Towards clinical application of implantable brain–computer interfaces for people with late-stage ALS: medical and ethical considerations

被引:0
作者
Mariska J. Vansteensel
Eran Klein
Ghislaine van Thiel
Michael Gaytant
Zachary Simmons
Jonathan R. Wolpaw
Theresa M. Vaughan
机构
[1] UMC Utrecht Brain Center,Department of Neurology and Neurosurgery
[2] University Medical Center Utrecht,Department of Neurology
[3] Oregon Health and Science University,Department of Philosophy
[4] University of Washington,Julius Center for Health Sciences and Primary Care, Department Medical Humanities
[5] University Medical Center Utrecht,Department of Pulmonary Diseases/Home Mechanical Ventilation
[6] University Medical Center Utrecht,Department of Neurology
[7] Pennsylvania State University,National Center for Adaptive Neurotechnologies, Albany Stratton VA Medical Center, Department of Biomedical Sciences
[8] State University of New York,undefined
[9] National Center for Adaptive Neurotechnologies,undefined
[10] Albany Stratton VA Medical Center,undefined
来源
Journal of Neurology | 2023年 / 270卷
关键词
Brain–computer interface; Implant; Amyotrophic lateral sclerosis; Ethics; Clinical application; Tracheostomy invasive ventilation;
D O I
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学科分类号
摘要
Individuals with amyotrophic lateral sclerosis (ALS) frequently develop speech and communication problems in the course of their disease. Currently available augmentative and alternative communication technologies do not present a solution for many people with advanced ALS, because these devices depend on residual and reliable motor activity. Brain–computer interfaces (BCIs) use neural signals for computer control and may allow people with late-stage ALS to communicate even when conventional technology falls short. Recent years have witnessed fast progression in the development and validation of implanted BCIs, which place neural signal recording electrodes in or on the cortex. Eventual widespread clinical application of implanted BCIs as an assistive communication technology for people with ALS will have significant consequences for their daily life, as well as for the clinical management of the disease, among others because of the potential interaction between the BCI and other procedures people with ALS undergo, such as tracheostomy. This article aims to facilitate responsible real-world implementation of implanted BCIs. We review the state of the art of research on implanted BCIs for communication, as well as the medical and ethical implications of the clinical application of this technology. We conclude that the contribution of all BCI stakeholders, including clinicians of the various ALS-related disciplines, will be needed to develop procedures for, and shape the process of, the responsible clinical application of implanted BCIs.
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页码:1323 / 1336
页数:13
相关论文
共 460 条
[91]  
Neuwirth C(2014)Reliability of directional information in unsorted spikes and local field potentials recorded in human motor cortex J Neural Eng 221 326-1182
[92]  
Sommacal A(2013)Intra-day signal instabilities affect decoding performance in an intracortical neural interface system J Neural Eng 147 353-128
[93]  
Westeneng H-J(2016)Retrospectively supervised click decoder calibration for self-calibrating point-and-click brain-computer interfaces J Physiol Paris 10 1715-117
[94]  
Debray TPA(2021)Long-term intracortical microelectrode array performance in a human: a 5 year retrospective analysis J Neural Eng 85 217-1114
[95]  
Visser AE(2012)Reach and grasp by people with tetraplegia using a neurally controlled robotic arm Nature 12 1798-885
[96]  
Bourke SC(2011)Neural control of cursor trajectory and click by a human with tetraplegia 1000 days after implant of an intracortical microelectrode array J Neural Eng 59 320-412
[97]  
Tomlinson M(2004)A brain-computer interface using electrocorticographic signals in humans J Neural Eng 568 353-109
[98]  
Williams TL(2010)Brain-computer interfacing based on cognitive control Ann Neurol 7 453-279
[99]  
Annane D(2011)Rapid communication with a “P300” matrix speller using electrocorticographic signals (ECoG) Front Neurosci 10 1170-149
[100]  
Orlikowski D(2011)Control of a visual keyboard using an electrocorticographic brain-computer interface Neurorehabil Neural Repair 11 115-578