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颅内动静脉畸形的血流动力学分析

A haemodynamic analysis of intracranial arteriovenous malformations.

作者信息

Lo E H

机构信息

Center for Imaging and Pharmaceutical Research, Massachusetts General Hospital, Harvard Medical School, Boston 02129.

出版信息

Neurol Res. 1993 Feb;15(1):51-5. doi: 10.1080/01616412.1993.11740107.

DOI:10.1080/01616412.1993.11740107
PMID:8098854
Abstract

Abnormal haemodynamics of intracranial arteriovenous malformations (AVMs) may account for a large spectrum of pathophysiology, including vascular steal, haemorrhage, chronic hypoperfusion, and low-grade ischaemia in adjacent brain tissue. The high blood flow rates present in AVMs may also influence treatment complications including, 'perfusion pressure breakthrough' phenomena. In this paper, a biomathematical analysis of haemodynamic alterations in intracranial arteriovenous malformations is presented, based on fluid dynamic formulations of flow rates, cerebral perfusion pressure, intra-AVM pressure gradients, and haemodynamic resistances. The model demonstrates that (1) vascular steal is inversely proportional to the haemodynamic resistance of the AVM, (2) haemorrhage probability is related to the distribution of cerebral perfusion pressure across large thin-walled shunts, (3) normal reperfusion pressure after AVM obliteration is dependent on the ratio of resistance of surrounding vasculature versus any residual AVM, and (4) hyperemic complications post-treatment are likely to occur in high-flow AVMs that demonstrate steal. These results, in general, agree with current clinical impressions. Although the difficulty of obtaining accurate clinical measurements of some of these model parameters precludes a complete empirical testing of the model, the biomathematical analysis should provide a useful theoretical framework for understanding the complex haemodynamic perturbations that may influence the pathophysiology and treatment approach for intracranial AVMs.

摘要

颅内动静脉畸形(AVM)的异常血流动力学可能导致一系列广泛的病理生理过程,包括盗血、出血、慢性灌注不足以及相邻脑组织的轻度缺血。AVM中存在的高血流速度也可能影响治疗并发症,包括“灌注压突破”现象。本文基于血流速度、脑灌注压、AVM内压力梯度和血流动力学阻力的流体动力学公式,对颅内动静脉畸形的血流动力学改变进行了生物数学分析。该模型表明:(1)盗血与AVM的血流动力学阻力成反比;(2)出血概率与脑灌注压在大型薄壁分流处的分布有关;(3)AVM闭塞后的正常再灌注压力取决于周围血管系统与任何残留AVM的阻力比值;(4)在表现出盗血的高流量AVM中,治疗后可能会出现充血性并发症。总体而言,这些结果与当前的临床印象相符。尽管获得其中一些模型参数的准确临床测量存在困难,妨碍了对该模型进行完整的实证检验,但生物数学分析应为理解可能影响颅内AVM病理生理和治疗方法的复杂血流动力学扰动提供一个有用的理论框架。

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引用本文的文献

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Computational Network Modeling of Intranidal Hemodynamic Compartmentalization in a Theoretical Three-Dimensional Brain Arteriovenous Malformation.理论三维脑动静脉畸形巢内血流动力学分区的计算网络建模
Front Physiol. 2019 Sep 24;10:1250. doi: 10.3389/fphys.2019.01250. eCollection 2019.
2
Seizure control following treatment of brain arteriovenous malformations in pediatric patients.小儿脑动静脉畸形治疗后的癫痫控制
Childs Nerv Syst. 2016 Dec;32(12):2387-2394. doi: 10.1007/s00381-016-3216-x. Epub 2016 Sep 1.
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Endovascular Pressure Measurements: Validation with a Pulsatile Flow Model and Haemodynamic Assessment of Brain AVMs.
血管内压力测量:通过脉动血流模型进行验证及脑动静脉畸形的血流动力学评估
Interv Neuroradiol. 2004 Dec 20;10(4):281-91. doi: 10.1177/159101990401000401. Epub 2005 Feb 8.
4
Complications after multidisciplinary treatment of cerebral arteriovenous malformations.脑动静脉畸形多学科治疗后的并发症
Acta Neurochir (Wien). 1996;138(2):119-31. doi: 10.1007/BF01411350.