Parashar Madhur, Saha Kasturi, Bandyopadhyay Sharba
School of Medical Science and Technology, Indian Institute of Technology Kharagpur, Kharagpur, West Bengal 721302, India.
Department of Electrical Engineering, Indian Institute of Technology Bombay, Powai, Mumbai, Maharashtra 400076, India.
Commun Phys. 2020 Oct 2;3:174. doi: 10.1038/s42005-020-00439-6. eCollection 2020.
Sensing neuronal action potential associated magnetic fields (APMFs) is an emerging viable alternative of functional brain mapping. Measurement of APMFs of large axons of worms have been possible due to their size. In the mammalian brain, axon sizes, their numbers and routes, restricts using such functional imaging methods. With a segmented model of mammalian pyramidal neurons, we show that the APMF of intra-axonal currents in the axon hillock are two orders of magnitude larger than other neuronal locations. Expected 2D magnetic field maps of naturalistic spiking activity of a volume of neurons via widefield diamond-nitrogen-vacancy-center-magnetometry were simulated. A dictionary-based matching pursuit type algorithm applied to the data using the axon-hillock's APMF signature allowed spatiotemporal reconstruction of action potentials in the volume of brain tissue at single cell resolution. Enhancement of APMF signals coupled with magnetometry advances thus can potentially replace current functional brain mapping techniques.
感知与神经元动作电位相关的磁场(APMFs)是一种新兴的、可行的脑功能图谱替代方法。由于蠕虫大轴突的尺寸,对其APMFs进行测量成为可能。在哺乳动物大脑中,轴突的大小、数量和路径限制了此类功能成像方法的使用。通过哺乳动物锥体神经元的分段模型,我们表明轴丘内轴突电流的APMF比其他神经元位置大两个数量级。通过宽场金刚石-氮-空位中心磁力测量法模拟了大量神经元自然放电活动的预期二维磁场图。使用基于轴丘APMF特征的数据应用基于字典的匹配追踪类型算法,可以在单细胞分辨率下对脑组织体积中的动作电位进行时空重建。因此,APMF信号增强与磁力测量技术进步相结合,有可能取代当前的脑功能图谱技术。