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Review

Braided stents and their impact in intracranial aneurysm treatment for distal locations: from flow diverters to low profile stents

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Pages 237-251 | Received 30 Sep 2018, Accepted 22 Jan 2019, Published online: 06 Feb 2019

References

  • Nossek E, Zumofen DW, Setton A, et al. Treatment of distal anterior cerebral artery aneurysms with the Pipeline Embolization Device. J Clin Neurosci. 2017;35:133–138.
  • Lin N, Lanzino G, Lopes DK, et al. Treatment of distal anterior circulation aneurysms with the Pipeline Embolization Device: a US multicenter experience. Neurosurgery. 2016;79(1):14–22.
  • Vora N, Thomas AJ, Gupta R, et al. Endovascular treatment of distal anterior cerebral artery aneurysms: technical results and review of the literature. J Neuroimaging. 2010;20(1):70–73.
  • Spiotta AM, Hui F, Schuette A, et al. Patterns of aneurysm recurrence after microsurgical clip obliteration. Neurosurgery. 2013;72(1):65–69. Discussion 9.
  • Ding D, Starke RM, Evans AJ, et al. Endovascular treatment of recurrent intracranial aneurysms following previous microsurgical clipping with the Pipeline Embolization Device. J Clin Neurosci. 2014;21(7):1241–1244.
  • Cekirge HS, Islak C, Firat MM, et al. Endovascular coil embolization of residual or recurrent aneurysms after surgical clipping. Acta Radiol. 2000;41(2):111–115.
  • Nussbaum ES, Defillo A. Surgical management and alternative strategies for neighboring intracranial aneurysms. J Neurosurg Sci. 2012;56(4):345–348.
  • Becske T, Kallmes DF, Saatci I, et al. Pipeline for uncoilable or failed aneurysms: results from a multicenter clinical trial. Radiology. 2013;267(3):858–868.
  • Gonzalez AM, Narata AP, Yilmaz H, et al. Blood blister-like aneurysms: single center experience and systematic literature review. Eur J Radiol. 2014;83(1):197–205.
  • Brinjikji W, Cloft HJ, Kallmes DF. Difficult aneurysms for endovascular treatment: overwide or undertall? Am J Neuroradiol. 2009;30(8):1513–1517.
  • Murthy SB, Shah J, Mangat HS, et al. Treatment of intracranial aneurysms with Pipeline Embolization Device: newer applications and technical advances. Curr Treat Options Neurol. 2016;18(4):16.
  • Gawlitza M, Januel AC, Tall P, et al. Flow diversion treatment of complex bifurcation aneurysms beyond the circle of Willis: a single-center series with special emphasis on covered cortical branches and perforating arteries. J Neurointerv Surg. 2016;8(5):481–487.
  • Iosif C, Camilleri Y, Saleme S, et al. Diffusion-weighted imaging-detected ischemic lesions associated with flow-diverting stents in intracranial aneurysms: safety, potential mechanisms, clinical outcome, and concerns. J Neurosurg. 2015;122(3):627–636.
  • Iosif C, Lecomte JC, Pedrolo-Silveira E, et al. Evaluation of ischemic lesion prevalence after endovascular treatment of intracranial aneurysms, as documented by 3-T diffusion-weighted imaging: a 2-year, single-center cohort study. J Neurosurg. 2018;128(4):982–991.
  • Martinez-Galdamez M, Romance A, Vega P, et al. Pipeline endovascular device for the treatment of intracranial aneurysms at the level of the circle of Willis and beyond: multicenter experience. J Neurointerv Surg. 2015;7(11):816–823.
  • Martin AR, Cruz JP, O’Kelly C, et al. Small pipes: preliminary experience with 3-mm or smaller pipeline flow-diverting stents for aneurysm repair prior to regulatory approval. Am J Neuroradiol. 2015;36(3):557–561.
