狨猴初级视觉皮层损伤后外侧膝状核的快速变性和神经化学可塑性。

Gaoyuan Ma, Jonathan M. Chan, Katrina H. Worthy, Marcello G.P. Rosa, Nafiseh Atapour
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引用次数: 0

摘要

初级视觉皮层(V1)的病变导致神经逆行变性、体积损失和外侧膝状核(LGN)的神经化学变化。在这里,我们描述了成年狨猴在单侧V1病变后的不同恢复时间后这些过程的时间轴。从恢复时间较短(2,3或14天)的动物身上获得的neun染色切片观察显示,病变同侧LGN的体积和神经元密度与对侧半球相似。然而,此后LGN病变投射区神经元密度迅速下降,约50%的人群在病变后一个月内消失。这种水平的神经元损失在病变后三年多保持稳定。相比之下,LGN体积的缩小进展更为缓慢,直到病变后6个月才达到稳定值。我们还测定了钙结合蛋白calbindin (CB)在大细胞(M)和细细胞(P)层神经元中的表达时间过程,这是一种神经化学可塑性的形式,以前报道过由V1病变触发。我们发现,早在病变后两周,存活的M和P神经元中就可以检测到CB表达,并且在6个月的时间里,呈现这种神经化学表型的神经元的比例逐渐增加。因此,神经化学变化先于神经元退化,这表明它可能与一种保护机制有关。这项研究强调了任何可能的干预措施的有限时间窗口,旨在减少视觉传入通路中V1损伤后的继发性神经元损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rapid degeneration and neurochemical plasticity of the lateral geniculate nucleus following lesions of the primary visual cortex in marmoset monkeys

Rapid degeneration and neurochemical plasticity of the lateral geniculate nucleus following lesions of the primary visual cortex in marmoset monkeys
Lesions of the primary visual cortex (V1) cause retrograde neuronal degeneration, volume loss and neurochemical changes in the lateral geniculate nucleus (LGN). Here we characterised the timeline of these processes in adult marmoset monkeys, after various recovery times following unilateral V1 lesions. Observations in NeuN-stained sections obtained from animals with short recovery times (2, 3 or 14 days) showed that the volume and neuronal density in the LGN ipsilateral to the lesions were similar to those in the contralateral hemispheres. However, neuronal density in the lesion projection zone of LGN dropped rapidly thereafter, with approximately 50% of the population lost within a month post-lesion. This level of neuronal loss remained stable for over three years post-lesion. In comparison, shrinkage of the LGN volume progressed more gradually, not reaching a stable value until 6 months post lesion. We also determined the time course of the expression of the calcium-binding protein calbindin (CB) in magnocellular (M) and parvocellular (P) layer neurons, a form of neurochemical plasticity previously reported to be triggered by V1 lesions. We found that CB expression could be detected in surviving M and P neurons as early as two weeks after lesion, with the percentage of neurons showing this neurochemical phenotype gradually increasing over 6 months. Thus, neurochemical change precedes neuronal degeneration, suggesting it may be linked to a protective mechanism. This study highlights the limited time window for any possible interventions aimed at reducing secondary neuronal loss in the visual afferent pathways following damage to V1.
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