Aft Tristan, Oprisan Sorinel A, Buhusi Catalin V
Department of Physics and Astronomy, College of Charleston, United States.
Department of Psychology, Utah State University, United States.
J Theor Biol. 2021 May 7;516:110605. doi: 10.1016/j.jtbi.2021.110605. Epub 2021 Jan 26.
Time perception is fundamental for decision-making, adaptation, and survival. In the peak-interval (PI) paradigm, one of the critical features of time perception is its scale invariance, i.e., the error in time estimation increases linearly with the to-be-timed interval. Brain lesions can profoundly alter time perception, but do they also change its scalar property? In particular, hippocampus (HPC) lesions affect the memory of the reinforced durations. Experiments found that ventral hippocampus (vHPC) lesions shift the perceived durations to longer values while dorsal hippocampus (dHPC) lesions produce opposite effects. Here we used our implementation of the Striatal Beat Frequency (SBFML) model with biophysically realistic Morris-Lecar (ML) model neurons and a topological map of HPC memory to predict analytically and verify numerically the effect of HPC lesions on scalar property. We found that scalar property still holds after both vHPC and dHPC lesions in our SBFML-HPC network simulation. Our numerical results show that PI durations are shifted in the correct direction and match the experimental results. In our simulations, the relative peak shift of the behavioral response curve is controlled by two factors: (1) the lesion size, and (2) the cellular-level memory variance of the temporal durations stored in the HPC. The coefficient of variance (CV) of the behavioral response curve remained constant over the tested durations of PI procedure, which suggests that scalar property is not affected by HPC lesions.
时间感知对于决策、适应和生存至关重要。在峰值间隔(PI)范式中,时间感知的一个关键特征是其尺度不变性,即时间估计误差随待计时间隔线性增加。脑损伤可深刻改变时间感知,但它们是否也会改变其标量特性呢?特别是,海马体(HPC)损伤会影响强化持续时间的记忆。实验发现,腹侧海马体(vHPC)损伤会使感知到的持续时间向更长的值偏移,而背侧海马体(dHPC)损伤则产生相反的效果。在这里,我们使用了带有生物物理现实的莫里斯 - 勒卡尔(ML)模型神经元的纹状体节拍频率(SBFML)模型实现以及HPC记忆的拓扑图,来进行分析预测并通过数值验证HPC损伤对标量特性的影响。我们发现在我们的SBFML - HPC网络模拟中,vHPC和dHPC损伤后标量特性仍然成立。我们的数值结果表明,PI持续时间在正确的方向上发生了偏移,并且与实验结果相符。在我们的模拟中,行为反应曲线的相对峰值偏移由两个因素控制:(1)损伤大小,以及(2)存储在HPC中的时间持续时间的细胞水平记忆方差。在PI程序的测试持续时间内,行为反应曲线的变异系数(CV)保持恒定,这表明标量特性不受HPC损伤的影响。