  • Iosif C, Mounayer C, Yavuz K, et al. Middle cerebral artery bifurcation aneurysms treated by extrasaccular flow diverters: midterm angiographic evolution and clinical outcome. Am J Neuroradiol. 2017;38(2):310–316.
  • Fiorella D, Arthur A, Boulos A, et al. Final results of the US humanitarian device exemption study of the low-profile visualized intraluminal support (LVIS) device. J Neurointerv Surg. 2016;8(9):894–897.
  • Iosif C, Piotin M, Saleme S, et al. Safety and effectiveness of the Low Profile Visualized Intraluminal Support (LVIS and LVIS Jr) devices in the endovascular treatment of intracranial aneurysms: results of the TRAIL multicenter observational study. J Neurointerv Surg. 2018;10(7):675–681.
  • Park SY, Oh JS, Oh HJ, et al. Safety and efficacy of low-profile, self-expandable stents for treatment of intracranial aneurysms: initial and midterm results - a systematic review and meta-analysis. Interv Neurol. 2017;6(3–4):170–182.
  • Rosenørn J, Eskesen V, Schmidt K, et al. The risk of rebleeding from ruptured intracranial aneurysms. J Neurosurg. 1987;67(3):329–332.
  • Moret J, Cognard C, Weill A, et al. [Reconstruction technic in the treatment of wide-neck intracranial aneurysms. Long-term angiographic and clinical results. Apropos of 56 cases]. J Neuroradiol. 1997;24(1):30–44.
  • Karmonik C, Yen C, Grossman RG, et al. Intra-aneurysmal flow patterns and wall shear stresses calculated with computational flow dynamics in an anterior communicating artery aneurysm depend on knowledge of patient-specific inflow rates. Acta Neurochir (Wien). 2009;151(5):479–485. Discussion 85.
  • Kobayashi N, Miyachi S, Okamoto T, et al. Computer simulation of flow dynamics in an intracranial aneurysm. Effects of vessel wall pulsation on a case of ophthalmic aneurysm. Interv Neuroradiol. 2004;10 Suppl 1(Suppl 1):155–160.
  • Liou TM, Li YC. Effects of stent porosity on hemodynamics in a sidewall aneurysm model. J Biomech. 2008;41(6):1174–1183.
  • Wang C, Tian Z, Liu J, et al. Flow diverter effect of LVIS stent on cerebral aneurysm hemodynamics: a comparison with enterprise stents and the pipeline device. J Transl Med. 2016;14(1):199.
  • Aydin K, Barburoglu M, Sencer S, et al. Flow diversion with low-profile braided stents for the treatment of very small or uncoilable intracranial aneurysms at or distal to the circle of Willis. Am J Neuroradiol. 2017;38(11):2131–2137.
  • Kallmes DF, Ding YH, Dai D, et al. A new endoluminal, flow-disrupting device for treatment of saccular aneurysms. Stroke. 2007;38(8):2346–2352.
  • Kallmes DF, Ding YH, Dai D, et al. A second-generation, endoluminal, flow-disrupting device for treatment of saccular aneurysms. Am J Neuroradiol. 2009;30(6):1153–1158.
  • Fiorella D, Lylyk P, Szikora I, et al. Curative cerebrovascular reconstruction with the Pipeline embolization device: the emergence of definitive endovascular therapy for intracranial aneurysms. J Neurointerv Surg. 2009;1(1):56–65.
  • Lieber BB, Stancampiano AP, Wakhloo AK. Alteration of hemodynamics in aneurysm models by stenting: influence of stent porosity. Ann Biomed Eng. 1997;25(3):460–469.
  • Augsburger L, Farhat M, Reymond P, et al. Effect of flow diverter porosity on intraaneurysmal blood flow. Klin Neuroradiologie. 2009;19(3):204–214.
  • Lylyk P, Miranda C, Ceratto R, et al. Curative endovascular reconstruction of cerebral aneurysms with the pipeline embolization device: the Buenos aires experience. Neurosurgery. 2009;64(4):632–642. Discussion 42–3; quiz N6.
