首页> 美国卫生研究院文献>The Journal of Neuroscience >Direct Recording of Dendrodendritic Excitation in the Olfactory Bulb: Divergent Properties of Local and External Glutamatergic Inputs Govern Synaptic Integration in Granule Cells
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Direct Recording of Dendrodendritic Excitation in the Olfactory Bulb: Divergent Properties of Local and External Glutamatergic Inputs Govern Synaptic Integration in Granule Cells

机译:树枝状树突状兴奋在嗅球中的直接记录:局部和外部谷氨酸能输入的不同属性控制颗粒细胞中的突触整合。

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摘要

The olfactory bulb contains excitatory principal cells (mitral and tufted cells) that project to cortical targets as well as inhibitory interneurons. How the local circuitry in this region facilitates odor-specific output is not known, but previous work suggests that GABAergic granule cells plays an important role, especially during fine odor discrimination. Principal cells interact with granule cells through reciprocal dendrodendritic connections that are poorly understood. While many studies examined the GABAergic output side of these reciprocal connections, little is known about how granule cells are excited. Only two previous studies reported monosynaptically coupled mitral/granule cell connections and neither attempted to determine the fundamental properties of these synapses. Using dual intracellular recordings and a custom-built loose-patch amplifier, we have recorded unitary granule cell EPSPs evoked in response to mitral cell action potentials in rat (both sexes) brain slices. We find that the unitary dendrodendritic input is relatively weak with highly variable release probability and short-term depression. In contrast with the weak dendrodendritic input, the facilitating cortical input to granule cells is more powerful and less variable. Our computational simulations suggest that dendrodendritic synaptic properties prevent individual principal cells from strongly depolarizing granule cells, which likely discharge in response to either concerted activity among a large proportion of inputs or coactivation of a smaller subset of local dendrodendritic inputs with coincidence excitation from olfactory cortex. This dual-pathway requirement likely enables the sparse mitral/granule cell interconnections to develop highly odor-specific responses that facilitate fine olfactory discrimination.>SIGNIFICANCE STATEMENT The olfactory bulb plays a central role in converting broad, highly overlapping, sensory input patterns into odor-selective population responses. How this occurs is not known, but experimental and theoretical studies suggest that local inhibition often plays a central role. Very little is known about how the most common local interneuron subtype, the granule cell, is excited during odor processing beyond the unusual anatomical arraignment of the interconnections (reciprocal dendrodendritic synapses). Using paired recordings and two-photon imaging, we determined the properties of the primary input to granule cells for the first time and show that these connections bias interneurons to fire in response to spiking in large populations of principal cells rather than a small group of highly active cells.
机译:嗅球包含投射到皮质靶标和抑制性中间神经元的兴奋性主要细胞(有丝分裂的和簇状的细胞)。尚不清楚该区域中的局部电路如何促进异味的输出,但先前的工作表明,GABA能颗粒细胞起着重要作用,尤其是在细微的异味识别过程中。主要细胞通过相互理解的树突状树突状连接与颗粒细胞相互作用。尽管许多研究检查了这些相互联系的GABA能输出侧,但对颗粒细胞如何被激发知之甚少。以前只有两项研究报道了单突触耦合的二尖瓣/颗粒细胞连接,并且都没有试图确定这些突触的基本特性。使用双重细胞内记录和定制的宽松补丁放大器,我们已经记录了在大鼠(男女)脑片中响应二尖瓣细胞动作电位而诱发的单一颗粒细胞EPSP。我们发现,单一的树突状树突输入相对较弱,具有高度可变的释放概率和短期抑制作用。与弱的树突状细胞输入相反,促进皮质细胞向颗粒细胞的输入更有效且变化较小。我们的计算模拟表明,树突状突触特性可防止单个主要细胞强烈去极化的颗粒细胞,这些细胞可能是由于响应较大比例输入中的协同活动或因嗅觉皮层的同时激发而激活的较小局部树突状输入子的共同激活而放电。这种双重途径的需求可能使稀疏的二尖瓣/颗粒细胞相互连接产生高度气味特异性的反应,从而有助于精细的嗅觉辨别。>意义声明,嗅球在转化广泛,高度重叠,感觉输入模式转换为气味选择性种群反应。这种情况的发生方式尚不清楚,但是实验和理论研究表明,局部抑制通常起着核心作用。关于气味的处理过程中最常见的局部中间神经元亚型,即颗粒细胞,如何在互连的异常解剖学反应(相互的树突突触)之外被激发,知之甚少。使用配对的记录和双光子成像,我们首次确定了颗粒细胞的主要输入特性,并表明这些连接将中间神经元偏向激发,以响应大量主细胞而不是一小群高度集中的尖峰活动细胞。

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