Lowe G, Buerk D G, Ma J, Gelperin A
Monell Chemical Senses Center, Philadelphia, PA 19104-3308, USA.
Neuroscience. 2008 May 15;153(3):842-50. doi: 10.1016/j.neuroscience.2008.03.003. Epub 2008 Mar 8.
Nitric oxide (NO) has been long assumed to play a key role in mammalian olfaction. This was based largely on circumstantial evidence, i.e. prominent staining for nitric oxide synthase (NOS) and cyclic guanosine 3',5'-cyclic monophosphate (cGMP) or soluble guanylyl cyclase, an effector enzyme activated by NO, in local interneurons of the olfactory bulb. Here we employ innovative custom-fabricated NO micro-sensors to obtain the first direct, time-resolved measurements of NO signaling in the olfactory bulb. In 400 microm thick mouse olfactory bulb slices, we detected a steady average basal level of 87 nM NO in the extracellular space of mitral or granule cell layers. This NO 'tone' was sensitive to NOS substrate manipulation (200 microM L-arginine, 2 mM N(G)-nitro-L-arginine methyl ester) and Mg(2+) modulation of N-methyl-D-aspartate (NMDA) receptor conductance. Electrical stimulation of olfactory nerve fibers evoked transient (peak at 10 s) increments in NO levels 90-100 nM above baseline. In the anesthetized mouse, NO micro-sensors inserted into the granule cell layer detected NO transients averaging 55 nM in amplitude and peaking at 3.4 s after onset of a 5 s odorant stimulation. These findings suggest dual roles for NO signaling in the olfactory bulb: tonic inhibitory control of principal neurons, and regulation of circuit dynamics during odor information processing.
长期以来,人们一直认为一氧化氮(NO)在哺乳动物嗅觉中起关键作用。这主要基于间接证据,即嗅觉球局部中间神经元中一氧化氮合酶(NOS)、环鸟苷酸3',5'-环磷酸(cGMP)或可溶性鸟苷酸环化酶(一种由NO激活的效应酶)有明显染色。在此,我们使用创新的定制NO微传感器,首次对嗅觉球中的NO信号进行了直接、时间分辨测量。在400微米厚的小鼠嗅觉球切片中,我们在二尖瓣或颗粒细胞层的细胞外空间检测到稳定的平均基础水平为87 nM的NO。这种NO“基调”对NOS底物操作(200 microM L-精氨酸、2 mM N(G)-硝基-L-精氨酸甲酯)以及N-甲基-D-天冬氨酸(NMDA)受体电导的Mg(2+)调节敏感。电刺激嗅觉神经纤维会使NO水平瞬间(在10秒时达到峰值)升高,比基线高出90 - 100 nM。在麻醉的小鼠中,插入颗粒细胞层的NO微传感器检测到,在5秒气味刺激开始后,NO瞬变平均幅度为55 nM,在3.4秒时达到峰值。这些发现表明NO信号在嗅觉球中具有双重作用:对主要神经元的紧张性抑制控制,以及在气味信息处理过程中对回路动力学的调节。