Background/objective: Traditional platinum coils used for cerebral aneurysm embolization have a uniform degree of softness throughout an individual coil's length. Recently, SMART Coils (Penumbra Inc., Alameda, California, USA) have been developed, which transition in softness along the length of their coils. We report the initial clinical results with this technology.
Methods: A retrospective study of all patients undergoing aneurysm coiling with SMART Coils at 2 centers was performed to evaluate the safety and efficacy of this new technology. Outcome and angiographic data were self-reported by individual treatment centers.
Results: Fifty-nine patients underwent treatment for cerebral aneurysms with SMART Coils (44% in the setting of subarachnoid hemorrhage). Mean aneurysm size was 5.9 ± 2 mm × 4.5 ± 2 mm. Mean neck size was 3.4 ± 1 mm. More than half (54.2%) of the patients underwent coiling exclusively with SMART Coils. The remainder used either framing or finishing coils of another type. About one third (33.9%) underwent balloon-assisted coiling, and 47.5% underwent stent-assisted coiling. There were no device malfunctions in any of the patients. Six (10.1%) minor complications without clinical sequelae occurred. Raymond I or II occlusion was achieved in 71.2%.
Conclusions: Our results demonstrate adequate device safety in a variety of both ruptured and unruptured aneurysm locations. This design enables progressive changes in softness along the length of an individual coil, which offers several potential advantages in the clinical use. This initial investigation of SMART Coil technology demonstrates safety and efficacy in the treatment of a wide range of aneurysm sizes, locations, and morphologies in both ruptured and unruptured settings.
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http://dx.doi.org/10.1016/j.wneu.2016.06.009 | DOI Listing |
Data Brief
December 2024
Department of Electrical, Electronic and Communications Engineering, Public University of Navarre, Campus of Arrosadía 31006, Pamplona, Spain.
This paper presents a publicly available dataset designed to support the identification (characterization) and performance optimization of an ultra-low-frequency multidirectional vibration energy harvester. The dataset includes detailed measurements from experiments performed to fully characterize its dynamic behaviour. The experimental data encompasses both input (acceleration)-output (energy) relationships, as well as internal system dynamics, measured using a synchronized image processing and signal acquisition system.
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November 2024
Students' Scientific Research Center (SSRC), Tehran University of Medical Sciences, Iran.
ACS Appl Mater Interfaces
November 2024
Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, School of Physics, Central South University, Changsha, Hunan 410083, China.
Footwear smart devices capable of reliably capturing body actions and conveniently transmitting human-made information are of great interest to advance healthcare monitoring, human-machine interactions (HMIs), etc. while remaining challenging. Herein, we present a self-powered, antislip, and multifunctional smart outsole based on the gecko toe-inspired tilted magnetized flakes (TMFs) and underlying flexible coils.
View Article and Find Full Text PDFJ Mech Behav Biomed Mater
December 2024
Department of Bioengineering, University of California Riverside, Riverside, CA, USA; Stephenson School of Biomedical Engineering, The University of Oklahoma, Norman, OK, USA. Electronic address:
Despite recent technological advancements in endovascular embolization devices for treating intracranial aneurysms (ICAs), incomplete occlusion and aneurysm recanalization remain critical challenges. Shape memory polymer (SMP)-based devices, which can be manufactured and tailored to patient-specific aneurysm geometries, possess the potential to overcome the suboptimal treatment outcome of the gold standard: endovascular coiling. In this work, we propose a highly porous patient-specific SMP embolic device fabricated via 3D printing to optimize aneurysm occlusion, and thus, improve the long-term efficacy of endovascular treatment.
View Article and Find Full Text PDFSmall
October 2024
Advanced Materials Division, Korea Research Institute of Chemical Technology, Daejeon, 34114, Republic of Korea.
As actuated devices become smaller and more complex, there is a need for smart materials and structures that directly function as complete mechanical units without an external power supply. The strategy uses light-powered, twisted, and coiled azobenzene-functionalized semicrystalline liquid crystal elastomer (AC-LCE) springs. This twisting and coiling, which has previously been used for only thermally, electrochemically, or absorption-powered muscles, maximizes uniaxial and radial actuation.
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