约束诱导干预是生物系统中突触竞争的一种新兴现象。

IF 1.5 4区 医学 Q3 MATHEMATICAL & COMPUTATIONAL BIOLOGY
Journal of Computational Neuroscience Pub Date : 2021-05-01 Epub Date: 2021-04-06 DOI:10.1007/s10827-021-00782-9
Won J Sohn, Terence D Sanger
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引用次数: 2

摘要

约束诱导疗法的原理在康复治疗中被广泛应用。在单侧损伤导致对侧皮质脊髓投射受损的偏瘫性脑瘫(CP)中,从受影响较小的半球对肢体施加暂时约束后,功能得到改善。这种由早期脑损伤引起的运动控制的部分可逆损伤与视觉皮层中经验依赖的可塑性获取和神经元反应选择性的修改相似。以前,这种机制是在BCM (Bienenstock-Cooper-Munro)理论框架内建模的,这是一种基于速率的突触修饰理论。在这里,我们展示了一个最小复杂但足够的神经网络模型,该模型使用简化的基于信息传递和可塑性的尖峰模型为半球间竞争提供了基本解释。我们通过模拟同侧和对侧皮质脊髓束细胞之间的竞争来模拟偏瘫CP的功能恢复。我们使用高速硬件神经模拟来提供真实的峰值数量和真实的突触修饰幅度。我们证明约束诱导的偏瘫部分逆转现象可以通过简化的神经降束与2层尖峰神经元和具有尖峰时间依赖可塑性(STDP)的突触来模拟。我们进一步证明,基于stdp的模型可以预测单侧皮质失活或剥夺后的持续性偏瘫,但与BCM模型不一致。虽然我们的模型是皮质脊髓系统的高度简化和有限的表示,但它提供了约束作为干预如何帮助系统摆脱次优解决方案的解释。这是突触竞争中出现的一种现象。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Constraint-induced intervention as an emergent phenomenon from synaptic competition in biological systems.

Constraint-induced intervention as an emergent phenomenon from synaptic competition in biological systems.

Constraint-induced intervention as an emergent phenomenon from synaptic competition in biological systems.

Constraint-induced intervention as an emergent phenomenon from synaptic competition in biological systems.

The principle of constraint-induced therapy is widely practiced in rehabilitation. In hemiplegic cerebral palsy (CP) with impaired contralateral corticospinal projection due to unilateral injury, function improves after imposing a temporary constraint on limbs from the less affected hemisphere. This type of partially-reversible impairment in motor control by early brain injury bears a resemblance to the experience-dependent plastic acquisition and modification of neuronal response selectivity in the visual cortex. Previously, such mechanism was modeled within the framework of BCM (Bienenstock-Cooper-Munro) theory, a rate-based synaptic modification theory. Here, we demonstrate a minimally complex yet sufficient neural network model which provides a fundamental explanation for inter-hemispheric competition using a simplified spike-based model of information transmission and plasticity. We emulate the restoration of function in hemiplegic CP by simulating the competition between cells of the ipsilateral and contralateral corticospinal tracts. We use a high-speed hardware neural simulation to provide realistic numbers of spikes and realistic magnitudes of synaptic modification. We demonstrate that the phenomenon of constraint-induced partial reversal of hemiplegia can be modeled by simplified neural descending tracts with 2 layers of spiking neurons and synapses with spike-timing-dependent plasticity (STDP). We further demonstrate that persistent hemiplegia following unilateral cortical inactivation or deprivation is predicted by the STDP-based model but is inconsistent with BCM model. Although our model is a highly simplified and limited representation of the corticospinal system, it offers an explanation of how constraint as an intervention can help the system to escape from a suboptimal solution. This is a display of an emergent phenomenon from the synaptic competition.

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来源期刊
CiteScore
2.00
自引率
8.30%
发文量
32
审稿时长
3 months
期刊介绍: The Journal of Computational Neuroscience provides a forum for papers that fit the interface between computational and experimental work in the neurosciences. The Journal of Computational Neuroscience publishes full length original papers, rapid communications and review articles describing theoretical and experimental work relevant to computations in the brain and nervous system. Papers that combine theoretical and experimental work are especially encouraged. Primarily theoretical papers should deal with issues of obvious relevance to biological nervous systems. Experimental papers should have implications for the computational function of the nervous system, and may report results using any of a variety of approaches including anatomy, electrophysiology, biophysics, imaging, and molecular biology. Papers investigating the physiological mechanisms underlying pathologies of the nervous system, or papers that report novel technologies of interest to researchers in computational neuroscience, including advances in neural data analysis methods yielding insights into the function of the nervous system, are also welcomed (in this case, methodological papers should include an application of the new method, exemplifying the insights that it yields).It is anticipated that all levels of analysis from cognitive to cellular will be represented in the Journal of Computational Neuroscience.
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