Literature DB >> 36094763

Evaluation of Deep Brain Stimulation (DBS) Lead Biomechanical Interaction with Brain Tissue.

Logan E Miller1,2, Jillian E Urban3,4, Vincent M Whelan5, Walt W Baxter5, Stephen B Tatter6, Sidish S Venkataraman6, Chesney S Oravec3, Joel D Stitzel3,4.   

Abstract

The current study aims to examine the effect of material properties on implanted leads used for deep brain stimulation (DBS) using finite element (FE) analysis to investigate brain deformation around an implanted DBS lead in response to daily head accelerations. FE analysis was used to characterize the relative motion of the DBS lead in a suite of fifteen cases sampled from a previously derived kinematic envelope representative of everyday activities describing translational and rotational pulse shape, magnitude, and duration. Load curves were applied to the atlas-based brain model (ABM) with a scaled Haversine acceleration pulse in four directions of rotation: + X, - Y, + Y, and + Z. In addition to the fifteen sampled cases, six experimental cases taken from a previous literature review were also simulated for comparison. The current investigation found that there was very little difference in brain response for the DBS leads with two different material properties. In general, the brain and DBS lead experienced the greatest deformation during rotation about the Z axis for similar load cases. In conclusion, this study showed that there was no significant difference in implanted DBS lead deformation based on lead material properties.
© 2022. The Author(s) under exclusive licence to Biomedical Engineering Society.

Entities:  

Keywords:  Daily head accelerations; Deep brain stimulation (DBS); Finite element model; Kinematics

Year:  2022        PMID: 36094763     DOI: 10.1007/s10439-022-03044-6

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   4.219


  2 in total

1.  An envelope of linear and rotational head motion during everyday activities.

Authors:  Logan E Miller; Jillian E Urban; Vincent M Whelan; Walt W Baxter; Stephen B Tatter; Joel D Stitzel
Journal:  Biomech Model Mechanobiol       Date:  2019-11-30

2.  Investigation of Head Injury Mechanisms Using Neutral Density Technology and High-Speed Biplanar X-ray.

Authors:  W N Hardy; C D Foster; M J Mason; K H Yang; A I King; S Tashman
Journal:  Stapp Car Crash J       Date:  2001-11
  2 in total

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