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一种用于皮质损伤后胼胝体连接的多重分析的新型体内模型。

A Novel In Vivo Model for Multiplexed Analysis of Callosal Connections upon Cortical Damage.

机构信息

Laboratory of Cortical Circuits in Health and Disease, CIPF Centro de Investigación Príncipe Felipe, 46012 Valencia, Spain.

Laboratory of Medical Imaging, CIPF Centro de Investigación Príncipe Felipe, 46012 Valencia, Spain.

出版信息

Int J Mol Sci. 2022 Jul 26;23(15):8224. doi: 10.3390/ijms23158224.

Abstract

Brain damage is the major cause of permanent disability and it is particularly relevant in the elderly. While most studies focused on the immediate phase of neuronal loss upon injury, much less is known about the process of axonal regeneration after damage. The development of new refined preclinical models to investigate neuronal regeneration and the recovery of brain tissue upon injury is a major unmet challenge. Here, we present a novel experimental paradigm in mice that entails the (i) tracing of cortico-callosal connections, (ii) a mechanical lesion of the motor cortex, (iii) the stereological and histological analysis of the damaged tissue, and (iv) the functional characterization of motor deficits. By combining conventional microscopy with semi-automated 3D reconstruction, this approach allows the analysis of fine subcellular structures, such as axonal terminals, with the tridimensional overview of the connectivity and tissue integrity around the lesioned area. Since this 3D reconstruction is performed in serial sections, multiple labeling can be performed by combining diverse histological markers. We provide an example of how this methodology can be used to study cellular interactions. Namely, we show the correlation between active microglial cells and the perineuronal nets that envelop parvalbumin interneurons. In conclusion, this novel experimental paradigm will contribute to a better understanding of the molecular and cellular interactions underpinning the process of cortical regeneration upon brain damage.

摘要

脑损伤是永久性残疾的主要原因,尤其是在老年人中。虽然大多数研究都集中在损伤后神经元即刻丢失的阶段,但对于损伤后轴突再生的过程知之甚少。开发新的精细化临床前模型来研究神经元再生和损伤后脑组织的恢复是一个重大的未满足的挑战。在这里,我们提出了一种新的小鼠实验范例,包括(i)皮质-胼胝体连接的追踪,(ii)运动皮层的机械损伤,(iii)损伤组织的立体学和组织学分析,以及(iv)运动缺陷的功能特征。通过将传统显微镜与半自动 3D 重建相结合,这种方法允许分析精细的亚细胞结构,如轴突末端,并对损伤区域周围的连接和组织完整性进行三维概述。由于这种 3D 重建是在连续切片上进行的,因此可以通过结合多种组织学标记来进行多重标记。我们提供了一个如何使用这种方法来研究细胞相互作用的例子。即,我们展示了活跃的小胶质细胞与包绕钙蛋白神经元的神经周细胞网络之间的相关性。总之,这种新的实验范例将有助于更好地理解脑损伤后皮质再生过程中的分子和细胞相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b602/9368090/faaee2bf9369/ijms-23-08224-g001.jpg

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