首页> 美国卫生研究院文献>The Journal of Neuroscience >Astrocyte-Mediated Hepatocyte Growth Factor/Scatter Factor Supplementation Restores GABAergic Interneurons and Corrects Reversal Learning Deficits in Mice
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Astrocyte-Mediated Hepatocyte Growth Factor/Scatter Factor Supplementation Restores GABAergic Interneurons and Corrects Reversal Learning Deficits in Mice

机译:星形胶质细胞介导的肝细胞生长因子/分散因子补充可恢复小鼠GABA能神经元并纠正逆向学习缺陷。

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摘要

Many psychiatric and neurological disorders present persistent neuroanatomical abnormalities in multiple brain regions that may reflect a common origin for a developmental disturbance. In mammals, many of the local GABAergic inhibitory interneurons arise from a single subcortical source. Perturbations in the ontogeny of the GABAergic interneurons may be reflected in the adult by interneuron deficits in both frontal cerebral cortical and striatal regions. Disrupted GABAergic circuitry has been reported in patients with schizophrenia and frontal lobe epilepsy and may contribute to their associated impairments in behavioral flexibility. The present study demonstrates that one type of behavioral flexibility, reversal learning, is dependent upon proper numbers of GABAergic interneurons. Mice with abnormal interneuron ontogeny have reduced numbers of parvalbumin-expressing GABAergic local interneurons in the orbitofrontal cortical and striatal regions and impaired reversal leaning. Using a genetic approach, both the anatomical and functional deficiencies are restored with exogenous postnatal growth factor supplementation. These results show that GABAergic local circuitry is critical for modulating behavioral flexibility and that birth defects can be corrected by replenishing crucial growth factors.
机译:许多精神疾病和神经疾病在多个大脑区域表现出持续的神经解剖学异常,这可能反映了发育障碍的常见根源。在哺乳动物中,许多局部的GABA能抑制性中间神经元来自单个皮层下来源。在成年人中,额叶大脑皮层和纹状体区域的神经元缺损可能反映了成年人对GABA能神经元的发育的干扰。据报道,精神分裂症和额叶癫痫患者的GABA能回路受损,可能导致其行为灵活性受损。本研究表明,一种行为灵活性,即逆向学习,取决于适当数量的GABA能中间神经元。中间神经元发育异常的小鼠在眶额皮质和纹状体区域表达小白蛋白的GABA能级局部中间神经元数量减少,逆转倾向减弱。使用遗传方法,通过补充外源性出生后生长因子可以修复解剖和功能缺陷。这些结果表明,GABA能级局部电路对于调节行为的灵活性至关重要,并且可以通过补充关键的生长因子来纠正先天缺陷。

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