Nusbaum Michael P, Blitz Dawn M, Marder Eve
Department of Neuroscience, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Department of Biology, Miami University, Oxford, Ohio 45056, USA.
Nat Rev Neurosci. 2017 Jul;18(7):389-403. doi: 10.1038/nrn.2017.56. Epub 2017 Jun 8.
Colocalization of small-molecule and neuropeptide transmitters is common throughout the nervous system of all animals. The resulting co-transmission, which provides conjoint ionotropic ('classical') and metabotropic ('modulatory') actions, includes neuropeptide- specific aspects that are qualitatively different from those that result from metabotropic actions of small-molecule transmitter release. Here, we focus on the flexibility afforded to microcircuits by such co-transmission, using examples from various nervous systems. Insights from such studies indicate that co-transmission mediated even by a single neuron can configure microcircuit activity via an array of contributing mechanisms, operating on multiple timescales, to enhance both behavioural flexibility and robustness.
小分子递质和神经肽递质的共定位在所有动物的神经系统中都很常见。由此产生的共同传递,提供了联合离子型(“经典”)和代谢型(“调制”)作用,包括神经肽特异性方面,这些方面在质上不同于小分子递质释放的代谢型作用所产生的方面。在这里,我们以各种神经系统的例子为重点,探讨这种共同传递赋予微电路的灵活性。这些研究的见解表明,即使由单个神经元介导的共同传递也可以通过一系列作用机制来配置微电路活动,这些机制在多个时间尺度上起作用,以增强行为的灵活性和稳健性。