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X 射线标记物在薄膜植入物中的应用

X-Ray Markers for Thin Film Implants.

机构信息

Electrical Engineering Division, Department of Engineering, University of Cambridge, Cambridge, CB3 0FA, UK.

Department of Veterinary Medicine, University of Cambridge, Cambridge, CB3 0ES, UK.

出版信息

Adv Healthc Mater. 2022 Sep;11(18):e2200739. doi: 10.1002/adhm.202200739. Epub 2022 Aug 7.

Abstract

Implantable electronic medical devices are used in functional mapping of the brain before surgery and to deliver neuromodulation for the treatment of neurological and neuropsychiatric disorders. Their electrode arrays are assembled by hand, and this leads to bulky form factors with limited flexibility and low electrode counts. Thin film implants, made using microfabrication techniques, are emerging as an attractive alternative, as they offer dramatically improved conformability and enable high density recording and stimulation. A major limitation of these devices, however, is that they are invisible to fluoroscopy, the most common method used to monitor the insertion of implantable electrodes. Here, the development of mechanically flexible X-ray markers using bismuth- and barium-infused elastomers is reported. Their X-ray attenuation properties in human cadavers are explored and it is shown that they are biocompatible in cell cultures. It is further shown that they do not distort magnetic resonance imaging images and their integration with thin film implants is demonstrated. This work removes a key barrier for the adoption of thin film implants in brain mapping and in neuromodulation.

摘要

可植入式电子医疗设备用于手术前的大脑功能映射,并通过神经调节来治疗神经和神经精神疾病。它们的电极阵列是手工组装的,这导致其具有庞大的外形尺寸、有限的灵活性和低电极数量。使用微制造技术制造的薄膜植入物作为一种有吸引力的替代方案正在出现,因为它们提供了显著提高的适应性,并能够实现高密度的记录和刺激。然而,这些设备的一个主要限制是它们在透视术中不可见,透视术是最常用于监测植入式电极插入的常用方法。在这里,报告了使用铋和钡注入弹性体的机械灵活的 X 射线标记物的开发。在人体尸体中探索了它们的 X 射线衰减特性,并表明它们在细胞培养中是生物相容的。进一步表明,它们不会扭曲磁共振成像图像,并展示了它们与薄膜植入物的集成。这项工作消除了在大脑映射和神经调节中采用薄膜植入物的一个关键障碍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4a4/11468128/33f6376ff9e8/ADHM-11-2200739-g002.jpg

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