Dopamine receptors D1, D2, and D4 modulate electrical synapses and excitability in the thalamic reticular nucleus.

IF 2.1 3区 医学 Q3 NEUROSCIENCES Journal of neurophysiology Pub Date : 2025-02-01 Epub Date: 2024-12-20 DOI:10.1152/jn.00260.2024
Mitchell J Vaughn, Nandini Yellamelli, R Michael Burger, Julie S Haas
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Abstract

The thalamic reticular nucleus (TRN) is a thin shell of gap junction-coupled GABAergic inhibitory neurons that regulate afferent sensory relay of the thalamus. The TRN receives dopaminergic innervation from the midbrain, and it is known to express high concentrations of D1 and D4 receptors. Although dopaminergic modulation of presynaptic inputs to TRN has been described, the direct effect of dopamine on TRN neurons and its electrical synapses is largely unknown. Here, we confirmed D1 and D4 expression and showed that D2 receptors are also expressed in TRN. To characterize how dopamine affects both neuronal excitability and electrical synapse coupling strength in the TRN, we performed dual whole cell patch-clamp recordings of TRN neurons and injected them with 500-ms current pulses to measure input resistance, rheobase, spiking frequency, and coupling conductance. Measurements were taken before and after bath application of dopamine or agonists for either D1, D2, or D4 receptors. Our results show that bath application of dopamine did not consistently modulate excitability or electrical synapse strength. However, application of specific dopamine receptor agonists revealed that activation of D1 and D4 receptors increases input resistance and activation of D2-like receptors lowers maximum tonic spike rate. Notably, D2 and D4 receptors depressed electrical synapses. Together, our results suggest that coactivation of D1, D2, and D4 receptors may result in cross talk due to opposing signaling cascades. Furthermore, we show that selective dopamine receptor engagement has substantial potential to modulate TRN circuitry.NEW & NOTEWORTHY Postsynaptic modulation of TRN neurons by activation of specific DA receptor subtypes has not been previously determined. Our research identifies that a previously unreported D2 receptor is expressed in TRN, and we found that D1, D2, and D4 receptors impose distinct excitability changes on TRN. Furthermore, D2 and D4 receptors depress electrical synapses in TRN, identifying a new substrate for modulation of intra-TRN communication.

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多巴胺受体D1, D2和D4调节丘脑网状核的电突触和兴奋性。
丘脑网状核(TRN)是一个由间隙连接偶联gaba能抑制神经元组成的薄壳,调节丘脑的传入感觉传递。TRN接受来自中脑的多巴胺能神经支配,已知其表达高浓度的D1和D4受体。虽然多巴胺能调节TRN的突触前输入,但多巴胺对TRN神经元及其电突触的直接影响在很大程度上是未知的。在这里,我们证实了D1和D4的表达,并表明D2受体也在TRN中表达。为了描述多巴胺如何影响TRN神经元的兴奋性和电突触耦合强度,我们对TRN神经元进行了双全细胞膜片钳记录,并向其注射500 ms电流脉冲,以测量输入电阻、流变基、尖峰频率和耦合电导。在使用多巴胺或激动剂前后测量D1、D2或D4受体。我们的研究结果表明,多巴胺的沐浴应用并没有一致地调节兴奋性或电突触强度。然而,特异性多巴胺受体激动剂的应用表明,D1和D4受体的激活增加了输入阻力,d2样受体的激活降低了最大张力峰值速率。值得注意的是,D2和D4受体抑制了电突触。总之,我们的研究结果表明,D1、D2和D4受体的共激活可能由于相反的信号级联而导致串扰。此外,我们表明选择性多巴胺受体参与具有调节TRN电路的巨大潜力。
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来源期刊
Journal of neurophysiology
Journal of neurophysiology 医学-神经科学
CiteScore
4.80
自引率
8.00%
发文量
255
审稿时长
2-3 weeks
期刊介绍: The Journal of Neurophysiology publishes original articles on the function of the nervous system. All levels of function are included, from the membrane and cell to systems and behavior. Experimental approaches include molecular neurobiology, cell culture and slice preparations, membrane physiology, developmental neurobiology, functional neuroanatomy, neurochemistry, neuropharmacology, systems electrophysiology, imaging and mapping techniques, and behavioral analysis. Experimental preparations may be invertebrate or vertebrate species, including humans. Theoretical studies are acceptable if they are tied closely to the interpretation of experimental data and elucidate principles of broad interest.
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