  • Mohlenbruch MA, Kizilkilic O, Killer-Oberpfalzer M, et al. Multicenter Experience with FRED Jr flow re-direction endoluminal device for intracranial aneurysms in small arteries. Am J Neuroradiol. 2017;38(10):1959–1965.
  • Patel PD, Chalouhi N, Atallah E, et al. Off-label uses of the Pipeline embolization device: a review of the literature. Neurosurg Focus. 2017;42(6):E4.
  • Pistocchi S, Blanc R, Bartolini B, et al. Flow diverters at and beyond the level of the circle of willis for the treatment of intracranial aneurysms. Stroke. 2012;43(4):1032–1038.
  • Saleme S, Iosif C, Ponomarjova S, et al. Flow-diverting stents for intracranial bifurcation aneurysm treatment. Neurosurgery. 2014;75(6):623–631. quiz 31.
  • Zanaty M, Chalouhi N, Tjoumakaris SI, et al. Flow diversion for complex middle cerebral artery aneurysms. Neuroradiology. 2014;56(5):381–387.
  • Dabus G, Grossberg JA, Cawley CM, et al. Treatment of complex anterior cerebral artery aneurysms with Pipeline flow diversion: mid-term results. J Neurointerv Surg. 2017;9(2):147–151.
  • Clarencon F, Di Maria F, Gabrieli J, et al. Flow diverter stents for the treatment of anterior cerebral artery aneurysms: safety and effectiveness. Clin Neuroradiol. 2017;27(1):51–56.
  • Puri AS, Massari F, Asai T, et al. Safety, efficacy, and short-term follow-up of the use of Pipeline Embolization Device in small (<2.5 mm) cerebral vessels for aneurysm treatment: single institution experience. Neuroradiology. 2016;58(3):267–275.
  • Bhogal P, AlMatter M, Bazner H, et al. Flow diversion for the treatment of MCA bifurcation aneurysms-a single centre experience. Front Neurol. 2017;8:20.
  • Morais R, Mine B, Bruyere PJ, et al. Endovascular treatment of intracranial aneurysms with the p64 flow diverter stent: mid-term results in 35 patients with 41 intracranial aneurysms. Neuroradiology. 2017;59(3):263–269.
  • Briganti F, Leone G, Marseglia M, et al. p64 Flow modulation device in the treatment of intracranial aneurysms: initial experience and technical aspects. J Neurointerv Surg. 2016;8(2):173–180.
  • Caroff J, Neki H, Mihalea C, et al. Flow-diverter stents for the treatment of saccular middle cerebral artery bifurcation aneurysms. Am J Neuroradiol. AJNR Am J Neuroradiol. 2016 Feb;37(2):279-84.
  • Iosif C, Saleme S, Ponsonnard S, et al. Intravascular optical coherence tomography for the evaluation of arterial bifurcations covered by flow diverters. J Neurointerv Surg. 2016.
  • Yan Y, Zhu D, Tang H, et al. Safety and efficacy of flow diverter treatment for aneurysm in small cerebral vessels: a systematic review and meta-analysis. World Neurosurg. 2018;115:54–64.
  • Ravindran K, Enriquez-Marulanda A, Kan PTM, et al. Use of flow diversion for the treatment of distal circulation aneurysms: a multicohort study. World Neurosurg. 2018;118:e825–e33.
  • Biondi A, Oppenheim C, Vivas E, et al. Cerebral aneurysms treated by Guglielmi detachable coils: evaluation with diffusion-weighted MR imaging. Am J Neuroradiol. 2000;21(5):957–963.
  • Brasiliense LB, Stanley MA, Grewal SS, et al. Silent ischemic events after Pipeline embolization device: a prospective evaluation with MR diffusion-weighted imaging. J Neurointerv Surg. 2016;8(11):1136–1139.
  • Morales-Valero SF, Brinjikji W, Wald JT, et al. Low frequency of delayed ischemic events on MRI after flow diversion for intracranial aneurysms. J Neurosurg Sci. 2017;61(5):459–463.
