Kuykendal Michelle L, DeWeerth Stephen P, Grover Martha A
School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, GA 30332, USA.
Processes (Basel). 2017 Dec;5(4). doi: 10.3390/pr5040081. Epub 2017 Dec 11.
Differential activation of neuronal populations can improve the efficacy of clinical devices such as sensory or cortical prostheses. Improving stimulus specificity will facilitate targeted neuronal activation to convey biologically realistic percepts. In order to deliver more complex stimuli to a neuronal population, stimulus optimization techniques must be developed that will enable a single electrode to activate subpopulations of neurons. However, determining the stimulus needed to evoke targeted neuronal activity is challenging. To find the most selective waveform for a particular population, we apply an optimization-based search routine, Powell's conjugate direction method, to systematically search the stimulus waveform space. This routine utilizes a 1-D sigmoid activation model and a 2-D strength-duration curve to measure neuronal activation throughout the stimulus waveform space. We implement our search routine in both an experimental study and a simulation study to characterize potential stimulus-evoked populations and the associated selective stimulus waveform spaces. We found that for a population of five neurons, seven distinct sub-populations could be activated. The stimulus waveform space and evoked neuronal activation curves vary with each new combination of neuronal culture and electrode array, resulting in a unique selectivity space. The method presented here can be used to efficiently uncover the selectivity space, focusing experiments in regions with the desired activation pattern.
神经元群体的差异性激活可以提高诸如感觉或皮层假体等临床设备的功效。提高刺激特异性将有助于实现有针对性的神经元激活,以传递生物学上逼真的感知。为了向神经元群体传递更复杂的刺激,必须开发刺激优化技术,使单个电极能够激活神经元亚群。然而,确定诱发目标神经元活动所需的刺激具有挑战性。为了找到针对特定群体的最具选择性的波形,我们应用基于优化的搜索程序——鲍威尔共轭方向法,系统地搜索刺激波形空间。该程序利用一维S型激活模型和二维强度-持续时间曲线来测量整个刺激波形空间中的神经元激活。我们在实验研究和模拟研究中都实施了我们的搜索程序,以表征潜在的刺激诱发群体和相关的选择性刺激波形空间。我们发现,对于由五个神经元组成的群体,可以激活七个不同的亚群。刺激波形空间和诱发的神经元激活曲线会随着神经元培养和电极阵列的每一种新组合而变化,从而产生独特的选择性空间。这里介绍的方法可用于有效地揭示选择性空间,将实验聚焦于具有所需激活模式的区域。