Publication:
Microtextured surfaces for deep-brain stimulation electrodes: A biologically inspired design to reduce lead migration

dc.contributor.authorParittotokkaporn T.
dc.contributor.authorThomas D.G.T.
dc.contributor.authorSchneider A.
dc.contributor.authorHuq E.
dc.contributor.authorDavies B.L.
dc.contributor.authorDegenaar P.
dc.contributor.authorRodriguez Y Baena F.
dc.date.accessioned2021-04-05T03:34:26Z
dc.date.available2021-04-05T03:34:26Z
dc.date.issued2012
dc.date.issuedBE2555
dc.description.abstractObjective: Hardware-related complications of deep brain stimulation (DBS) surgery have been reported with adverse effects in postoperative electrode migration. We report that the addition of microtextured features to the surface of a DBS-like probe can minimize the extent of electrode migration in ex vivo porcine brain. Methods: A DBS lead and microtextured strips, mounted with a fiberoptic displacement sensor, were embedded 15-mm deep inside a cadaveric porcine brain through holes on the skull. The local displacement of brain tissue surrounding each strip was detected along the direction of insertion by the optical sensor while the porcine head simulated brain shift during rotation between supine and upright postures. Results: The triangular toothed strip with protruding height of 250 μm enabled a better grip of the surrounding brain tissue than standard DBS lead, minimizing local brain displacement to 77 μm versus 326 μm respectively, when the porcine head was shifted from the supine to the upright position as the result of gravity. In addition, brain tissue damage resulting from the removal of toothed strips exhibited less-extensive tissue disruption, attributable to the microtextured surface. Conclusions: These preliminary results show that microtextured strips embedded into cadaveric porcine brain produce an anchoring effect on local tissue during brain shift, suggesting a way to reduce DBS lead migration without additional tissue damage beyond the strip geometry. © 2012 Elsevier Inc. All rights reserved.
dc.format.mimetypeapplication/pdf
dc.identifier.citationWorld Neurosurgery. Vol 77, No.44289 (2012), p.569-576
dc.identifier.doi10.1016/j.wneu.2011.06.040
dc.identifier.issn18788750
dc.identifier.other2-s2.0-84863410107
dc.identifier.urihttps://hdl.handle.net/20.500.14740/7102
dc.rights.holderScopus
dc.subject.otherLead
dc.subject.otherAnimal tissue
dc.subject.otherBiosensor
dc.subject.otherBody position
dc.subject.otherBrain depth stimulation
dc.subject.otherBrain tissue
dc.subject.otherCadaver
dc.subject.otherElectrode
dc.subject.otherEx vivo study
dc.subject.otherFiber optics
dc.subject.otherGravity
dc.subject.otherMedical instrumentation
dc.subject.otherMigration
dc.subject.otherNonhuman
dc.subject.otherReview
dc.subject.otherSkull
dc.subject.otherSupine position
dc.subject.otherSwine
dc.subject.otherTissue injury
dc.subject.otherAlgorithms
dc.subject.otherAnimals
dc.subject.otherBrain
dc.subject.otherCadaver
dc.subject.otherDeep Brain Stimulation
dc.subject.otherDevice Removal
dc.subject.otherElectrodes, Implanted
dc.subject.otherEquipment Design
dc.subject.otherExternal Fixators
dc.subject.otherForeign-Body Migration
dc.subject.otherFriction
dc.subject.otherPosture
dc.subject.otherSwine
dc.titleMicrotextured surfaces for deep-brain stimulation electrodes: A biologically inspired design to reduce lead migration
dc.typeReview
dspace.entity.typePublication
swu.datasource.scopushttps://www.scopus.com/inward/record.uri?eid=2-s2.0-84863410107&doi=10.1016%2fj.wneu.2011.06.040&partnerID=40&md5=62800ca4bfeb3dcc2fbfd4c3f74d5e8f

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