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Synaptic strength regulated by palmitate cycling on PSD-95.由PSD-95上的棕榈酸循环调节的突触强度。
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突触后密度蛋白95(PSD-95)调节大鼠大脑皮层的突触传递和可塑性。

PSD-95 regulates synaptic transmission and plasticity in rat cerebral cortex.

作者信息

Béïque Jean-Claude, Andrade Rodrigo

机构信息

Department of Psychiatry and Behavioral Neurosciences, Wayne State University School of Medicine, Detroit, MI 48201, USA.

出版信息

J Physiol. 2003 Feb 1;546(Pt 3):859-67. doi: 10.1113/jphysiol.2002.031369.

DOI:10.1113/jphysiol.2002.031369
PMID:12563010
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2342599/
Abstract

PSD-95 is one of the most abundant proteins found in the postsynaptic density of excitatory synapses. However, the precise functional role played by PSD-95 in regulating synaptic transmission and plasticity remains undefined. To address this issue, we have overexpressed PSD-95 in cortical pyramidal neurons in organotypic brain slices using particle-mediated gene transfer and assessed the consequences on synaptic transmission and plasticity. The AMPA receptor/NMDA receptor (AMPAR/NMDAR) ratio of evoked EPSCs recorded at +40 mV was greater in PSD-95-transfected pyramidal neurons than in controls. This difference could not be accounted for by a change in rectification of AMPAR-mediated synaptic currents since the current-voltage curves obtained in controls and in PSD-95-transfected neurons were indistinguishable. However, the amplitude of AMPAR-mediated evoked EPSCs was larger in PSD-95-transfected neurons compared to matched controls. Paired-pulse ratio analysis suggested that overexpression of PSD-95 did not alter presynaptic release probability. Transfection of PSD-95 was further accompanied by an increase in the frequency, but not amplitude, of AMPAR-mediated mEPSCs. Together, these results indicate that transfection of PSD-95 increased AMPAR-mediated synaptic transmission. Furthermore, they suggest that this phenomenon reflects an increased number of synapses expressing AMPARs rather than an increased number or function of these receptors at individual synapses. We tested the consequences of these changes on synaptic plasticity and found that PSD-95 transfection greatly enhanced the probability of observing long-term depression. These results thus identify a physiological role for PSD-95 and demonstrate that this protein can play a decisive role in controlling synaptic strength and activity-dependent synaptic plasticity.

摘要

PSD - 95是在兴奋性突触的突触后致密物中发现的最为丰富的蛋白质之一。然而,PSD - 95在调节突触传递和可塑性方面所发挥的精确功能作用仍不明确。为了解决这个问题,我们利用粒子介导的基因转移技术在器官型脑片中的皮质锥体神经元中过表达了PSD - 95,并评估了其对突触传递和可塑性的影响。在+40 mV记录的诱发兴奋性突触后电流(EPSCs)的AMPA受体/NMDA受体(AMPAR/NMDAR)比值在转染PSD - 95的锥体神经元中比对照组更高。这种差异不能用AMPAR介导的突触电流整流的变化来解释,因为在对照组和转染PSD - 95的神经元中获得的电流 - 电压曲线没有区别。然而,与匹配的对照组相比,转染PSD - 95的神经元中AMPAR介导的诱发EPSCs的幅度更大。配对脉冲比率分析表明,PSD - 95的过表达并没有改变突触前释放概率。PSD - 95的转染还伴随着AMPAR介导的微小兴奋性突触后电流(mEPSCs)频率的增加,但幅度没有增加。总之,这些结果表明PSD - 95的转染增加了AMPAR介导的突触传递。此外,它们表明这种现象反映了表达AMPARs的突触数量增加,而不是单个突触处这些受体的数量或功能增加。我们测试了这些变化对突触可塑性的影响,发现PSD - 95转染极大地增加了观察到长时程抑制的概率。因此,这些结果确定了PSD - 95的生理作用,并证明该蛋白在控制突触强度和活动依赖性突触可塑性方面可以发挥决定性作用。