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The effects of centrally administered fluorocitrate via inhibiting glial cells on working memory in rats 被引量:2
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作者 WANG Lei1,2,LI Chao-Cui1,WANG Gong-Wu1 & CAI Jing-Xia1 1 Section of Brain and Behavior,Kunming Institute of Zoology,the Chinese Academy of Sciences,Kunming 650223,China 2 Graduate School of the Chinese Academy of Sciences,Beijing 100049,China 《Science China(Life Sciences)》 SCIE CAS 2009年第8期701-709,共9页
Although prefrontal and hippocampal neurons are critical for spatial working memory,the function of glial cells in spatial working memory remains uncertain.In this study we investigated the function of glial cells in ... Although prefrontal and hippocampal neurons are critical for spatial working memory,the function of glial cells in spatial working memory remains uncertain.In this study we investigated the function of glial cells in rats' working memory.The glial cells of rat brain were inhibited by intracerebroventricular(icv) injection of fluorocitrate(FC).The effects of FC on the glial cells were examined by using electroencephalogram(EEG) recordings and delayed spatial alternation tasks.After icv injection of 10 μL of 0.5 nmol/L or 5 nmol/L FC,the EEG power spectrum recorded from the hippocampus increased,but the power spectrum for the prefrontal cortex did not change,and working memory was unaffected.Following an icv injection of 10 μL of 20 nmol/L FC,the EEG power spectra in both the prefrontal cortex and the hippocampus increased,and working memory improved.The icv injection of 10 μL of 50 nmol/L FC,the EEG power spectra in both the prefrontal cortex and in the hippocampus decreased,and working memory was impaired.These results suggest that spatial working memory is affected by centrally administered FC,but only if there are changes in the EEG power spectrum in the prefrontal cortex.Presumably,the prefrontal glial cells relate to the working memory. 展开更多
关键词 GLIAL cell fluorocitrate PREFRONTAL CORTEX HIPPOCAMPUS ELECTROENCEPHALOGRAM power spectrum spatial working memory
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Regulatory effects of inhibiting the activation of glial cells on retinal synaptic plasticity 被引量:2
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作者 Lihong Zhou Hui Wang +4 位作者 Jia Luo Kun Xiong Leping Zeng Dan Chen Jufang Huang 《Neural Regeneration Research》 SCIE CAS CSCD 2014年第4期385-393,共9页
Various retinal injuries induced by ocular hypertension have been shown to induce plastic changes in retinal synapses, but the potential regulatory mechanism of synaptic plasticity after retinal injury was still uncle... Various retinal injuries induced by ocular hypertension have been shown to induce plastic changes in retinal synapses, but the potential regulatory mechanism of synaptic plasticity after retinal injury was still unclear. A rat model of acute ocular hypertension was established by injecting saline intravitreally for an hour, and elevating the intraocular pressure to 14.63 kPa (110 mmHg). Western blot assay and immunofluorescence results showed that synaptophysin expression had a distinct spatiotemporal change that increased in the inner plexiform layer within 1 day and spread across the outer plexiform layer after 3 days. Glial fibrillary acidic protein expression in retinae was greatly increased after 3 days, and reached a peak at 7 days, which was also consistent with the peak time of synaptophysin expression in the outer plexiform layer following the increased intraocular pressure. Fluorocitrate, a glial metabolic inhibitor, was intravitreally injected to inhibit glial cell activation following high intraocular pressure. This significantly inhibited the enhanced glial fibrillary acidic protein expression induced by high intraocular pressure injury. Synaptophysin expression also decreased in the inner plexiform layer within a day and the widened distribution in the outer plexiform layer had disappeared by 3 days. The results suggested that retinal glial cell activation might play an important role in the process of retinal synaptic plasticity induced by acute high intraocular pressure through affecting the expression and distribution of synaptic functional proteins, such as synaptophysin. 展开更多
关键词 nerve regeneration neuronal plasticity retina synapses SYNAPTOPHYSIN glial cells highintraocular pressure fluorocitrate glial fibrillary acidic protein NSFC grant neural regeneration
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