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Non-scaling regulation of AMPA receptors in homeostatic synaptic plasticity

机译:稳态突触可塑性中AMPA受体的非缩放调节

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摘要

Homeostatic synaptic plasticity (HSP) as an activity-dependent negative feedback regulation of synaptic strength plays important roles in the maintenance of neuronal and neural circuitry stability. A primary cellular substrate for HSP expression is alterations in synaptic accumulation of glutamatergic alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptors (AMPAR). It is widely believed that during HSP, AMPAR accumulation changes with the same proportion at each synapse of a neuron, a process known as synaptic scaling. However, direct evidence on AMPAR synaptic scaling remains largely lacking. Here we report a direct examination of inactivity-induced homeostatic scaling of AMPAR at individual synapse by live-imaging. Surprisingly, instead of uniform up-scaling, a scattered pattern of changes in synaptic AMPAR was observed in cultured rat hippocampal neurons. While the majority of synapses showed up-regulation after activity inhibition, a reduction of AMPAR could be detected in certain synapses. More importantly, among the up-regulated synapses, a wide range of AMPAR changes was observed in synapses of the same neuron. We also found that synapses with higher levels of pre-existing AMPAR tend to be up-regulated by lesser extents, whereas the locations of synapses relative to the soma seem not affecting AMPAR scaling strengths. In addition, we observed strong competition between neighboring synapses during HSP. These results reveal that synaptic AMPAR may not be scaled during HSP, suggesting novel molecular mechanisms for information processing and storage at synapses.
机译:稳态突触塑性(HSP)作为突触强度的活性依赖性负反馈调节在维持神经元和神经电路稳定性中起重要作用。用于HSP表达的一次细胞基质是谷氨酸氨基甲氨基-3-羟基-5-甲基-4-异恶唑丙酸受体(AMPAR)的突触积累中的改变。众所周知,在HSP期间,AMPAR累积在神经元的每个突触在每个突触的比例中变化,称为突触缩放的过程。然而,关于AMPAR突触缩放的直接证据仍然很大程度上缺乏。在这里,我们通过Live-映像报告了在单个突触处于个体突触的AMPAR的不活动诱导的稳态思考。令人惊讶的是,在培养的大鼠海马神经元中,观察到突触氨分散的突触AMPAR的散射变化模式的散射模式。虽然大部分突触在活动抑制后显示上调,但可以在某些突触中检测到AMPAR的减少。更重要的是,在上调突触中,在同一神经元的突触中观察到各种AMPAR变化。我们还发现,具有更高级别的预先存在的AMPAR的突触往往由较小的范围上调,而相对于SOMA的突触位置似乎不影响AMPAR缩放优势。此外,我们在HSP期间观察到邻近突触之间的强烈竞争。这些结果表明,在HSP期间,突触AMPAR可能不会缩放,表明在突触处的信息处理和存储的新型分子机制。

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