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首页> 外文期刊>Neurobiology of disease >Changes in resting-state functional connectivity after stroke in a mouse brain lacking extracellular matrix components
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Changes in resting-state functional connectivity after stroke in a mouse brain lacking extracellular matrix components

机译:缺乏细胞外基质组分的小鼠脑中中风后静态功能连通性的变化

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摘要

In the brain, focal ischemia results in a local region of cell death and disruption of both local and remote functional neuronal networks. Tissue reorganization following stroke can be limited by factors such as extra cellular matrix (ECM) molecules that prevent neuronal growth and synaptic plasticity. The brain's ECM plays a crucial role in network formation, development, and regeneration of the central nervous system. Further, the ECM is essential for proper white matter tract development and for the formation of structures called perineuronal nets (PNNs). PNNs mainly surround parvalbumin/GABA inhibitory interneurons, of importance for processing sensory information. Previous studies have shown that downregulating PNNs after stroke reduces the neurite-inhibitory environment, reactivates plasticity, and promotes functional recovery. Resting-state functional connectivity (RS-FC) within and across hemispheres has been shown to correlate with behavioral recovery after stroke. However, the relationship between PNNs and RS-FC has not been examined. Here we studied a quadruple knock-out mouse (Q4) that lacks four ECM components: brevican, neurocan, tenascin-C and tenascin-R. We applied functional connectivity optical intrinsic signal (fcOIS) imaging in Q4 mice and wild-type (129S1 mice) before and 14 days after photothrombotic stroke (PT) to understand how the lack of crucial ECM components affects neuronal networks and functional recovery after stroke. Limb-placement ability was evaluated at 2, 7 and 14 days of recovery through the paw-placement test. Q4 mice exhibited significantly impaired homotopic RS-FC compared to wild-type mice, especially in the sensory and parietal regions. Changes in RS-FC were significantly correlated with the number of interhemispheric callosal crossings in those same regions. PT caused unilateral damage to the sensorimotor cortex and deficits of tactile-proprioceptive placing ability in contralesional fore- and hindlimbs, but the two experimental groups did not present significant differences in infarct size. Two weeks after PT, a general down-scaling of regional RS-FC as well as the number of regional functional connections was visible for all cortical regions and most notable in the somatosensory areas of both Q4 and wild type mice. Q4 mice exhibited higher intrahemispheric RS-FC in contralesional sensory and motor cortices compared to control mice. We propose that the lack of growth inhibiting ECM components in the Q4 mice potentially worsen behavioral outcome in the early phase after stroke, but subsequently facilitates modulation of contralesional RS-FC which is relevant for recovery of sensory motor function. We conclude that Q4 mice represent a valuable model to study how the elimination of ECM genes compromises neuronal function and plasticity mechanisms after stroke.
机译:在大脑中,局灶性缺血导致局部细胞死亡区域和局部和远程功能神经元网络的破坏。中风后的组织重组可以受到预防神经元生长和突触可塑性的额外细胞基质(ECM)分子的因素的限制。大脑的ECM在中枢神经系统的网络形成,开发和再生中起着至关重要的作用。此外,ECM对于适当的白质子发育和形成称为PERINEURONAL网(PNNS)的结构至关重要。 PNN主要环绕Parvalbumin / Gaba抑制性核心,对处理感官信息的重要性。以前的研究表明,中风后下调PNN减少了神经突抑制环境,再活化可塑性,并促进功能性回收。已经显示出在半球内和跨越半球内的休息状态的功能连接(RS-Fc)与行为后的行为恢复相关。但是,尚未检查PNN和RS-FC之间的关系。在这里,我们研究了一只四人敲除鼠标(Q4),缺乏四种ECM组件:Brevican,Neurocan,Tenascin-C和Tenascin-R。在光培训中风(PT)之后,在Q4小鼠和野生型(129S1小鼠)中施加功能连接光学固有信号(FCOIS)成像,以了解如何缺乏关键的ECM组分影响神经元网络和中风后功能恢复。通过爪子放置测试在恢复的2,7和14天内评估肢体置入能力。与野生型小鼠相比,Q4小鼠表现出显着损害的同型RS-FC,特别是在感官和榫廓区域中。 RS-FC的变化与相同区域中的互脱血栓愈伤组织交叉口的数量显着相关。 PT对传感器皮层的单侧损坏和触觉 - 预防性放置能力的缺陷,但两种实验组对梗塞大小没有显着差异。 PT后两周,所有皮质地区都可以看到区域RS-FC的一般下缩放以及区域功能连接的数量,并且最显着的Q4和野生型小鼠的躯体感觉。与对照小鼠相比,Q4小鼠展现了相对的感觉和电机皮质中的更高的内肌肉RS-FC。我们提出Q4小鼠中缺乏生长抑制ECM组分可能在中风后的早期阶段发生行为结果,但随后促进了对较相关的RS-FC的调制,该RS-FC与恢复感觉运动功能相关。我们得出结论,Q4小鼠代表了研究消除ECM基因如何在中风后损害神经元功能和可塑性机制的有价值模型。

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