TY - JOUR
T1 - Quantifying irregular pulsation of intracranial aneurysms using 4D-CTA
AU - Xie, Hujin
AU - Yu, Han
AU - Wu, Hao
AU - Wang, Jiaqiu
AU - Wu, Shanglin
AU - Zhang, Jianjian
AU - Zhao, Huilin
AU - Yuan, Mingyang
AU - Benitez Mendieta, Jessica
AU - Anbananthan, Haveena
AU - Winter, Craig
AU - Zhu, Chengcheng
AU - Li, Zhiyong
N1 - Publisher Copyright:
© 2024 The Authors
PY - 2024/8/7
Y1 - 2024/8/7
N2 - Recent studies have suggested that irregular pulsation of intracranial aneurysm during the cardiac cycle may be potentially associated with aneurysm rupture risk. However, there is a lack of quantification method for irregular pulsations. This study aims to quantify irregular pulsations by the displacement and strain distribution of the intracranial aneurysm surface during the cardiac cycle using four-dimensional CT angiographic image data. Four-dimensional CT angiography was performed in 8 patients. The image data of a cardiac cycle was divided into approximately 20 phases, and irregular pulsations were detected in four intracranial aneurysms by visual observation, and then the displacement and strain of the intracranial aneurysm was quantified using coherent point drift and finite element method. The displacement and strain were compared between aneurysms with irregular and normal pulsations in two different ways (total and stepwise). The stepwise first principal strain was significantly higher in aneurysms with irregular than normal pulsations (0.20 ± 0.01 vs 0.16 ± 0.02, p = 0.033). It was found that the irregular pulsations in intracranial aneurysms usually occur during the consecutive ascending or descending phase of volume changes during the cardiac cycle. In addition, no statistically significant difference was found in the aneurysm volume changes over the cardiac cycle between the two groups. Our method can successfully quantify the displacement and strain changes in the intracranial aneurysm during the cardiac cycle, which may be proven to be a useful tool to quantify intracranial aneurysm deformability and aid in aneurysm rupture risk assessment.
AB - Recent studies have suggested that irregular pulsation of intracranial aneurysm during the cardiac cycle may be potentially associated with aneurysm rupture risk. However, there is a lack of quantification method for irregular pulsations. This study aims to quantify irregular pulsations by the displacement and strain distribution of the intracranial aneurysm surface during the cardiac cycle using four-dimensional CT angiographic image data. Four-dimensional CT angiography was performed in 8 patients. The image data of a cardiac cycle was divided into approximately 20 phases, and irregular pulsations were detected in four intracranial aneurysms by visual observation, and then the displacement and strain of the intracranial aneurysm was quantified using coherent point drift and finite element method. The displacement and strain were compared between aneurysms with irregular and normal pulsations in two different ways (total and stepwise). The stepwise first principal strain was significantly higher in aneurysms with irregular than normal pulsations (0.20 ± 0.01 vs 0.16 ± 0.02, p = 0.033). It was found that the irregular pulsations in intracranial aneurysms usually occur during the consecutive ascending or descending phase of volume changes during the cardiac cycle. In addition, no statistically significant difference was found in the aneurysm volume changes over the cardiac cycle between the two groups. Our method can successfully quantify the displacement and strain changes in the intracranial aneurysm during the cardiac cycle, which may be proven to be a useful tool to quantify intracranial aneurysm deformability and aid in aneurysm rupture risk assessment.
KW - 4D-CTA
KW - Intracranial aneurysm
KW - Irregular pulsation
KW - Strain
UR - http://www.scopus.com/inward/record.url?scp=85200799969&partnerID=8YFLogxK
U2 - 10.1016/j.jbiomech.2024.112269
DO - 10.1016/j.jbiomech.2024.112269
M3 - Article
SN - 0021-9290
VL - 174
SP - 112269
JO - Journal of Biomechanics
JF - Journal of Biomechanics
M1 - 112269
ER -