دکتر امیر محمد شهسوارانی
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#شناسایی #سازوکارهای بالقوه ایجاد #الکلیزم

#Dopamine #Neurons #Change the #Type of #Excitability in #Response to #Stimuli

#پژوهشگران مدرسه عالی اقتصاد روسیه با همکاری موسسه ملی سلامت و وزارت آموزش روسیه 🇷🇺، دانشکده نرمال سوپریر فرانسه 🇫🇷، و دانشگاه ایندیانای ایالات متحده 🇺🇸، در پژوهش بر ریشه های #عصبی، #ژنتیک و #متابولیک #الکلیزم در افراد دریافتند که مکانیزم های #تغییریافته عمل در پاسخ #نورون های #دوپامینرژیک در پویایی های #کرتکس #پیش_پیشانی منجر به تغییر سطح #دوپامین مغز شده و فرد را به سمت الکلیزم سوق دهند.

Abstract
#The #dynamics of #neuronal #excitability #determine the #neuron’s response to stimuli, its #synchronization and #resonance properties and, ultimately, the computations it performs in the #brain. We investigated the dynamical #mechanisms underlying the excitability type of dopamine (#DA) neurons, using a #conductance-based #biophysical model, and its #regulation by intrinsic and #synaptic currents. #Calibrating the model to reproduce low frequency #tonic firing results in #N-methyl-D-aspartate (#NMDA) #excitation balanced by γ-Aminobutyric acid (#GABA)-mediated #inhibition and leads to type I excitable behavior characterized by a continuous decrease in firing frequency in response to #hyperpolarizing currents. Furthermore, we analyzed how excitability type of the DA neuron model is influenced by changes in the intrinsic current composition. A #subthreshold #sodium current is necessary for a continuous frequency decrease during application of a negative current, and the low-frequency “balanced” state during simultaneous activation of NMDA and GABA #receptors. Blocking this current switches the neuron to type II characterized by the abrupt onset of repetitive firing. Enhancing the #anomalous rectifier #Ih current also switches the excitability to type II. Key characteristics of synaptic conductances that may be observed in vivo also change the type of excitability: a #depolarized γ-Aminobutyric acid receptor (#GABAR) reversal potential or co-activation of α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptors (#AMPARs) leads to an abrupt frequency drop to zero, which is typical for type II excitability. Coactivation of N-methyl-D-aspartate receptors (#NMDARs) together with AMPARs and GABARs shifts the type I/II boundary toward more hyperpolarized GABAR reversal potentials. To better understand how altering each of the aforementioned currents leads to changes in excitability profile of DA neuron, we provide a thorough dynamical analysis. Collectively, these results imply that type I excitability in dopamine neurons might be important for low firing rates and fine-tuning basal dopamine levels, while switching excitability to type II during NMDAR and AMPAR activation may facilitate a transient increase in dopamine concentration, as type II neurons are more amenable to synchronization by mutual excitation.

لینک منبع 👇🏻(further reading)👇🏻
journals.plos.org/ploscompbiol/article?id=10.1371/journal.pcbi.1005233

(در صورت جذابیت و علاقمندی به موضوع، مطلب را برای دیگران نیز بازنشر فرمایید).

📢کانال #دکترامیرمحمدشهسوارانی
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@DrAmirMohammadShahsavarani