Department of Anatomy and Neurobiology, Program in Neuroscience, University of Maryland School of Medicine, Baltimore, Maryland 20201, USA.
J Neurosci. 2013 Feb 13;33(7):2916-26. doi: 10.1523/JNEUROSCI.3607-12.2013.
Evidence for coexpression of two or more classic neurotransmitters in neurons has increased, but less is known about cotransmission. Ventral tegmental area (VTA) neurons corelease dopamine (DA), the excitatory transmitter glutamate, and the inhibitory transmitter GABA onto target cells in the striatum. Olfactory bulb (OB) short axon cells (SACs) form interglomerular connections and coexpress markers for DA and GABA. Using an optogenetic approach, we provide evidence that mouse OB SACs release both GABA and DA onto external tufted cells (ETCs) in other glomeruli. Optical activation of channelrhodopsin specifically expressed in DAergic SACs produced a GABA(A) receptor-mediated monosynaptic inhibitory response, followed by DA-D(1)-like receptor-mediated excitatory response in ETCs. The GABA(A) receptor-mediated hyperpolarization activates I(h) current in ETCs; synaptically released DA increases I(h), which enhances postinhibitory rebound spiking. Thus, the opposing actions of synaptically released GABA and DA are functionally integrated by I(h) to generate an inhibition-to-excitation "switch" in ETCs. Consistent with the established role of I(h) in ETC burst firing, we show that endogenous DA release increases ETC spontaneous bursting frequency. ETCs transmit sensory signals to mitral/tufted output neurons and drive intraglomerular inhibition to shape glomerulus output to downstream olfactory networks. GABA and DA cotransmission from SACs to ETCs may play a key role in regulating output coding across the glomerular array.
证据表明,神经元中两种或多种经典神经递质的共表达增加了,但关于共传递的了解较少。腹侧被盖区(VTA)神经元将多巴胺(DA)、兴奋性递质谷氨酸和抑制性递质 GABA 共同释放到纹状体中的靶细胞上。嗅球(OB)短轴细胞(SAC)形成细胞间连接,并共表达 DA 和 GABA 的标志物。我们使用光遗传学方法提供证据表明,小鼠 OB SAC 可将 GABA 和 DA 共同释放到其他小球中的外部丛状细胞(ETC)上。在 DA 能 SAC 中特异性表达的通道视紫红质的光激活产生 GABA(A) 受体介导的单突触抑制反应,随后在 ETC 中产生 DA-D1 样受体介导的兴奋反应。GABA(A) 受体介导的超极化在 ETC 中激活 I(h)电流;突触释放的 DA 增加 I(h),从而增强抑制后反弹尖峰。因此,突触释放的 GABA 和 DA 的相反作用通过 I(h)在 ETC 中被功能整合,以产生 ETC 中的抑制-兴奋“开关”。与 I(h)在 ETC 爆发放电中的既定作用一致,我们表明内源性 DA 释放增加了 ETC 的自发爆发频率。ETC 将感觉信号传递到僧帽/丛状输出神经元,并驱动细胞间抑制,以塑造肾小球输出到下游嗅觉网络。从 SAC 到 ETC 的 GABA 和 DA 共传递可能在调节整个肾小球阵列的输出编码中发挥关键作用。