Hira Riichiro
Tokyo Medical and Dental University, Graduate School of Medical and Dental Sciences, Department of Physiology and Cell Biology, Tokyo, Japan.
Neurophotonics. 2024 Jul;11(3):033405. doi: 10.1117/1.NPh.11.3.033405. Epub 2024 Feb 19.
In the field of neuroscience, the importance of constructing closed-loop experimental systems has increased in conjunction with technological advances in measuring and controlling neural activity in live animals. We provide an overview of recent technological advances in the field, focusing on closed-loop experimental systems where multiphoton microscopy-the only method capable of recording and controlling targeted population activity of neurons at a single-cell resolution -works through real-time feedback. Specifically, we present some examples of brain machine interfaces (BMIs) using two-photon calcium imaging and discuss applications of two-photon optogenetic stimulation and adaptive optics to real-time BMIs. We also consider conditions for realizing future optical BMIs at the synaptic level, and their possible roles in understanding the computational principles of the brain.
在神经科学领域,随着活体动物神经活动测量与控制技术的进步,构建闭环实验系统的重要性日益凸显。我们概述了该领域的最新技术进展,重点关注闭环实验系统,在这种系统中,多光子显微镜——唯一能够以单细胞分辨率记录和控制神经元目标群体活动的方法——通过实时反馈发挥作用。具体而言,我们展示了一些使用双光子钙成像的脑机接口(BMI)实例,并讨论了双光子光遗传学刺激和自适应光学在实时BMI中的应用。我们还考虑了在突触水平实现未来光学BMI的条件,以及它们在理解大脑计算原理方面可能发挥的作用。