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Biological Considerations of Optical Interfaces for Neuromodulation

机译:光学接口对神经调节的生物学考虑

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The success of devices such as cochlear implants and pacemakers has led to increasing interest in new applications of artificial neural interfaces, ranging from brain-computer interfaces to vagus nerve stimulators. Both the established and emerging applications of neural interfaces have highlighted the need for improvements in spatial selectivity and reduced invasiveness, which in turn has driven growing interest in optical interfaces. The delivery of light to-and collection of light from-neural tissue presents distinct challenges for optical devices. This review presents the status of optical interface technologies with a focus on biological considerations, such as biocompatibility, thermal loading, and tissue response. Attention is also paid to factors affecting the portability of optical interfaces, and issues around reliability and manufacturing that need to be considered for successful translation. Indeed, it is imperative that engineers work closely with physiologists, clinicians, and patients when developing devices for research and the clinic. Finally, emerging trends and the potential for new technologies to disrupt the field are discussed. While many engineering challenges remain to be overcome, the achievements to date suggest that optical neuromodulation techniques have significant potential to be deployed in future for a wide range of practical therapeutic applications.
机译:诸如人工耳蜗和起搏器之类的设备的成功,导致人们对人工神经接口的新应用越来越感兴趣,这些新应用包括从脑机接口到迷走神经刺激器。神经接口的既定应用和新兴应用都突显了对提高空间选择性和降低侵入性的需求,这反过来又引起了人们对光学接口的日益增长的兴趣。光向神经组织的传递和光从神经组织的聚集对光学设备提出了明显的挑战。这篇综述介绍了光接口技术的现状,重点是生物学方面的考虑,例如生物相容性,热负荷和组织反应。还应注意影响光接口可移植性的因素,以及成功转换需要考虑的可靠性和制造方面的问题。实际上,当开发用于研究和临床的设备时,工程师必须与生理学家,临床医生和患者密切合作。最后,讨论了新兴趋势和新技术破坏该领域的潜力。尽管仍有许多工程方面的挑战有待克服,但迄今为止的成就表明,光学神经调节技术在未来广泛应用于实际治疗应用中具有巨大的潜力。

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