A numerical study of the effect of thrombus breakdown on predicted thrombus formation and growth

被引:9
作者
Wang, Kaihong [1 ]
Armour, Chloee H. [1 ]
Gibbs, Richard G. J. [2 ]
Xu, Xiao Yun [1 ]
机构
[1] Imperial Coll London, Dept Chem Engn, London, England
[2] Imperial Coll London, St Marys Hosp, Imperial Coll Healthcare Natl Hlth Serv Trust, Reg Vasc Unit, London, England
关键词
Thrombosis modeling; Computational fluid dynamics; Hemodynamics; Backward-facing step; Thrombus breakdown; Shear stress; COMPUTATIONAL MODEL; BLOOD; COAGULATION; FLOW; FIBRINOGEN; INITIATION;
D O I
10.1007/s10237-023-01757-8
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Thrombosis is a complex biological process which involves many biochemical reactions and is influenced by blood flow. Various computational models have been developed to simulate natural thrombosis in diseases such as aortic dissection (AD), and device-induced thrombosis in blood-contacting biomedical devices. While most hemodynamics-based models consider the role of low shear stress in the initiation and growth of thrombus, they often ignore the effect of thrombus breakdown induced by elevated shear stress. In this study, a new shear stress-induced thrombus breakdown function is proposed and implemented in our previously published thrombosis model. The performance of the refined model is assessed by quantitative comparison with experimental data on thrombus formation in a backward-facing step geometry, and qualitative comparison with in vivo data obtained from an AD patient. Our results show that incorporating thrombus breakdown improves accuracy in predicted thrombus volume and captures the same pattern of thrombus evolution as measured experimentally and in vivo. In the backward-facing step geometry, thrombus breakdown impedes growth over the step and downstream, allowing a stable thrombus to be reached more quickly. Moreover, the predicted thrombus volume, height and length are in better agreement with the experimental measurements compared to the original model which does not consider thrombus breakdown. In the patient-specific AD, the refined model outperforms the original model in predicting the extent and location of thrombosis. In conclusion, the effect of thrombus breakdown is not negligible and should be included in computational models of thrombosis.
引用
收藏
页码:61 / 71
页数:11
相关论文
共 39 条
[1]   Effects of different non-Newtonian models on unsteady blood flow hemodynamics in patient-specific arterial models with in-vivo validation [J].
Abbasian, Majid ;
Shams, Mehrzad ;
Valizadeh, Ziba ;
Moshfegh, Abouzar ;
Javadzadegan, Ashkan ;
Cheng, Shaokoon .
COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, 2020, 186
[2]   A model for the formation and lysis of blood clots [J].
Anand, M ;
Rajagopal, K ;
Rajagopal, KR .
PATHOPHYSIOLOGY OF HAEMOSTASIS AND THROMBOSIS, 2005, 34 (2-3) :109-120
[3]  
ANAND M., 2003, J THEORET MED, V5, P183, DOI DOI 10.1080/10273660412331317415
[4]  
Armour CH, 2022, Studies in Mechanobiology, Tissue Engineering and Biomaterials, P53, DOI DOI 10.1007/978-3-030-92339-6_2
[5]   The influence of inlet velocity profile on predicted flow in type B aortic dissection [J].
Armour, Chloe Harriet ;
Guo, Baolei ;
Pirola, Selene ;
Saitta, Simone ;
Liu, Yifan ;
Dong, Zhihui ;
Xu, Xiao Yun .
BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2021, 20 (02) :481-490
[6]   Location of Reentry Tears Affects False Lumen Thrombosis in Aortic Dissection Following TEVAR [J].
Armour, Chloee Harriet ;
Menichini, Claudia ;
Milinis, Kristijonas ;
Gibbs, Richard G. J. ;
Xu, Xiao Yun .
JOURNAL OF ENDOVASCULAR THERAPY, 2020, 27 (03) :396-404
[7]  
Austin SK, 2017, Medicine, V45, P204, DOI [10.1016/j.mpmed.2017.01.013, 10.1016/j.mpmed.2017.01.013, DOI 10.1016/J.MPMED.2017.01.013]
[8]   False lumen patency as a predictor of late outcome in aortic dissection [J].
Bernard, Y ;
Zimmermann, H ;
Chocron, S ;
Litzler, JF ;
Kastler, B ;
Etievent, JP ;
Meneveau, N ;
Schiele, F ;
Bassand, JP .
AMERICAN JOURNAL OF CARDIOLOGY, 2001, 87 (12) :1378-1382
[9]   Thrombin and platelet activation [J].
Brass, LF .
CHEST, 2003, 124 (03) :18S-25S
[10]   Numerical investigation of the non-Newtonian pulsatile blood flow in a bifurcation model with a non-planar branch [J].
Chen, J ;
Lu, XY .
JOURNAL OF BIOMECHANICS, 2006, 39 (05) :818-832