Neuroscience Paris Seine - Institut de Biologie Paris Seine (NPS - IBPS) INSERM, CNRS, Sorbonne Université, Paris, France.
Laboratoire des Biomolécules, Sorbonne Université, CNRS, ENS, LBM, 75005, Paris, France.
Mol Neurobiol. 2020 Jul;57(7):3118-3142. doi: 10.1007/s12035-020-01912-7. Epub 2020 May 30.
Vesicular glutamate transporters (VGLUTs) control quantal size of glutamatergic transmission and have been the center of numerous studies over the past two decades. VGLUTs contain two independent transport modes that facilitate glutamate packaging into synaptic vesicles and phosphate (Pi) ion transport into the synaptic terminal. While a transmembrane proton electrical gradient established by a vacuolar-type ATPase powers vesicular glutamate transport, recent studies indicate that binding sites and flux properties for chloride, potassium, and protons within VGLUTs themselves regulate VGLUT activity as well. These intrinsic ionic binding and flux properties of VGLUTs can therefore be modulated by neurophysiological conditions to affect levels of glutamate available for release from synapses. Despite their extraordinary importance, specific and high-affinity pharmacological compounds that interact with these sites and regulate VGLUT function, distinguish between the various modes of transport, and the different isoforms themselves, are lacking. In this review, we provide an overview of the physiologic sites for VGLUT regulation that could modulate glutamate release in an over-active synapse or in a disease state.
囊泡谷氨酸转运体(VGLUTs)控制谷氨酸能传递的量子大小,在过去的二十年中一直是众多研究的中心。VGLUTs 包含两种独立的运输模式,促进谷氨酸包装到突触小泡中和磷酸(Pi)离子运输到突触末端。虽然液泡型 ATP 酶建立的跨膜质子电化学梯度为囊泡谷氨酸转运提供动力,但最近的研究表明,VGLUT 本身内的氯离子、钾离子和质子结合位点和通量特性也调节 VGLUT 活性。因此,VGLUT 的这些内在离子结合和通量特性可以通过神经生理条件进行调节,以影响从突触释放的谷氨酸的水平。尽管它们非常重要,但缺乏与这些位点相互作用并调节 VGLUT 功能、区分不同运输模式以及不同同工型本身的特异性和高亲和力的药理学化合物。在这篇综述中,我们概述了 VGLUT 调节的生理部位,这些部位可以调节过度活跃的突触或疾病状态下的谷氨酸释放。