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Sciatic nerve injury alters the spatial arrangement of neurons and glial cells in the anterior horn of the spinal cord

机译:坐骨神经损伤改变了脊髓前角中神经元和胶质细胞的空间排列

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The spatial arrangement of the cell is important and considered as underlying mechanism for mathematical modeling of cell to cell interaction. The ability of cells to take on the characteristics of other cells in an organism, it is important to understand the dynamical behavior of the cells. This method implements experimental parameters of the cell-cell interaction into the mathematical simulation of cell arrangement. The purpose of this research was to explore the three-dimensional spatial distribution of anterior horn cells in the rat spinal cord to examine differences after sciatic nerve injury. Sixteen Sprague-Dawley male rats were assigned to control and axotomy groups. Twelve weeks after surgery, the anterior horn was removed for first- and second-order stereological studies. Second-order stereological techniques were applied to estimate the pair correlation and cross-correlation functions using a dipole probe superimposed onto the spinal cord sections. The findings revealed 7% and 36% reductions in the mean volume and total number of motoneurons, respectively, and a 25% increase in the neuroglial cell number in the axotomized rats compared to the control rats. In contrast, the anterior horn volume remained unchanged. The results also indicated a broader gap in the pair correlation curve for the motoneurons and neuroglial cells in the axotomized rats compared to the control rats. This finding shows a negative correlation for the distribution of motoneurons and neuroglial cells in the axotomized rats. The cross-correlation curve shows a negative correlation between the motoneurons and neuroglial cells in the axotomized rats. These findings suggest that cellular structural and functional changes after sciatic nerve injury lead to the alterations in the spatial arrangement of motoneurons and neuroglial cells, finally affecting the normal function of the central nervous system. The experimental protocol was reviewed and approved by the Animal Ethics Committee of Shahid Beheshti University of Medical Sciences (approval No. IR.SBMU.MSP.REC1395.375) on October 17, 2016.
机译:细胞的空间布置是重要的,并且被认为是用于细胞与细胞相互作用的数学建模的基础机制。细胞对生物体中其他细胞的特征的能力,重要的是要理解细胞的动态行为。该方法将细胞单元相互作用的实验参数实现成细胞布置的数学模拟。该研究的目的是探讨大鼠脊髓中前喇叭细胞的三维空间分布,以检查坐骨神经损伤后的差异。分配了16个Sprague-Dawley雄性大鼠控制和腋窝群。手术后十二周,前角被移除,以获得第一和二阶立体研究。应用二阶实体能理技术来估计使用叠加在脊髓截面上的偶极探针的对相关性和互相关函数。结果显示,与对照大鼠相比,分别在运动神经元的平均体积和总数和运动总数增加了7%和36%的减少,与对照大鼠相比,官方化大鼠的神经眼球菌细胞数增加了25%。相反,前喇叭体积保持不变。结果还表明,与对照大鼠相比,在腋瘤大鼠中的运动神经元和神经元素细胞的对相关曲线的较宽间隙。该发现显示了腋中大鼠中运动神经元和神经气囊细胞的分布的负相关性。互相关曲线显示官方化大鼠中的运动神经元和神经节细胞之间的负相关性。这些发现表明,坐骨神经损伤后的细胞结构和功能变化导致运动神经元和神经节细胞的空间排列的改变,最终影响中枢神经系统的正常功能。 2016年10月17日,Shahid Beheshti大学的动物伦理委员会审查和批准了实验协议,并于2016年10月17日批准批准Ir.Sbmu.msp.rec1395.375)。

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