Department of Functional Genomics, Center for Neurogenomics and Cognitive Research, VU University Amsterdam and VU Medical Center, 1081 HV Amsterdam, Netherlands.
J Cell Biol. 2012 Apr 16;197(2):327-37. doi: 10.1083/jcb.201112135. Epub 2012 Apr 9.
Different regulatory principles influence synaptic coupling between neurons, including positional principles. In dendrites of pyramidal neurons, postsynaptic sensitivity depends on synapse location, with distal synapses having the highest gain. In this paper, we investigate whether similar rules exist for presynaptic terminals in mixed networks of pyramidal and dentate gyrus (DG) neurons. Unexpectedly, distal synapses had the lowest staining intensities for vesicular proteins vGlut, vGAT, Synaptotagmin, and VAMP and for many nonvesicular proteins, including Bassoon, Munc18, and Syntaxin. Concomitantly, distal synapses displayed less vesicle release upon stimulation. This dependence of presynaptic strength on dendritic position persisted after chronically blocking action potential firing and postsynaptic receptors but was markedly reduced on DG dendrites compared with pyramidal dendrites. These data reveal a novel rule, independent of neuronal activity, which regulates presynaptic strength according to dendritic position, with the strongest terminals closest to the soma. This gradient is opposite to postsynaptic gradients observed in pyramidal dendrites, and different cell types apply this rule to a different extent.
不同的调控原则会影响神经元之间的突触连接,包括位置原则。在锥体神经元的树突中,突触后敏感度取决于突触的位置,远端突触的增益最高。在本文中,我们研究了在锥体和齿状回(DG)神经元混合网络中,类似的规则是否存在于突触前末梢。出乎意料的是,远端突触的囊泡蛋白 vGlut、vGAT、Synaptotagmin 和 VAMP 以及许多非囊泡蛋白,包括 Bassoon、Munc18 和 Syntaxin 的染色强度最低。同时,刺激时远端突触的囊泡释放减少。这种突触前强度对树突位置的依赖性在慢性阻断动作电位放电和突触后受体后仍然存在,但与锥体树突相比,DG 树突上的这种依赖性明显降低。这些数据揭示了一种新的规则,它独立于神经元活动,根据树突位置调节突触前强度,最强的末梢最接近胞体。这种梯度与在锥体树突中观察到的突触后梯度相反,不同的细胞类型在不同程度上应用这一规则。