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Glutamate at the Vertebrate Neuromuscular Junction: From Modulation to Neurotransmission

机译:脊椎动物神经肌肉交界处的谷氨酸:从调节到神经传递。

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摘要

Although acetylcholine is the major neurotransmitter operating at the skeletal neuromuscular junction of many invertebrates and of vertebrates, glutamate participates in modulating cholinergic transmission and plastic changes in the last. Presynaptic terminals of neuromuscular junctions contain and release glutamate that contribute to the regulation of synaptic neurotransmission through its interaction with pre- and post-synaptic receptors activating downstream signaling pathways that tune synaptic efficacy and plasticity. During vertebrate development, the chemical nature of the neurotransmitter at the vertebrate neuromuscular junction can be experimentally shifted from acetylcholine to other mediators (including glutamate) through the modulation of calcium dynamics in motoneurons and, when the neurotransmitter changes, the muscle fiber expresses and assembles new receptors to match the nature of the new mediator. Finally, in adult rodents, by diverting descending spinal glutamatergic axons to a denervated muscle, a functional reinnervation can be achieved with the formation of new neuromuscular junctions that use glutamate as neurotransmitter and express ionotropic glutamate receptors and other markers of central glutamatergic synapses. Here, we summarize the past and recent experimental evidences in support of a role of glutamate as a mediator at the synapse between the motor nerve ending and the skeletal muscle fiber, focusing on the molecules and signaling pathways that are present and activated by glutamate at the vertebrate neuromuscular junction.
机译:尽管乙酰胆碱是在许多无脊椎动物和脊椎动物的骨骼神经肌肉接头处起作用的主要神经递质,但谷氨酸最后参与调节胆碱能传递和可塑性改变。神经肌肉接头的突触前末端含有并释放谷氨酸,谷氨酸通过其与突触前和突触后受体的相互作用来激活突触功效和可塑性的下游信号通路,从而对突触神经传递的调节作出贡献。在脊椎动物发育过程中,可以通过调节运动神经元中钙动力学来将脊椎动物神经肌肉接头处神经递质的化学性质从乙酰胆碱转移到其他介体(包括谷氨酸),并且当神经递质发生变化时,肌肉纤维会表达并组装新的神经递质。受体以匹配新介体的性质。最后,在成年啮齿动物中,通过将下降的脊髓谷氨酸能轴突转移至神经支配的肌肉,可以形成新的神经肌肉接头,从而实现功能性神经支配,该神经肌肉接头使用谷氨酸作为神经递质并表达离子型谷氨酸受体和中央谷氨酸能突触的其他标记。在这里,我们总结了过去和最近的实验证据,以支持谷氨酸在运动神经末梢和骨骼肌纤维之间的突触中作为介体的作用,重点研究谷氨酸在谷氨酸分子存在和激活的分子和信号通路。脊椎动物神经肌肉接头。

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