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Dopamine (DA) neurons of the ventrolateral periaqueductal gray (vlPAG) and dorsal raphe nucleus (DRN) fire spontaneous action potentials (APs) at slow, regular patterns in vitro but a detailed account of their intrinsic membrane properties responsible for spontaneous firing is currently lacking. To resolve this, we performed a voltage-clamp electrophysiological study in brain slices to describe their major ionic currents and then constructed a computer model and used simulations to understand the mechanisms behind autorhythmicity in silico. We found that vlPAG/DRN DA neurons exhibit a number of voltage-dependent currents activating in the subthreshold range including, a hyperpolarization-activated cation current (I), a transient, A-type, potassium current (I), a background, 'persistent' (I) sodium current and a transient, low voltage activated (LVA) calcium current (I). Brain slice pharmacology, in good agreement with computer simulations, showed that spontaneous firing occurred independently of I, I or calcium currents. In contrast, when blocking sodium currents, spontaneous firing ceased and a stable, non-oscillating membrane potential below AP threshold was attained. Using the DA neuron model we further show that calcium currents exhibit little activation (compared to sodium) during the interspike interval (ISI) repolarization while, any individual potassium current alone, whose blockade positively modulated AP firing frequency, is not required for spontaneous firing. Instead, blockade of a number of potassium currents simultaneously is necessary to eliminate autorhythmicity. Repolarization during ISI is mediated initially via the deactivation of the delayed rectifier potassium current, while a sodium background 'persistent' current is essentially indispensable for autorhythmicity by driving repolarization towards AP threshold.
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http://dx.doi.org/10.1007/s10827-017-0641-0 | DOI Listing |
JCI Insight
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Department of Pharmacology, University of Michigan Medical School, Ann Arbor, Michigan, USA.
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View Article and Find Full Text PDFBehav Brain Res
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School of Human Sciences, University of Western Australia, Crawley, WA 6009, Australia.
Tinnitus, the auditory perception of sound without an external environmental stimulus, affects 15% of the human population and is associated with hearing loss. Interestingly, anxiety may be a significant risk factor in tinnitus pathophysiology potentially due to underlying common neural circuits of the auditory and limbic systems. The current study aimed to investigate the effects of stress-induced anxiety on tinnitus development in a rat model.
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