Forni Matilde, Thorbergsson Palmi Thor, Thelin Jonas, Schouenborg Jens
Neuronano Research Center, Department of Experimental Medical Sciences, Medical Faculty, Lund University, Medicon Village, Scheelevägen 2, Lund, 223 81, Sweden.
NanoLund, Center for Nanoscience, Lund University, Professorsgatan 1, Lund 223 63, Sweden.
Sci Adv. 2021 Oct 8;7(41):eabj2847. doi: 10.1126/sciadv.abj2847.
The lack of satisfactory treatment for persistent pain profoundly impairs the quality of life for many patients. Stimulation of brainstem pain control systems can trigger powerful analgesia, but their complex network organization frequently prevents separation of analgesia from side effects. To overcome this long-standing challenge, we developed a biocompatible gelatin-embedded cluster of ultrathin microelectrodes that enables fine-tuned, high-definition three-dimensional stimulation in periaqueductal gray/dorsal raphe nucleus in awake rats. Analgesia was assessed from both motor reactions and intracortical signals, corresponding to pain-related signals in humans. We could select an individual-specific subset of microelectrodes in each animal that reliably provided strong pain inhibition during normal and hyperalgesia conditions, without noticeable behavioral side effects. Gait, spontaneous cortical activity at rest, and cortical tactile responses were minimally affected, indicating a highly selective action. In conclusion, our developed biocompatible microelectrode cluster and stimulation paradigm reliably enabled powerful, fine-tuned, and selective analgesia without noticeable side effects.
对持续性疼痛缺乏令人满意的治疗方法,这严重损害了许多患者的生活质量。刺激脑干疼痛控制系统可引发强效镇痛,但它们复杂的网络结构常常使镇痛作用与副作用难以区分。为了克服这一长期存在的挑战,我们开发了一种生物相容性的、嵌入明胶的超薄微电极簇,它能够在清醒大鼠的导水管周围灰质/中缝背核中进行精细调节的高清三维刺激。通过运动反应和皮层内信号评估镇痛效果,这些信号与人类的疼痛相关信号相对应。我们可以在每只动物中选择一个个体特异性的微电极子集,该子集在正常和痛觉过敏条件下都能可靠地提供强烈的疼痛抑制,且没有明显的行为副作用。步态、静息时的自发皮层活动和皮层触觉反应受到的影响最小,表明其具有高度选择性作用。总之,我们开发的生物相容性微电极簇和刺激模式能够可靠地实现强效、精细调节和选择性镇痛,且没有明显副作用。