具有空间依赖性突触连接的可塑性神经网络的协同重置刺激
Coordinated reset stimulation of plastic neural networks with spatially dependent synaptic connections.
作者信息
Kromer Justus A, Tass Peter A
机构信息
Department of Neurosurgery, Stanford University, Stanford, CA, United States.
出版信息
Front Netw Physiol. 2024 May 28;4:1351815. doi: 10.3389/fnetp.2024.1351815. eCollection 2024.
BACKGROUND
Abnormal neuronal synchrony is associated with several neurological disorders, including Parkinson's disease (PD), essential tremor, dystonia, and epilepsy. Coordinated reset (CR) stimulation was developed computationally to counteract abnormal neuronal synchrony. During CR stimulation, phase-shifted stimuli are delivered to multiple stimulation sites. Computational studies in plastic neural networks reported that CR stimulation drove the networks into an attractor of a stable desynchronized state by down-regulating synaptic connections, which led to long-lasting desynchronization effects that outlasted stimulation. Later, corresponding long-lasting desynchronization and therapeutic effects were found in animal models of PD and PD patients. To date, it is unclear how spatially dependent synaptic connections, as typically observed in the brain, shape CR-induced synaptic downregulation and long-lasting effects.
METHODS
We performed numerical simulations of networks of leaky integrate-and-fire neurons with spike-timing-dependent plasticity and spatially dependent synaptic connections to study and further improve acute and long-term responses to CR stimulation.
RESULTS
The characteristic length scale of synaptic connections relative to the distance between stimulation sites plays a key role in CR parameter adjustment. In networks with short synaptic length scales, a substantial synaptic downregulation can be achieved by selecting appropriate stimulus-related parameters, such as the stimulus amplitude and shape, regardless of the employed spatiotemporal pattern of stimulus deliveries. Complex stimulus shapes can induce local connectivity patterns in the vicinity of the stimulation sites. In contrast, in networks with longer synaptic length scales, the spatiotemporal sequence of stimulus deliveries is of major importance for synaptic downregulation. In particular, rapid shuffling of the stimulus sequence is advantageous for synaptic downregulation.
CONCLUSION
Our results suggest that CR stimulation parameters can be adjusted to synaptic connectivity to further improve the long-lasting effects. Furthermore, shuffling of CR sequences is advantageous for long-lasting desynchronization effects. Our work provides important hypotheses on CR parameter selection for future preclinical and clinical studies.
背景
异常神经元同步与多种神经系统疾病相关,包括帕金森病(PD)、特发性震颤、肌张力障碍和癫痫。协同重置(CR)刺激是通过计算开发的,以对抗异常神经元同步。在CR刺激期间,相移刺激被传递到多个刺激部位。对可塑性神经网络的计算研究报告称,CR刺激通过下调突触连接将网络驱动到稳定去同步状态的吸引子,从而导致比刺激持续时间更长的持久去同步效应。后来,在PD动物模型和PD患者中发现了相应的持久去同步和治疗效果。迄今为止,尚不清楚大脑中典型观察到的空间依赖性突触连接如何塑造CR诱导的突触下调和持久效应。
方法
我们对具有脉冲时间依赖性可塑性和空间依赖性突触连接的泄漏积分发放神经元网络进行了数值模拟,以研究并进一步改善对CR刺激的急性和长期反应。
结果
突触连接的特征长度尺度相对于刺激部位之间的距离在CR参数调整中起关键作用。在突触长度尺度较短的网络中,通过选择适当的刺激相关参数,如刺激幅度和形状,无论采用何种时空刺激发放模式,都可以实现显著的突触下调。复杂的刺激形状可以在刺激部位附近诱导局部连接模式。相比之下,在突触长度尺度较长的网络中,刺激发放的时空序列对突触下调至关重要。特别是,刺激序列的快速重排有利于突触下调。
结论
我们的结果表明,可以根据突触连接性调整CR刺激参数,以进一步改善持久效应。此外,CR序列的重排有利于持久的去同步效应。我们的工作为未来临床前和临床研究的CR参数选择提供了重要假设。
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