Literature DB >> 19301961

Avoiding the ventricle: a simple step to improve accuracy of anatomical targeting during deep brain stimulation.

Ludvic Zrinzo1, Arjen L J van Hulzen, Alessandra A Gorgulho, Patricia Limousin, Michiel J Staal, Antonio A F De Salles, Marwan I Hariz.   

Abstract

OBJECT: The authors examined the accuracy of anatomical targeting during electrode implantation for deep brain stimulation in functional neurosurgical procedures. Special attention was focused on the impact that ventricular involvement of the electrode trajectory had on targeting accuracy.
METHODS: The targeting error during electrode placement was assessed in 162 electrodes implanted in 109 patients at 2 centers. The targeting error was calculated as the shortest distance from the intended stereotactic coordinates to the final electrode trajectory as defined on postoperative stereotactic imaging. The trajectory of these electrodes in relation to the lateral ventricles was also analyzed on postoperative images.
RESULTS: The trajectory of 68 electrodes involved the ventricle. The targeting error for all electrodes was calculated: the mean +/- SD and the 95% CI of the mean was 1.5 +/- 1.0 and 0.1 mm, respectively. The same calculations for targeting error for electrode trajectories that did not involve the ventricle were 1.2 +/- 0.7 and 0.1 mm. A significantly larger targeting error was seen in trajectories that involved the ventricle (1.9 +/- 1.1 and 0.3 mm; p < 0.001). Thirty electrodes (19%) required multiple passes before final electrode implantation on the basis of physiological and/or clinical observations. There was a significant association between an increased requirement for multiple brain passes and ventricular involvement in the trajectory (p < 0.01).
CONCLUSIONS: Planning an electrode trajectory that avoids the ventricles is a simple precaution that significantly improves the accuracy of anatomical targeting during electrode placement for deep brain stimulation. Avoidance of the ventricles appears to reduce the need for multiple passes through the brain to reach the desired target as defined by clinical and physiological observations.

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Mesh:

Year:  2009        PMID: 19301961     DOI: 10.3171/2008.12.JNS08885

Source DB:  PubMed          Journal:  J Neurosurg        ISSN: 0022-3085            Impact factor:   5.115


  23 in total

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5.  A multi-modal approach to computer-assisted deep brain stimulation trajectory planning.

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10.  Early Deformation of Deep Brain Stimulation Electrodes Following Surgical Implantation: Intracranial, Brain, and Electrode Mechanics.

Authors:  Frédéric Chapelle; Lucie Manciet; Bruno Pereira; Anna Sontheimer; Jérôme Coste; Youssef El Ouadih; Ruxandra Cimpeanu; Dimitri Gouot; Yuri Lapusta; Béatrice Claise; Valérie Sautou; Yassine Bouattour; Ana Marques; Adrien Wohrer; Jean-Jacques Lemaire
Journal:  Front Bioeng Biotechnol       Date:  2021-06-11
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