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本文引用的文献

1
Spatial arrangement of glomerular molecular-feature clusters in the odorant-receptor class domains of the mouse olfactory bulb.小鼠嗅球气味受体类域中肾小球分子特征簇的空间排列。
J Neurophysiol. 2010 Jun;103(6):3490-500. doi: 10.1152/jn.00035.2010. Epub 2010 Apr 14.
2
Molecular identity of periglomerular and short axon cells.肾小球旁器和短轴突细胞的分子特征。
J Neurosci. 2010 Jan 20;30(3):1185-96. doi: 10.1523/JNEUROSCI.3497-09.2010.
3
Glomerular microcircuits in the olfactory bulb.嗅球中的肾小球微循环。
Neural Netw. 2009 Oct;22(8):1169-73. doi: 10.1016/j.neunet.2009.07.013. Epub 2009 Jul 18.
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Odorant modulation of neuronal activity and local field potential in sensory-deprived olfactory bulb.感觉剥夺嗅球中气味对神经元活动和局部场电位的调节作用
Neuroscience. 2009 Sep 15;162(4):1265-78. doi: 10.1016/j.neuroscience.2009.05.051. Epub 2009 May 27.
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Neuronal circuit-dependent alterations in expression of two isoforms of glutamic acid decarboxylase in the hippocampus following electroconvulsive shock: A stereology-based study.电休克后海马中两种谷氨酸脱羧酶同工型表达的神经元回路依赖性改变:基于体视学的研究。
Hippocampus. 2009 Nov;19(11):1130-41. doi: 10.1002/hipo.20576.
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Two GABAergic intraglomerular circuits differentially regulate tonic and phasic presynaptic inhibition of olfactory nerve terminals.两条γ-氨基丁酸能的球内回路以不同方式调节嗅觉神经末梢的紧张性和相位性突触前抑制。
J Neurophysiol. 2009 Apr;101(4):1988-2001. doi: 10.1152/jn.91116.2008. Epub 2009 Feb 18.
7
Charting plasticity in the regenerating maps of the mammalian olfactory bulb.绘制哺乳动物嗅球再生图谱中的可塑性
Neuroscientist. 2008 Jun;14(3):251-63. doi: 10.1177/1073858408315026. Epub 2008 Apr 17.
8
Tyrosine hydroxylase-positive GABAergic juxtaglomerular neurons are the main source of the interglomerular connections in the mouse main olfactory bulb.酪氨酸羟化酶阳性的γ-氨基丁酸能近球神经元是小鼠主嗅球内球间连接的主要来源。
Neurosci Res. 2008 Mar;60(3):349-54. doi: 10.1016/j.neures.2007.11.012. Epub 2007 Dec 8.
9
Innate versus learned odour processing in the mouse olfactory bulb.小鼠嗅球中先天与后天的气味处理
Nature. 2007 Nov 22;450(7169):503-8. doi: 10.1038/nature06281. Epub 2007 Nov 7.
10
Quantitative analysis of neuronal diversity in the mouse olfactory bulb.小鼠嗅球中神经元多样性的定量分析。
J Comp Neurol. 2007 Apr 20;501(6):825-36. doi: 10.1002/cne.21205.

感觉体验选择性地调节肾小球间回路中的递质合成酶。

Sensory experience selectively regulates transmitter synthesis enzymes in interglomerular circuits.

机构信息

Department of Anatomy and Neurobiology, University of Maryland School of Medicine, Baltimore, MD 21201, USA.

出版信息

Brain Res. 2011 Mar 25;1382:70-6. doi: 10.1016/j.brainres.2011.01.068. Epub 2011 Jan 26.

DOI:10.1016/j.brainres.2011.01.068
PMID:21276774
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3062188/
Abstract

Sensory experience influences brain organization and function. A particularly striking example is in the olfactory bulb where reduction of odorant sensory signals profoundly down-regulates dopamine in glomerular neurons. There are two large populations of glomerular inhibitory interneurons: (1) GABAergic periglomerular (PG) cells, whose processes are limited to a single glomerulus, regulate intraglomerular processing and (2) DAergic-GABAergic short axon (SA) cells, whose processes contact multiple glomeruli, regulate interglomerular processing. The inhibitory neurotransmitter GABA is synthesized from L-glutamic acid by the enzyme glutamic acid decarboxylase (GAD) of which there are two major isoforms: GAD65 and GAD67. GAD65 is expressed in uniglomerular PG cells. GAD67 is expressed by SA cells, which also co-express the rate-limiting enzyme for dopamine synthesis, tyrosine hydroxylase (TH). Deafferentation or sensory deprivation decreases TH expression but it is not known if sensory input alters GAD isoforms. Here we report that either deafferentation or reduction of sensory input by nares occlusion significantly reduced GAD67 protein and the number of SA cells expressing GAD67. However, neither manipulation altered GAD65 protein or the number of GAD65 PG cells. These findings show that sensory experience strongly impacts transmitter regulation in the circuit that controls neural processing across glomeruli but not in the circuit that regulates intraglomerular processing.

摘要

感觉体验会影响大脑的组织和功能。一个特别引人注目的例子是在嗅球中,气味感觉信号的减少会深刻地下调肾小球神经元中的多巴胺。有两种大的肾小球抑制性中间神经元群体:(1)GABA 能的近球旁细胞(PG),其过程仅限于单个肾小球,调节肾小球内的处理,(2)DA 能-GABA 能短轴突(SA)细胞,其过程接触多个肾小球,调节肾小球间的处理。抑制性神经递质 GABA 由谷氨酸脱羧酶(GAD)从 L-谷氨酸合成,其中有两种主要的同工型:GAD65 和 GAD67。GAD65 在单肾小球 PG 细胞中表达。GAD67 由 SA 细胞表达,这些细胞也共同表达多巴胺合成的限速酶酪氨酸羟化酶(TH)。去传入或感觉剥夺会降低 TH 的表达,但尚不清楚感觉输入是否会改变 GAD 同工型。在这里,我们报告说,去传入或通过鼻腔闭塞减少感觉输入都会显著降低 GAD67 蛋白和表达 GAD67 的 SA 细胞数量。然而,这两种操作都没有改变 GAD65 蛋白或 GAD65 PG 细胞的数量。这些发现表明,感觉体验强烈影响控制跨肾小球神经处理的回路中的递质调节,但不影响调节肾小球内处理的回路。