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Mammalian neurosecretory neurons are excellent models for understandingthe relationship between spike discharge patterns and hormone/transmitter release in the central nervous system. Neurosecretory neurons adopt a bursting pattern that promotes maximally efficient stimulus-secretion coupling at the nerve terminal. The phasic bursting activity in vasopressin neurons is exemplary of this pattern, and relatively unique in ihat it can be studied in vitro, as it results largely from intrinsic membrane properties. The global hypothesis of this proposal is that phasic burstingper se can be explained largely by the understanding of one primary current, its modulation by Ca++, and its autoregulation by dynorphin through Kopiate receptors. The Specific Aims are: Aim 1) Determine the ion species, underlyingconductance change, and Ca++-dependence of the current underlying the DAP (IDAP)- Experimentally, we will test several predictions from a powerful computational model simulating phasic activity developed during the past grant period. We predict that the plateau potential underlying bursts results from a Ca++ dependent inhibition of a K+ leak current, such that this current attains voltage-dependence in elevated [Ca++].. Aim 2) Determine the mechanism of the autoregulatory inhibition of VP neurons via Kopiate receptors. We predict that dynorphin, released locally during a burst from vasopressin neurons, shifts the Ca++ sensitivity of a K+ leak current rightward, raising its threshold, and terminating the burst. Aim 3) Determine the role of autoregulation in the variability of phasic bursting expression in vitro. We predict that phasic bursting is correlated with the ability of dynorphin to regulate the DAP and burst length and complimentarily, that deficits in phasic bursting activity are due to deficits in autoregulation. A corollary is that phasic bursting may be related to the degree of dendritic arbor present. Understanding the origin of phasic bursting is critical to understanding how VP release is controlled in both physiological and pathophysiological conditions. VP release is critical to normal water balance and cardiovascular regulation.
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Reorganization of the dendritic trees of oxytocin and vasopressin neurons of the rat supraoptic nucleus during lactation.
哺乳期间大鼠视上核催产素和加压素神经元树突树的重组。
DOI: 10.1523/jneurosci.18-03-00841.1998
发表时间: 1998
期刊: The Journal of neuroscience : the official journal of the Society for Neuroscience
影响因子: --
作者: [Stern,JE, Armstrong,WE]
通讯作者: Armstrong,WE
Phenotypic and state-dependent expression of the electrical and morphological properties of oxytocin and vasopressin neurones.
催产素和加压素神经元的电学和形态学特性的表型和状态依赖性表达。
DOI: 10.1016/s0079-6123(08)61564-2
发表时间: 1998
期刊: Progress in brain research
影响因子: --
作者: [Armstrong,WE, Stern,JE]
通讯作者: Stern,JE
Transient extracellular volume reduction in neural lobe of rat hypophysis in response to neural stalk stimulation in vitro and its relationship to extracellular potassium.
大鼠垂体神经叶响应体外神经柄刺激的瞬时细胞外体积减少及其与细胞外钾的关系。
DOI: 10.1152/jn.1993.69.4.1363
发表时间: 1993
期刊: Journal of neurophysiology
影响因子: 2.5
作者: [Armstrong,WE, Rice,ME]
通讯作者: Rice,ME
Sustained outward rectification of oxytocinergic neurones in the rat supraoptic nucleus: ionic dependence and pharmacology.
大鼠视上核催产素能神经元的持续向外整流:离子依赖性和药理学。
DOI: 10.1113/jphysiol.1997.sp022036
发表时间: 1997
期刊: The Journal of physiology
影响因子: --
作者: [Stern,JE, Armstrong,WE]
通讯作者: Armstrong,WE
25
    Reproductive Plasticity in Oxytocin Neurons
    Reproductive Plasticity in Oxytocin Neurons
    Reproductive Plasticity in Oxytocin Neurons
    Reproductive Plasticity in Oxytocin Neurons
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