  • Biondi A. Diffusion-weighted imaging of thromboembolic events associated with coil embolization of intracranial aneurysms. Am J Neuroradiol. 2004;25(10):1861. author reply −2.
  • Shotar E, Law-Ye B, Baronnet-Chauvet F, et al. Non-ischemic cerebral enhancing lesions secondary to endovascular aneurysm therapy: nickel allergy or foreign body reaction? Case series and review of the literature. Neuroradiology. 2016;58(9):877–885.
  • Essbaiheen F, AlQahtani H, Almansoori TM, et al. Transient in-stent stenosis at mid-term angiographic follow-up in patients treated with silk flow diverter stents: incidence, clinical significance and long-term follow-up. J Neurointerv Surg. 2019 Feb;11(2):166-170.
  • Lubicz B, Van der Elst O, Collignon L, et al. Silk flow-diverter stent for the treatment of intracranial aneurysms: a series of 58 patients with emphasis on long-term results. Am J Neuroradiol. 2015;36(3):542–546.
  • Cohen JE, Gomori JM, Moscovici S, et al. Delayed complications after flow-diverter stenting: reactive in-stent stenosis and creeping stents. J Clin Neurosci. 2014;21(7):1116–1122.
  • De Vries J, Boogaarts J, Van Norden A, et al. New generation of flow diverter (surpass) for unruptured intracranial aneurysms: a prospective single-center study in 37 patients. Stroke. 2013;44(6):1567–1577.
  • Pumar JM, Banguero A, Cuellar H, et al. Treatment of intracranial aneurysms with the SILK embolization device in a multicenter study. A retrospective data analysis. Neurosurgery. 2017;81(4):595–601.
  • Zhou G, Su M, Yin YL, et al. Complications associated with the use of flow-diverting devices for cerebral aneurysms: a systematic review and meta-analysis. Neurosurg Focus. 2017;42(6):E17.
  • Rouchaud A, Brinjikji W, Lanzino G, et al. Delayed hemorrhagic complications after flow diversion for intracranial aneurysms: a literature overview. Neuroradiology. 2016;58(2):171–177.
  • Kallmes DF, Hanel R, Lopes D, et al. International retrospective study of the pipeline embolization device: a multicenter aneurysm treatment study. Am J Neuroradiol. 2015;36(1):108–115.
  • Kerl HU, Boll H, Fiebig T, et al. Implantation of pipeline flow-diverting stents reduces aneurysm inflow without relevantly affecting static intra-aneurysmal pressure. Neurosurgery. 2014;74(3):321–334. Discussion 34.
  • Kulcsar Z, Houdart E, Bonafe A, et al. Intra-aneurysmal thrombosis as a possible cause of delayed aneurysm rupture after flow-diversion treatment. Am J Neuroradiol. 2011;32(1):20–25.
  • Carrell TW, Burnand KG, Booth NA, et al. Intraluminal thrombus enhances proteolysis in abdominal aortic aneurysms. Vascular. 2006;14(1):9–16.
  • Schneiders JJ, VanBavel E, Majoie CB, et al. Flow-diverting stent is not a pressure-diverting stent. Am J Neuroradiol. 2013;34(1):E1–4.
  • Corriveau M, Ahmed A, Dawkins D, et al. The effect of flow diverting stents on in vivo intrasaccular aneurysm pressure. J Clin Neurosci. 2019;59:339–341.
  • Tateshima S, Jones JG, Mayor Basto F, et al. Aneurysm pressure measurement before and after placement of a Pipeline stent: feasibility study using a 0.014 inch pressure wire for coronary intervention. J Neurointerv Surg. 2016;8(6):603–607.
  • Cebral JR, Mut F, Raschi M, et al. Aneurysm rupture following treatment with flow-diverting stents: computational hemodynamics analysis of treatment. Am J Neuroradiol. 2011;32(1):27–33.
