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大鼠早期和晚期前肢截肢会阻碍胼胝体轴突的髓鞘形成。

Myelination of Callosal Axons Is Hampered by Early and Late Forelimb Amputation in Rats.

作者信息

Vianna-Barbosa Rodrigo, Bahia Carlomagno P, Sanabio Alexandre, de Freitas Gabriella P A, Madeiro da Costa Rodrigo F, Garcez Patricia P, Miranda Kildare, Lent Roberto, Tovar-Moll Fernanda

机构信息

Post-Graduate Program in Morphological Sciences, Institute of Biomedical Sciences, Federal University of Rio de Janeiro, Rio de Janeiro CEP 21941-902, Brazil.

National Center of Structural Biology and Bioimaging, Federal University of Rio de Janeiro, Rio de Janeiro CEP 21941-902, Brazil.

出版信息

Cereb Cortex Commun. 2020 Nov 27;2(1):tgaa090. doi: 10.1093/texcom/tgaa090. eCollection 2021.

Abstract

Deafferentation is an important determinant of plastic changes in the CNS, which consists of a loss of inputs from the body periphery or from the CNS itself. Although cortical reorganization has been well documented, white matter plasticity was less explored. Our goal was to investigate microstructural interhemispheric connectivity changes in early and late amputated rats. For that purpose, we employed diffusion-weighted magnetic resonance imaging, as well as Western blotting, immunohistochemistry, and electron microscopy of sections of the white matter tracts to analyze the microstructural changes in the corticospinal tract and in the corpus callosum (CC) sector that contains somatosensory fibers integrating cortical areas representing the forelimbs and compare differences in rats undergoing forelimb amputation as neonates, with those amputated as adults. Results showed that early amputation induced decreased fractional anisotropy values and reduction of total myelin amount in the cerebral peduncle contralateral to the amputation. Both early and late forelimb amputations induced decreased myelination of callosal fibers. While early amputation affected myelination of thinner axons, late amputation disrupted axons of all calibers. Since the CC provides a modulation of inhibition and excitation between the hemispheres, we suggest that the demyelination observed among callosal fibers may misbalance this modulation.

摘要

去传入是中枢神经系统(CNS)可塑性变化的一个重要决定因素,它包括来自身体外周或中枢神经系统自身输入的丧失。尽管皮质重组已有充分记录,但白质可塑性的研究较少。我们的目标是研究早期和晚期截肢大鼠的微观结构半球间连接变化。为此,我们采用了扩散加权磁共振成像,以及对白质束切片进行蛋白质免疫印迹、免疫组织化学和电子显微镜检查,以分析皮质脊髓束和胼胝体(CC)中包含整合代表前肢的皮质区域的体感纤维部分的微观结构变化,并比较新生期前肢截肢大鼠与成年期截肢大鼠的差异。结果显示,早期截肢导致截肢对侧大脑脚的各向异性分数值降低和总髓鞘量减少。早期和晚期前肢截肢均导致胼胝体纤维髓鞘形成减少。早期截肢影响较细轴突的髓鞘形成,而晚期截肢则破坏所有管径的轴突。由于胼胝体对半球间的抑制和兴奋起调节作用,我们认为在胼胝体纤维中观察到的脱髓鞘可能会使这种调节失衡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d04/8152840/88e5c993e481/tgaa090f1.jpg

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