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首页> 外文期刊>Biochemistry (Moscow). Supplement, Series A. Membrane and cell biology >Changes in the Parameters of Quantal Acetylcholine Release after Activation of PAR1-Type Thrombin Receptors at the Mouse Neuromuscular Junctions
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Changes in the Parameters of Quantal Acetylcholine Release after Activation of PAR1-Type Thrombin Receptors at the Mouse Neuromuscular Junctions

机译:在小鼠神经肌肉连接处激活Par1型凝血酶受体后量子乙酰胆碱释放参数的变化

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AbstractIn mature and newly formed neuromuscular synapses of mouse skeletal muscles, miniature endplate potentials (MEPPs) and multiquantal endplate potentials (EPPs) evoked by a single stimulation of the nerve were recorded using intracellular microelectrode technique. The mechanisms underlying the changes in spontaneous and evoked acetylcholine (ACh) release caused by the activation of PAR1-type muscle receptors induced by their peptide agonist TRAP6-NH2were studied. It has been shown for the first time that, in either mature or newly formed motor synapses, the activation of PAR1 that lack presynaptic localization causes a sustained increase in the MEPP amplitude due to the increase in the ACh quantal size at the presynaptic level. It was found that phospholipase C (PLC) participates in the signaling mechanism triggered by the PAR1 activation. Exogenously applied brain-derived neurotrophic factor (BDNF) mimics the effect of activation of PAR1 by TRAP6-NH2. Moreover, an increase in the MEPP amplitude caused by the peptide PAR1 agonist was fully prevented by blocking the BDNF receptors–tropomyosin receptor kinases B (TrkB). Thus, it has been shown for the first time that the increase in ACh quantal size due to the activation of PAR1 in motor synapses is mediated by a complex signaling cascade that starts at the postsynaptic level of the motor synapse and ends at the presynaptic level. It is expected that the activation of PAR1 at the muscle fiber membrane followed by the PLC upregulation results in the release of neurotrophin BDNF as a retrograde signal. Its effect on the presynaptic TrkB receptors triggers the cascade leading to an increase in the quantal size of ACh.]]>
机译:<![cdata [ <标题>摘要 ara>在成熟和新形成的小鼠骨骼肌的神经肌肉突触,微型端板电位(mepps)和多谜端板通过细胞内微电极技术记录通过单一刺激刺激神经引起的电位(EPP)。研究了由其肽激动剂Trap6-NH <下标> 2 诱导的PAR1型肌肉受体激活引起的自发和诱发乙酰胆碱(ACH)释放的机制。它已经首次示出了,在成熟或新形成的电动机突触中,由于突触前水平的ACH量子尺寸的增加,PAR1的激活导致MEPP幅度的持续增加。发现磷脂酶C(PLC)参与PAR1激活触发的信号传导机制。外源应用脑衍生的神经营养因子(BDNF)模仿PAR1的激活效果,TAP6-NH <下标> 2 。此外,通过阻断BDNF受体 - 刺激剂-Propomyosin受体激酶B(trkb),完全防止由肽PAR1激动剂引起的MEPP振幅的增加。因此,首次示出了首次示出了由于在电动机突触中的PAR1中的PAR1引起的ACH量子尺寸的增加是由复杂的信令级联介导的,该级联在电机突触的突触水平处开始并在突触前水平结束。预期在肌纤维膜中激活PAR1,然后是PLC上调导致神经营养蛋白BDNF作为逆行信号的释放。它对突触前TRKB受体的影响触发了级联导致ACH的量量大的增加。 ]]>

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