Literature DB >> 21514520

Radial force measurements in carotid stents: influence of stent design and length of the lesion.

Michiel T Voûte1, Johanna M Hendriks, Jorinde H H van Laanen, Peter M T Pattynama, Bart E Muhs, Don Poldermans, Hence J M Verhagen.   

Abstract

PURPOSE: To assess the differences in radial force of carotid stents and whether the length of the lesion influences the measurements.
MATERIALS AND METHODS: Different models of tapered stents of similar size (length, 30 mm) were used. The tapered nitinol Acculink, Protégé, and Cristallo Ideale carotid artery stents and the straight, braided Elgiloy carotid Wallstent were compared. A measurement device consisting of three film loops along the stent body connected to aluminium rods with copper strain gauges was developed. Five stents of each type were deployed within 3-mm stenoses in simulated long (26 mm) and short (8 mm) stenoses.
RESULTS: In the short stenosis simulation, the greatest radial force was seen in the Protégé stent, at 3.14 N ± 0.45, followed by the Cristallo Ideale stent (1.73 N ± 0.51), Acculink (1.16 N ± 0.21), and Wallstent (0.84 N ± 0.10; P < .001). In the long stenosis simulation, peak radial force again was highest in the Protégé stent (1.67 N ± 0.37), but the Acculink stent was second (0.95 N ± 0.12) and the Wallstent third (0.80 N ± 0.06). The Cristallo Ideale stent, in contrast to the short stenosis simulation, produced the least radial force (0.44 N ± 0.13) in the long stenosis simulation (P = .001).
CONCLUSIONS: Radial forces exerted by carotid stents vary significantly among stent designs. Differences between stent types are dependent on the length of the stenosis. An understanding of radial force is necessary for a well-considered choice of stent type in each individual patient.
Copyright © 2011 SIR. Published by Elsevier Inc. All rights reserved.

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Year:  2011        PMID: 21514520     DOI: 10.1016/j.jvir.2011.01.450

Source DB:  PubMed          Journal:  J Vasc Interv Radiol        ISSN: 1051-0443            Impact factor:   3.464


  9 in total

1.  Carotid endarterectomy versus stenting: Does the flow really change? An Echo-Color-Doppler analysis.

Authors:  Pierleone Lucatelli; Fabrizio Fanelli; Carlo Cirelli; Beatrice Sacconi; Michele Anzidei; Roberto Montisci; Roberto Sanfilippo; Elisabetta Tamponi; Carlo Catalano; Luca Saba
Journal:  Int J Cardiovasc Imaging       Date:  2015-02-20       Impact factor: 2.357

2.  Neointimal hyperplasia after stent placement across size-discrepant vessels in an animal study.

Authors:  Hisayuki Cho; Mineyoshi Nango; Yukimasa Sakai; Etsuji Sohgawa; Ken Kageyama; Shinichi Hamamoto; Toshiaki Kitayama; Akira Yamamoto; Yukio Miki
Journal:  Jpn J Radiol       Date:  2014-04-09       Impact factor: 2.374

3.  Intentional Stent Stenosis to Prevent Hyperperfusion Syndrome after Carotid Artery Stenting for Extremely High-Grade Stenosis.

Authors:  T Mori; K Yoshioka; Y Tanno; S Kasakura
Journal:  AJNR Am J Neuroradiol       Date:  2020-11-12       Impact factor: 3.825

4.  Understanding the Radial Force of Stroke Thrombectomy Devices to Minimize Vessel Wall Injury: Mechanical Bench Testing of the Radial Force Generated by a Novel Braided Thrombectomy Assist Device Compared to Laser-Cut Stent Retrievers in Simulated MCA Vessel Diameters.

Authors:  Jeffrey M Katz; Abdullah M Hakoun; Amir R Dehdashti; Alex B Chebl; Vikram Janardhan; Vallabh Janardhan
Journal:  Interv Neurol       Date:  2019-08-05

5.  Bench-top Comparison of Physical Properties of 4 Commercially-Available Self-Expanding Intracranial Stents.

Authors:  Su-Hee Cho; Won-Il Jo; Ye-Eun Jo; Ku Hyun Yang; Jung Cheol Park; Deok Hee Lee
Journal:  Neurointervention       Date:  2017-03-06

6.  (In)comparability of Carotid Artery Stent Characteristics: A Systematic Review on Assessment and Comparison with Manufacturer Data.

Authors:  Evelien E de Vries; Mert Kök; Astrid M Hoving; Cornelis H Slump; Raechel J Toorop; Gert J de Borst
Journal:  Cardiovasc Intervent Radiol       Date:  2020-05-14       Impact factor: 2.740

7.  Delayed Iatrogenic Dissection Caused by a Carotid Stent: A Case Report.

Authors:  Hidemichi Ito; Masashi Uchida; Kimiyuki Kawaguchi; Gaku Hidaka; Hiroshi Takasuna; Tetsuya Goto; Ichiro Takumi; Yuta Hagiwara; Yuichiro Tanaka
Journal:  NMC Case Rep J       Date:  2021-06-12

8.  Mechanical characterizations of braided composite stents made of helical polyethylene terephthalate strips and NiTi wires.

Authors:  Qingli Zheng; Pengfei Dong; Zhiqiang Li; Xinwei Han; Changchun Zhou; Meiwen An; Linxia Gu
Journal:  Nanotechnol Rev       Date:  2019-11-06       Impact factor: 6.739

9.  Gradual Expansion of a Stent to Prevent Periprocedural Complications after Carotid Artery Stenting for Vulnerable Severe Stenotic Lesions with Intraplaque Hemorrhages: A Retrospective Observational Study.

Authors:  Takahisa Mori; Kazuhiro Yoshioka; Yuhei Tanno; Shigen Kasakura
Journal:  Life (Basel)       Date:  2022-01-17
  9 in total

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