Centrifugal innervation of the mammalian olfactory bulb

被引:0
作者
Shinji Matsutani
Noboru Yamamoto
机构
[1] University School of Nursing,Department of Functional Morphology, Kitasato
来源
Anatomical Science International | 2008年 / 83卷
关键词
axon terminal; granule cell; neuromodulator; olfaction; olfactory cortex;
D O I
暂无
中图分类号
学科分类号
摘要
Although it has been known for decades that the mammalian olfactory bulb receives a substantial number of centrifugal inputs from other regions of the brain, relatively few data have been available on the function of the centrifugal olfactory system. Knowing the role of the centrifugal projection and how it works is of critical importance to fully understanding olfaction. The centrifugal fibers can be classified into two groups, a group that release neuromodulators, such as noradrenaiine, serotonin, or acetylcholine, and a group originating in the olfactory cortex. Accumulating evidence suggests that centrifugal neuromodulatory inputs are associated with acquisition of odor memory. Because the distribution of the terminals on these fibers is diffuse and widespread, the neuromodulatory inputs must affect diverse subsets of bulbar neurons at the same time. In contrast, knowledge of the role of centrifugal fibers from the olfactory cortical areas is limited. Judging from recent morphological evidence, these fibers may modify the activity of neurons located in sparse and discrete loci in the olfactory bulb. Given the modular organization of the olfactory bulb, centrifugal fibers from the olfactory cortex may help coordinate the activities of restricted subsets of neurons belonging to distinct functional modules in an odor-specific manner. Because the olfactory cortex receives inputs from limbic and neocortical areas in addition to inputs from the bulb, the centrifugal inputs from the cortex can modulate odor processing in the bulb in response to non-olfactory as well as olfactory cues.
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页码:218 / 227
页数:9
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[1]  
Altman J(1969)Autoradiographic and histological studies of postnatal neurogenesis. IV. Cell proliferation and migration in the anterior forebrain, with special reference to persisting neurogenesis in the olfactory bulb J Comp Neurol 137 433-58
[2]  
Bailey CH(2000)Is heterosynaptic modulation essential for stabilizing Hebbian plasticity and memory? Nat Rev Neurosci 1 11-20
[3]  
Giustetto M(2007)Multiple modes of synaptic excitation of olfactory bulb granule cells J Neurosci 27 5621-32
[4]  
Huang Y-Y(1983)H-thymidine-radiographic studies of neurogenesis in the rat olfactory bulb Exp Brain Res 50 329-40
[5]  
Hawkins RD(1997)Neural mechanisms of mammalian olfactory learning Prog Neurobiol 51 457-81
[6]  
Kandel ER(1998)Changes in neurotransmitter release in the main olfactory bulb following an olfactory conditioning procedure in mice Neuroscience 87 583-90
[7]  
Balu R(1991)A novel multigene family may encode odorant receptors: A molecular basis for odor recognition Cell 65 175-87
[8]  
Pressler RT(1999)Multiple and opposing roles of cholinergic transmission in the main olfactory bulb J Neurosci 19 9180-91
[9]  
Strowbridge BW(1999)Norepinephrine increases rat mitral cell excitatory responses to weak olfactory nerve input via alpha-1 receptors Neuroscience 90 595-606
[10]  
Bayer SA(1981)The organization of centrifugal projections from the anterior olfactory nucleus, ventral hippocampal rudiment, and piriform cortex to the main olfactory bulb in the hamster: An autoradiographic study J Comp Neurol 203 475-93