Jeakle Eleanor N, Abbott Justin R, Usoro Joshua O, Wu Yupeng, Haghighi Pegah, Radhakrishna Rahul, Sturgill Brandon S, Nakajima Shido, Thai Teresa T D, Pancrazio Joseph J, Cogan Stuart F, Hernandez-Reynoso Ana G
Department of Bioengineering, The University of Texas at Dallas, 800 W. Campbell Road, Richardson, TX 75080-3021, USA.
Department of Materials Science and Engineering, The University of Texas at Dallas, 800 W. Campbell Road, Richardson, TX 75080-3021, USA.
Micromachines (Basel). 2023 Mar 19;14(3):680. doi: 10.3390/mi14030680.
Implantable microelectrode arrays (MEAs) enable the recording of electrical activity of cortical neurons, allowing the development of brain-machine interfaces. However, MEAs show reduced recording capabilities under chronic conditions, prompting the development of novel MEAs that can improve long-term performance. Conventional planar, silicon-based devices and ultra-thin amorphous silicon carbide (a-SiC) MEAs were implanted in the motor cortex of female Sprague-Dawley rats, and weekly anesthetized recordings were made for 16 weeks after implantation. The spectral density and bandpower between 1 and 500 Hz of recordings were compared over the implantation period for both device types. Initially, the bandpower of the a-SiC devices and standard MEAs was comparable. However, the standard MEAs showed a consistent decline in both bandpower and power spectral density throughout the 16 weeks post-implantation, whereas the a-SiC MEAs showed substantially more stable performance. These differences in bandpower and spectral density between standard and a-SiC MEAs were statistically significant from week 6 post-implantation until the end of the study at 16 weeks. These results support the use of ultra-thin a-SiC MEAs to develop chronic, reliable brain-machine interfaces.
可植入微电极阵列(MEA)能够记录皮层神经元的电活动,有助于脑机接口的开发。然而,MEA在慢性条件下的记录能力会下降,这促使人们开发能够改善长期性能的新型MEA。将传统的平面硅基设备和超薄非晶碳化硅(a-SiC)MEA植入雌性Sprague-Dawley大鼠的运动皮层,并在植入后16周每周进行一次麻醉记录。在植入期内,比较了两种设备类型记录的1至500Hz之间的频谱密度和频段功率。最初,a-SiC设备和标准MEA的频段功率相当。然而,标准MEA在植入后的16周内,频段功率和功率谱密度均持续下降,而a-SiC MEA表现出明显更稳定的性能。从植入后第6周直到16周研究结束,标准MEA和a-SiC MEA在频段功率和频谱密度上的这些差异具有统计学意义。这些结果支持使用超薄a-SiC MEA来开发长期、可靠的脑机接口。