High-Performance Bidirectional Microelectrode Array for Assessing Sevoflurane Anesthesia Effects and In Situ Electrical Stimulation in Deep Brain Regions.
Qianli JiaYiming DuanYaoyao LiuJuntao LiuJinping LuoYilin SongZhaojie XuKui ZhangJin ShanFan MoMixia WangYing WangXinxia CaiPublished in: ACS sensors (2024)
Precise assessment of wakefulness states during sevoflurane anesthesia and timely arousal are of paramount importance to refine the control of anesthesia. To tackle this issue, a bidirectional implantable microelectrode array (MEA) is designed with the capability to detect electrophysiological signal and perform in situ deep brain stimulation (DBS) within the dorsomedial hypothalamus (DMH) of mice. The MEA, modified with platinum nanoparticles/IrOx nanocomposites, exhibits exceptional characteristics, featuring low impedance, minimal phase delay, substantial charge storage capacity, high double-layer capacitance, and longer in vivo lifetime, thereby enhancing the sensitivity of spike firing detection and electrical stimulation (ES) effectiveness. Using this MEA, sevoflurane-inhibited neurons and sevoflurane-excited neurons, together with changes in the oscillation characteristics of the local field potential within the DMH, are revealed as indicative markers of arousal states. During the arousal period, varying-frequency ESs are applied to the DMH, eliciting distinct arousal effects. Through in situ detection and stimulation, the disparity between these outcomes can be attributed to the influence of DBS on different neurons. These advancements may further our understanding of neural circuits and their potential applications in clinical contexts.
Keyphrases
- deep brain stimulation
- parkinson disease
- obsessive compulsive disorder
- spinal cord
- spinal cord injury
- randomized controlled trial
- high resolution
- systematic review
- real time pcr
- type diabetes
- high throughput
- high frequency
- resting state
- magnetic resonance imaging
- human health
- functional connectivity
- skeletal muscle
- single cell
- weight loss
- computed tomography
- sensitive detection
- subarachnoid hemorrhage
- cerebral ischemia
- clinical evaluation