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Adenosine decreases both presynaptic calcium currents and neurotransmitter release at the mouse neuromuscular junction

机译:腺苷降低小鼠神经肌肉连接处的突触前钙电流和神经递质释放

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摘要

A controversy currently exists as to the mechanism of action by which adenosine, an endogenous mediator of neurotransmitter depression, reduces the evoked release of the neurotransmitter acetylcholine (ACh) at the skelelal neuromuscular junction. Specifically, it is uncertain whether adenosine inhibits ACh release from mammalian motor nerve endings by reducing Ca2+ calcium entry through voltage-gated calcium channels or, as is the case at amphibian motor nerve endings, by an effect downstream of Ca2+ entry. In an attempt to address this controversy, the effects of adenosine on membrane ionic currents and neurotransmitter release were studied at neuromuscular junctions in adult mouse phrenic nerve hemidiaphragm preparations. In wild-type mice, adenosine (500 μm–1 mm) reduced prejunctional Ca2+ currents simultaneously with a reduction in evoked ACh release. In Rab3A knockout mice, which have been shown to have an increased sensitivity to adenosine, the simultaneous reduction in Ca2+ currents and ACh secretion occurred at significantly lower adenosine concentrations (≤ 50 μm). Measurements of nerve terminal Na+ and K+ currents made simultaneously with evoked ACh release demonstrated that the decreases in Ca2+ currents were not attributable to changes in cation entry through voltage-gated Na+ or K+ channels. Furthermore, no effects of adenosine on residual ionic currents were observed when P/Q-type calcium channels were blocked by Cd2+ or ω-agatoxin-IVA. The results demonstrate that inhibition of evoked neurotransmitter secretion by adenosine is associated with a reduction in Ca2+ calcium entry through voltage-gated P/Q Ca2+ channels at the mouse neuromuscular junction. Whilst it may be that adenosine inhibits ACh release by different mechanisms at amphibia and mammalian neuromuscular junctions, it is also possible that the secretory apparatus is more intimately coupled to the Ca2+ channels in the mouse such that an effect on the secretory machinery is reflected as changes in Ca2+ currents.
机译:目前存在关于作用机制的争论,腺苷是神经递质抑制的内源性介质,通过它减少了神经递质乙酰胆碱(ACh)在骨骼神经肌肉接头处的诱发释放。具体而言,尚不确定腺苷是否通过减少通过电压门控钙通道的Ca 2 + 钙进入,或是否像两栖动物运动神经末梢一样抑制哺乳动物运动神经末梢释放ACh。 Ca 2 + 条目的下游。为了解决这个争议,研究了成年小鼠神经半ph制品中神经肌肉接头处腺苷对膜离子电流和神经递质释放的影响。在野生型小鼠中,腺苷(500 μm–1 ​​mm)减少结前Ca 2 + 电流,并同时降低诱发的ACh释放。在已经显示出对腺苷敏感性增强的Rab3A基因敲除小鼠中,Ca 2 + 电流和ACh分泌的同时降低发生在腺苷浓度显着降低(≤50μm)的情况下。测量与诱发ACh释放同时进行的神经末梢Na + 和K + 电流,这表明Ca 2 + 电流的降低并非归因于通过电压门控的Na + 或K + 通道改变阳离子的进入。此外,当P / Q型钙通道被Cd 2 + 或ω-毒素-IVA阻断时,未观察到腺苷对残留离子电流的影响。结果表明,腺苷抑制诱发的神经递质分泌与通过电压门控性P / Q Ca 2 + 通道的Ca 2 + 钙进入的减少有关神经肌肉接头。腺苷可能通过两栖动物和哺乳动物神经肌肉接头处的不同机制抑制ACh的释放,但分泌设备也可能与小鼠的Ca 2 + 通道更紧密地偶联,从而导致Ca 2 + 电流的变化反映了对分泌机制的影响。

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