Shape-changing electrode array for minimally invasive large-scale intracranial brain activity mapping.
Shiyuan WeiAnqi JiangHongji SunJingjun ZhuShengyi JiaXiaojun LiuZheng XuJing ZhangYuanyuan ShangXuefeng FuGen LiPuxin WangZhiyuan XiaTianzi JiangAnyuan CaoXiaojie DuanPublished in: Nature communications (2024)
Large-scale brain activity mapping is important for understanding the neural basis of behaviour. Electrocorticograms (ECoGs) have high spatiotemporal resolution, bandwidth, and signal quality. However, the invasiveness and surgical risks of electrode array implantation limit its application scope. We developed an ultrathin, flexible shape-changing electrode array (SCEA) for large-scale ECoG mapping with minimal invasiveness. SCEAs were inserted into cortical surfaces in compressed states through small openings in the skull or dura and fully expanded to cover large cortical areas. MRI and histological studies on rats proved the minimal invasiveness of the implantation process and the high chronic biocompatibility of the SCEAs. High-quality micro-ECoG activities mapped with SCEAs from male rodent brains during seizures and canine brains during the emergence period revealed the spatiotemporal organization of different brain states with resolution and bandwidth that cannot be achieved using existing noninvasive techniques. The biocompatibility and ability to map large-scale physiological and pathological cortical activities with high spatiotemporal resolution, bandwidth, and signal quality in a minimally invasive manner offer SCEAs as a superior tool for applications ranging from fundamental brain research to brain-machine interfaces.
Keyphrases
- high resolution
- high density
- minimally invasive
- resting state
- white matter
- high throughput
- single molecule
- functional connectivity
- magnetic resonance imaging
- carbon nanotubes
- cerebral ischemia
- computed tomography
- quality improvement
- multiple sclerosis
- escherichia coli
- mass spectrometry
- machine learning
- staphylococcus aureus
- robot assisted
- blood brain barrier