  • Tomas C, Benaissa A, Herbreteau D, et al. Delayed ipsilateral parenchymal hemorrhage following treatment of intracranial aneurysms with flow diverter. Neuroradiology. 2014;56(2):155–161.
  • Cruz JP, Chow M, O’Kelly C, et al. Delayed ipsilateral parenchymal hemorrhage following flow diversion for the treatment of anterior circulation aneurysms. Am J Neuroradiol. 2012;33(4):603–608.
  • Saatci I, Yavuz K, Ozer C, et al. Treatment of intracranial aneurysms using the pipeline flow-diverter embolization device: a single-center experience with long-term follow-up results. Am J Neuroradiol. 2012;33(8):1436–1446.
  • Fischer S, Vajda Z, Aguilar Perez M, et al. Pipeline embolization device (PED) for neurovascular reconstruction: initial experience in the treatment of 101 intracranial aneurysms and dissections. Neuroradiology. 2012;54(4):369–382.
  • Skukalek SL, Winkler AM, Kang J, et al. Effect of antiplatelet therapy and platelet function testing on hemorrhagic and thrombotic complications in patients with cerebral aneurysms treated with the pipeline embolization device: a review and meta-analysis. J Neurointerv Surg. 2016;8(1):58–65.
  • Mohlenbruch M, Herweh C, Behrens L, et al. The LVIS Jr. microstent to assist coil embolization of wide-neck intracranial aneurysms: clinical study to assess safety and efficacy. Neuroradiology. 2014;56(5):389–395.
  • Machi P, Costalat V, Lobotesis K, et al. LEO baby stent use following balloon-assisted coiling: single- and dual-stent technique–immediate and midterm results of 29 consecutive patients. Am J Neuroradiol. 2015;36(11):2096–2103.
  • Aydin K, Arat A, Sencer S, et al. Stent-assisted coiling of wide-neck intracranial aneurysms using low-profile LEO baby stents: initial and midterm results. Am J Neuroradiol. 2015;36(10):1934–1941.
  • Feng Z, Li Q, Zhao R, et al. Endovascular treatment of middle cerebral artery aneurysm with the LVIS junior stent. J Stroke Cerebrovasc Dis. 2015;24(6):1357–1362.
  • Feng X, Qian Z, Liu P, et al. Comparison of recanalization and in-stent stenosis between the low-profile visualized intraluminal support stent and enterprise stent-assisted coiling for 254 intracranial aneurysms. World Neurosurg. 2018;109:e99–e104.
  • Gao BL, Li TX, Li L, et al. Tiny cerebral aneurysms can be treated safely and effectively with low-profile visualized intraluminal support stent-assisted coiling or coiling alone. World Neurosurg. 2018;113:e426–e30.
  • Voigt P, Schob S, Jantschke R, et al. Stent-assisted coiling of ruptured and incidental aneurysms of the intracranial circulation using moderately flow-redirecting, braided leo stents-initial experience in 39 patients. Front Neurol. 2017;8:602.
  • Akmangit I, Aydin K, Sencer S, et al. Dual stenting using low-profile LEO baby stents for the endovascular management of challenging intracranial aneurysms. Am J Neuroradiol. 2015;36(2):323–329.
  • Santillan A, Boddu S, Schwarz J, et al. LVIS Jr. stent for treatment of intracranial aneurysms with parent vessel diameter of 2.5 mm or less. Interv Neuroradiol. 2018;24(3):246–253.
  • Cohen JE, Moscovici S, El Hassan HA, et al. T-microstent-assisted coiling in the management of ruptured wide-necked anterior communicating artery aneurysms: choosing between Y, X and T. J Clin Neurosci. 2016;34:283–287.
  • Cohen JE, Melamed I, Itshayek E. X-microstenting and transmesh coiling in the management of wide-necked tent-like anterior communicating artery aneurysms. J Clin Neurosci. 2014;21(4):664–667.
  • Samaniego EA, Mendez AA, Nguyen TN, et al. LVIS Jr device for Y-stent-assisted coil embolization of wide-neck intracranial aneurysms: a multicenter experience. Interv Neurol. 2018;7(5):271–283.
