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Preclinical Testing Platforms for Mechanical Thrombectomy in Stroke: a Review on Phantoms, In-vivo Animal, and Cadaveric Models

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Specialty Neurology
Date 2021 Mar 16
PMID 33722966
Citations 10
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Abstract

Preclinical testing platforms have been instrumental in the research and development of thrombectomy devices. However, there is no single model which fully captures the complexity of cerebrovascular anatomy, physiology, and the dynamic artery-clot-device interaction. This article provides a critical review of phantoms, in-vivo animal, and human cadaveric models used for thrombectomy testing and provides insights into the strengths and limitations of each platform. Articles published in the past 10 years that reported thrombectomy testing platforms were identified. Characteristics of each test platform, such as intracranial anatomy, artery tortuosity, vessel friction, flow conditions, device-vessel interaction, and visualization, were captured and benchmarked against human cerebral vessels involved in large-vessel occlusion stroke. Thrombectomy phantoms have been constructed from silicone, direct 3D-printed polymers, and glass. These phantoms represent oversimplified patient-specific cerebrovascular geometry but enable adequate visualization of devices and clots under appropriate flow conditions. They do not realistically mimic the artery-clot interaction. For the animal models, arteries from swine, canines, and rabbits have been reported. These models can reasonably replicate the artery-clot-device interaction and have the unique value of evaluating the safety of thrombectomy devices. However, the vasculature geometries are substantially less complex and flow conditions are different from human cerebral arteries. Cadaveric models are the most accurate vascular representations but with limited access and challenges in reproducibility of testing conditions. Multiple test platforms should be likely used for comprehensive evaluation of thrombectomy devices. Interpretation of the testing results should take into consideration platform-specific limitations.

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References
1.
Peschillo S, Diana F, Berge J, Missori P . A comparison of acute vascular damage caused by ADAPT versus a stent retriever device after thrombectomy in acute ischemic stroke: a histological and ultrastructural study in an animal model. J Neurointerv Surg. 2016; 9(8):743-749. DOI: 10.1136/neurintsurg-2016-012533. View

2.
Chueh J, Puri A, Wakhloo A, Gounis M . Risk of distal embolization with stent retriever thrombectomy and ADAPT. J Neurointerv Surg. 2014; 8(2):197-202. PMC: 4752657. DOI: 10.1136/neurintsurg-2014-011491. View

3.
Zhu L, Shao Q, Li T, Saver J, Li L, Li D . Evaluation of the JRecan device for thrombus retrieval: efficacy and safety in a swine model of acute arterial occlusion. J Neurointerv Surg. 2015; 8(5):526-30. DOI: 10.1136/neurintsurg-2015-011721. View

4.
Mordasini P, Frabetti N, Gralla J, Schroth G, Fischer U, Arnold M . In vivo evaluation of the first dedicated combined flow-restoration and mechanical thrombectomy device in a swine model of acute vessel occlusion. AJNR Am J Neuroradiol. 2010; 32(2):294-300. PMC: 7965706. DOI: 10.3174/ajnr.A2270. View

5.
Mokin M, Setlur Nagesh S, Ionita C, Levy E, Siddiqui A . Comparison of modern stroke thrombectomy approaches using an in vitro cerebrovascular occlusion model. AJNR Am J Neuroradiol. 2014; 36(3):547-51. PMC: 8013058. DOI: 10.3174/ajnr.A4149. View