Maioli C
Istituto di Fisiologia dei Centri Nervosi-C.N.R., Milano, Italy.
J Neurosci. 1988 Mar;8(3):821-32. doi: 10.1523/JNEUROSCI.08-03-00821.1988.
To account for the oscillatory behavior of the optokinetic after-nystagmus (OKAN), a nonlinear model of the optokinetic system is proposed here that includes 2 first-order storage elements interconnected in a negative feedback loop. The adequacy of the model is tested by comparing its predictions with experimental data available in the literature. In addition, the question of the contribution of the storage element responsible for secondary OKAN (OKAN II) to the dynamic properties of the optokinetic nystagmus (OKN) is addressed. The results show that the model is compatible with all modifications of the OKAN time course observed under various experimental situations. By comparing computer simulations and experimental data, it is inferred that (1) the dynamic properties of the optokinetic system during OKN and during OKAN are different; (2) the switching in velocity storage dynamics is not determined by the light-dark transition, but is induced whenever nystagmic slow phase velocity (SPV) is not sustained by an appropriate retinal slip error signal; (3) although no signs of adaptation are seen during OKN, the storage element responsible for OKAN II becomes charged during optokinetic stimulation; and (4) the time constants of the integrators are affected by the parameters of the preceding optokinetic stimulation.
为了解释视动性眼震后眼震(OKAN)的振荡行为,本文提出了一种视动系统的非线性模型,该模型包括两个在负反馈回路中相互连接的一阶存储元件。通过将模型的预测结果与文献中的实验数据进行比较,来检验模型的适用性。此外,还探讨了负责继发性OKAN(OKAN II)的存储元件对视动性眼震(OKN)动态特性的贡献问题。结果表明,该模型与在各种实验情况下观察到的OKAN时间进程的所有变化都兼容。通过比较计算机模拟和实验数据,可以推断出:(1)OKN期间和OKAN期间视动系统的动态特性不同;(2)速度存储动力学的切换不是由明暗转换决定的,而是在眼球震颤慢相速度(SPV)没有由适当的视网膜滑动误差信号维持时诱发的;(3)虽然在OKN期间没有适应的迹象,但负责OKAN II的存储元件在视动刺激期间会充电;(4)积分器的时间常数受先前视动刺激参数的影响。