany.

出版信息

Biomed Eng Online. 2021 May 1;20(1):44. doi: 10.1186/s12938-021-00880-w.

Abstract

BACKGROUND

Cerebrovascular disease, in particular stroke, is a major public health challenge. An important biomarker is cerebral hemodynamics. To measure and quantify cerebral hemodynamics, however, only invasive, potentially harmful or time-to-treatment prolonging methods are available.

RESULTS

We present a simulation-based approach which allows calculation of cerebral hemodynamics based on the patient-individual vessel configuration derived from structural vessel imaging. For this, we implemented a framework allowing segmentation and annotation of brain vessels from structural imaging followed by 0-dimensional lumped simulation modeling of cerebral hemodynamics. For annotation, a 3D-graphical user interface was implemented. For 0D-simulation, we used a modified nodal analysis, which was adapted for easy implementation by code. The simulation enables identification of areas vulnerable to stroke and simulation of changes due to different systemic blood pressures. Moreover, sensitivity analysis was implemented allowing the live simulation of changes to simulate procedures and disease progression. Beyond presentation of the framework, we demonstrated in an exploratory analysis in 67 patients that the simulation has a high specificity and low-to-moderate sensitivity to detect perfusion changes in classic perfusion imaging.

CONCLUSIONS

The presented precision medicine approach using novel biomarkers has the potential to make the application of harmful and complex perfusion methods obsolete.

摘要

背景

脑血管疾病,特别是中风,是一个主要的公共卫生挑战。一个重要的生物标志物是脑血流动力学。然而,为了测量和量化脑血流动力学,只有侵入性的、潜在有害的或延长治疗时间的方法可用。

结果

我们提出了一种基于模拟的方法,该方法允许根据从结构血管成像中得出的患者个体血管结构来计算脑血流动力学。为此,我们实现了一个框架,允许从结构成像中分割和注释脑血管,然后对脑血流动力学进行 0 维集总模拟建模。对于注释,我们实现了一个 3D 图形用户界面。对于 0 维模拟,我们使用了一种修改后的节点分析,该分析通过代码进行了易于实现的改编。该模拟能够识别易中风的区域,并模拟由于不同全身血压而导致的变化。此外,我们还实现了敏感性分析,允许实时模拟变化,以模拟程序和疾病进展。除了介绍该框架外,我们在 67 名患者的探索性分析中证明,该模拟具有高特异性和低至中度敏感性,可检测经典灌注成像中的灌注变化。

结论

使用新型生物标志物的这种精准医学方法有可能使有害和复杂的灌注方法过时。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e116/8088619/ee3e7bc801e4/12938_2021_880_Fig1_HTML.jpg

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