首页> 美国卫生研究院文献>The Journal of Neuroscience >Graded Transmission without Action Potentials Sustains Rhythmic Activity in Some But Not All Modulators That Activate the Same Current
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Graded Transmission without Action Potentials Sustains Rhythmic Activity in Some But Not All Modulators That Activate the Same Current

机译:没有动作电位的分级传输可在某些但并非全部激活相同电流的调制器中维持有节奏的活动

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摘要

Neurons in the central pattern-generating circuits in the crustacean stomatogastric ganglion (STG) release neurotransmitter both as a graded function of presynaptic membrane potential that persists in TTX and in response to action potentials. In the STG of the male crab Cancer borealis, the modulators oxotremorine, C. borealis tachykinin-related peptide Ia (CabTRP1a), red pigment concentrating hormone (RPCH), proctolin, TNRNFLRFamide, and crustacean cardioactive peptide (CCAP) produce and sustain robust pyloric rhythms by activating the same modulatory current (IMI), albeit on different subsets of pyloric network targets. The muscarinic agonist oxotremorine, and the peptides CabTRP1a and RPCH elicited rhythmic triphasic intracellular alternating fluctuations of activity in the presence of TTX. Intracellular waveforms of pyloric neurons in oxotremorine and CabTRP1a in TTX were similar to those in the intact rhythm, and phase relationships among neurons were conserved. Although cycle frequency was conserved in oxotremorine and TTX, it was altered in CabTRP1a in the presence of TTX. Both rhythms were primarily driven by the pacemaker kernel consisting of the Anterior Burster and Pyloric Dilator neurons. In contrast, in TTX the circuit remained silent in proctolin, TNRNFLRFamide, and CCAP. These experiments show that graded synaptic transmission in the absence of voltage-gated Na+ current is sufficient to sustain rhythmic motor activity in some, but not other, modulatory conditions, even when each modulator activates the same ionic current. This further demonstrates that similar rhythmic motor patterns can be produced by qualitatively different mechanisms, one that depends on the activity of voltage-gated Na+ channels, and one that can persist in their absence.>SIGNIFICANCE STATEMENT The pyloric rhythm of the crab stomatogastric ganglion depends both on spike-mediated and graded synaptic transmission. We activate the pyloric rhythm with a wide variety of different neuromodulators, all of which converge on the same voltage-dependent inward current. Interestingly, when action potentials and spike-mediated transmission are blocked using TTX, we find that the muscarinic agonist oxotremorine and the neuropeptide CabTRP1a sustain rhythmic alternations and appropriate phases of activity in the absence of action potentials. In contrast, TTX blocks rhythmic activity in the presence of other modulators. This demonstrates fundamental differences in the burst-generation mechanisms in different modulators that would not be suspected on the basis of their cellular actions at the level of the targeted current.
机译:甲壳动物气胃神经节(STG)的中央模式生成电路中的神经元释放神经递质,既作为突触前膜电位的分级功能,又在TTX中持续存在,并且是对动作电位的响应。在雄蟹北半球的STG中,调节剂oxotremorine,北半球梭菌速激肽相关肽Ia(CabTRP1a),红色素浓缩激素(RPCH),proctolin,TNRNFLRFamide和甲壳类心脏活性肽(CCAP)产生并维持强健的幽门螺杆菌通过激活相同的调制电流(IMI)来调节心律,尽管在幽门网络目标的不同子集上也是如此。毒蕈碱激动剂oxotremorine,以及肽CabTRP1a和RPCH在TTX存在下引起节律性三色细胞内交替变化的活性波动。 oxotremorine中的幽门神经元的细胞内波形和TTX中的CabTRP1a的细胞内波形与完整节律中的波形相似,并且神经元之间的相位关系得以保留。尽管在氧代苯甲酸和TTX中周期频率是保守的,但在存在TTX的情况下在CabTRP1a中其频率发生了变化。这两种节律主要是由起搏器内核驱动的,该起搏器内核由前部Burster和幽门扩张器神经元组成。相比之下,在TTX中,直肠环中的Proctolin,TNRNFLRFamide和CCAP保持沉默。这些实验表明,在没有电压门控的Na + 电流的情况下,分级的突触传递足以在某些而非其他调制条件下维持节律性运动活动,即使每个调制器激活相同的离子电流也是如此。 。这进一步证明,通过定性不同的机制可以产生相似的节律性运动模式,一种机制取决于电压门控的Na + 通道的活动,而一种机制则可以在不存在它们的情况下持续存在。>意义声明螃蟹气胃神经节的幽门节律取决于刺突介导的和分级的突触传递。我们用多种不同的神经调节剂激活幽门节律,所有这些调节剂都收敛于相同的电压依赖性内向电流。有趣的是,当使用TTX阻断动作电位和刺突介导的传递时,我们发现毒蕈碱激动剂oxotremorine和神经肽CabTRP1a在没有动作电位的情况下维持节律性交替和适当的活动阶段。相反,在其他调节剂的存在下,TTX阻断了节律性活动。这证明了在不同调制器中爆发生成机制中的根本差异,基于其在目标电流水平上的细胞作用,这是不可怀疑的。

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