  • Aydin K, Men S, Barburoglu M, et al. Initial and long-term outcomes of complex bifurcation aneurysms treated by Y-stent-assisted coiling with low-profile braided stents. Am J Neuroradiol. 2018;39(12):2284–2290.
  • Du EH, Shankar JJ. LVIS Jr ‘shelf’ technique: an alternative to Y stent-assisted aneurysm coiling. J Neurointerv Surg. 2016.
  • Yoo DH, Cho YD, Moon J, et al. Long-term outcomes of low-profile visualized intraluminal support device usage in stent-assisted coiling of intracranial aneurysm. J Clin Neurosci. 2018;50:287–291.
  • Matsuda Y, Chung J, Keigher K, et al. A comparison between the new Low-profile Visualized Intraluminal Support (LVIS Blue) stent and the Flow Redirection Endoluminal Device (FRED) in bench-top and cadaver studies. J Neurointerv Surg. 2018;10(3):274–278.
  • Iosif C, Berg P, Ponsonnard S, et al. Role of terminal and anastomotic circulation in the patency of arteries jailed by flow-diverting stents: from hemodynamic changes to ostia surface modifications. J Neurosurg. 2017;126(5):1702–1713.
  • Berg P, Iosif C, Ponsonnard S, et al. Endothelialization of over- and undersized flow-diverter stents at covered vessel side branches: an in vivo and in silico study. J Biomech. 2016;49(1):4–12.
  • Ter Meer M, Daamen WF, Hoogeveen YL, et al. Continuously grooved stent struts for enhanced endothelial cell seeding. Cardiovasc Intervent Radiol. 2017;40(8):1237–1245.
  • Stiehm M, Wustenhagen C, Siewert S, et al. Impact of strut dimensions and vessel caliber on thrombosis risk of bioresorbable scaffolds using hemodynamic metrics. Biomed Tech. 2018.
  • Marom G, Eswaran SK, Rapoza RJ, et al. Design effect of metallic (durable) and polymeric (resorbable) stents on blood flow and platelet activation. Artif Organs. 2018;42(12):1148–1156.
  • Au DT, Arai AL, Fondrie WE, et al. Role of the LDL receptor-related protein 1 in regulating protease activity and signaling pathways in the vasculature. Curr Drug Targets. 2018;19(11):1276–1288.
  • Yamashiro Y, Yanagisawa H. Crossing bridges between extra- and intra-cellular events in thoracic aortic aneurysms. J Atheroscler Thromb. 2018;25(2):99–110.
  • Milewicz DM, Trybus KM, Guo DC, et al. Altered smooth muscle cell force generation as a driver of thoracic aortic aneurysms and dissections. Arterioscler Thromb Vasc Biol. 2017;37(1):26–34.
  • Mallat Z, Tedgui A, Henrion D. Role of microvascular tone and extracellular matrix contraction in the regulation of interstitial fluid: implications for aortic dissection. Arterioscler Thromb Vasc Biol. 2016;36(9):1742–1747.
  • Can A, Ho AL, Dammers R, et al. Morphological parameters associated with middle cerebral artery aneurysms. Neurosurgery. 2015;76(6):721–726. Discussion 6–7.
  • Can A, Mouminah A, Ho AL, et al. Effect of vascular anatomy on the formation of basilar tip aneurysms. Neurosurgery. 2015;76(1):62–66. Discussion 6.
  • Frosen J. Smooth muscle cells and the formation, degeneration, and rupture of saccular intracranial aneurysm wall–a review of current pathophysiological knowledge. Transl Stroke Res. 2014;5(3):347–356.
  • Penn DL, Witte SR, Komotar RJ, et al. The role of vascular remodeling and inflammation in the pathogenesis of intracranial aneurysms. J Clin Neurosci. 2014;21(1):28–32.
  • Bourcier R, Le Scouarnec S, Bonnaud S, et al. Rare coding variants in ANGPTL6 are associated with familial forms of intracranial aneurysm. Am J Hum Genet. 2018;102(1):133–141.
  • Reinhart-King CA, Fujiwara K, Berk BC. Physiologic stress-mediated signaling in the endothelium. Methods Enzymol. 2008;443:25–44.
  • Shi ZD, Tarbell JM. Fluid flow mechanotransduction in vascular smooth muscle cells and fibroblasts. Ann Biomed Eng. 2011;39(6):1608–1619.
  • Lam RH, Sun Y, Chen W, et al. Elastomeric microposts integrated into microfluidics for flow-mediated endothelial mechanotransduction analysis. Lab Chip. 2012;12(10):1865–1873.
  • Marosfoi M, Clarencon F, Et L, et al. Acute thrombus formation on phosphorilcholine surface modified flow diverters. J Neurointerv Surg. 2018;10(4):406–411.
  • Girdhar G, Andersen A, Pangerl E, et al. Thrombogenicity assessment of Pipeline Flex, Pipeline Shield, and FRED flow diverters in an in vitro human blood physiological flow loop model. J Biomed Mater Res A. 2018;106(12):3195-3202.
  • Colby GP, Bender MT, Lin LM, et al. Declining complication rates with flow diversion of anterior circulation aneurysms after introduction of the Pipeline Flex: analysis of a single-institution series of 568 cases. J Neurosurg. 2018;1–7.
  • Chong W, Zhang Y, Qian Y, et al. Computational hemodynamics analysis of intracranial aneurysms treated with flow diverters: correlation with clinical outcomes. Am J Neuroradiol. 2014;35(1):136–142.
  • Suzuki T, Takao H, Fujimura S, et al. Selection of helical braided flow diverter stents based on hemodynamic performance and mechanical properties. J Neurointerv Surg. 2017;9(10):999–1005.
  • Berg P, Saalfeld S, Voss S, et al. Does the DSA reconstruction kernel affect hemodynamic predictions in intracranial aneurysms? An analysis of geometry and blood flow variations. J Neurointerv Surg. 2018;10(3):290–296.
  • Berg P, Radtke L, Vos S, et al. 3DRA reconstruction of intracranial aneurysms - how does voxel size influences morphologic and hemodynamic parameters. Conference proceedings: Annual International Conference of the IEEE Engineering in Medicine and Biology Society IEEE Engineering in Medicine and Biology Society Annual Conference, Honolulu, HI, USA; 2018. 2018:1327–1330.
  • Berg P, Vos S, Becker M, et al. Bringing hemodynamic simulations closer to the clinics: a CFD prototype study for intracranial aneurysms. Conference proceedings: Annual International Conference of the IEEE Engineering in Medicine and Biology Society IEEE Engineering in Medicine and Biology Society Annual Conference, Orlando, FL, USA; 2016. 2016:3302–3305.
  • Voss S, Glasser S, Hoffmann T, et al. Fluid-structure simulations of a ruptured intracranial aneurysm: constant versus patient-specific wall thickness. Comput Math Methods Med. 2016;2016:9854539.
  • Berg P, Voss S, Saalfeld S, et al. Multiple Aneurysms AnaTomy CHallenge 2018 (MATCH): phase I: segmentation. Cardiovasc Eng Technol. 2018;9(4):565–581.
  • Berg P, Saalfeld S, Janiga G, et al. Virtual stenting of intracranial aneurysms: a pilot study for the prediction of treatment success based on hemodynamic simulations. Int J Artif Organs. 2018;41(11):698–705.
  • Ou C, Huang W, Yuen MM. A computational model based on fibrin accumulation for the prediction of stasis thrombosis following flow-diverting treatment in cerebral aneurysms. Med Biol Eng Comput. 2017;55(1):89–99.
  • de Sousa DR, Vallecilla C, Chodzynski K, et al. Determination of a shear rate threshold for thrombus formation in intracranial aneurysms. J Neurointerv Surg. 2016;8(8):853–858.

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