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PSD-95 的突触后定位受 TrkB 信号转导下游的所有三种途径调节。

Postsynaptic localization of PSD-95 is regulated by all three pathways downstream of TrkB signaling.

机构信息

Department of Anatomy and Cell Biology, University of Illinois at Chicago Chicago, IL, USA ; McGovern Institute for Brain Research, Massachusetts Institute of Technology Cambridge, MA, USA ; Constantine-Paton Laboratory, Department of Brain and Cognitive Science, McGovern Institute for Brain Research, Massachusetts Institute of Technology Cambridge, MA USA.

McGovern Institute for Brain Research, Massachusetts Institute of Technology Cambridge, MA, USA ; Constantine-Paton Laboratory, Department of Brain and Cognitive Science, McGovern Institute for Brain Research, Massachusetts Institute of Technology Cambridge, MA USA ; Department of Biology, McGovern Institute for Brain Research, Massachusetts Institute of Technology Cambridge, MA, USA.

出版信息

Front Synaptic Neurosci. 2014 Mar 31;6:6. doi: 10.3389/fnsyn.2014.00006. eCollection 2014.

Abstract

Brain-derived neurotrophic factor (BDNF) and its receptor TrkB regulate synaptic plasticity. TrkB triggers three downstream signaling pathways; Phosphatidylinositol 3-kinase (PI3K), Phospholipase Cγ (PLCγ) and Mitogen activated protein kinases/Extracellular signal-regulated kinases (MAPK/ERK). We previously showed two distinct mechanisms whereby BDNF-TrkB pathway controls trafficking of PSD-95, which is the major scaffold at excitatory synapses and is critical for synapse maturation. BDNF activates the PI3K-Akt pathway and regulates synaptic delivery of PSD-95 via vesicular transport (Yoshii and Constantine-Paton, 2007). BDNF-TrkB signaling also triggers PSD-95 palmitoylation and its transport to synapses through the phosphorylation of the palmitoylation enzyme ZDHHC8 by a protein kinase C (PKC; Yoshii etal., 2011). The second study used PKC inhibitors chelerythrine as well as a synthetic zeta inhibitory peptide (ZIP) which was originally designed to block the brain-specific PKC isoform protein kinase Mϖ (PKMϖ). However, recent studies raise concerns about specificity of ZIP. Here, we assessed the contribution of TrkB and its three downstream pathways to the synaptic distribution of endogenous PSD-95 in cultured neurons using chemical and genetic interventions. We confirmed that TrkB, PLC, and PI3K were critical for the postsynaptic distribution of PSD-95. Furthermore, suppression of MAPK/ERK also disrupted PSD-95 expression. Next, we examined the contribution of PKC. While both chelerythrine and ZIP suppressed the postsynaptic localization of PSD-95, RNA interference for PKMϖ did not have a significant effect. This result suggests that the ZIP peptide, widely used as the "specific" PKMϖ antagonist by many investigators may block a PKC variant other than PKMϖ such as PKCλ/ι. Our results indicate that TrkB regulates postsynaptic localization of PSD-95 through all three downstream pathways, but also recommend further work to identify other PKC variants that regulate palmitoylation and synaptic localization of PSD-95.

摘要

脑源性神经营养因子(BDNF)及其受体 TrkB 调节突触可塑性。TrkB 触发三种下游信号通路;磷脂酰肌醇 3-激酶(PI3K)、磷酯酶 Cγ(PLCγ)和丝裂原活化蛋白激酶/细胞外信号调节激酶(MAPK/ERK)。我们之前曾展示过两种不同的机制,BDNF-TrkB 途径通过突触后致密物-95(PSD-95)的运输来控制突触后致密物-95 的运输,PSD-95 是兴奋性突触的主要支架,对突触成熟至关重要。BDNF 激活 PI3K-Akt 途径,并通过小泡运输调节 PSD-95 的突触传递(Yoshii 和 Constantine-Paton,2007)。BDNF-TrkB 信号还通过蛋白激酶 C(PKC)对棕榈酰化酶 ZDHHC8 的磷酸化触发 PSD-95 的棕榈酰化及其通过突触的运输(Yoshii 等人,2011)。第二项研究使用蛋白激酶 C 抑制剂 Chelerythrine 以及最初设计用于阻断大脑特异性蛋白激酶 Mϖ(PKMϖ)的合成 ζ 抑制肽(ZIP)。然而,最近的研究对 ZIP 的特异性提出了质疑。在这里,我们使用化学和遗传干预措施,评估了 TrkB 及其三种下游途径对培养神经元中内源性 PSD-95 的突触分布的贡献。我们证实 TrkB、PLC 和 PI3K 对 PSD-95 的突触后分布至关重要。此外,抑制 MAPK/ERK 也破坏了 PSD-95 的表达。接下来,我们研究了 PKC 的贡献。虽然 Chelerythrine 和 ZIP 都抑制了 PSD-95 的突触后定位,但 PKMϖ 的 RNA 干扰没有显著影响。这一结果表明,ZIP 肽,被许多研究人员广泛用作“特异性”PKMϖ 拮抗剂,可能会阻断除 PKMϖ 以外的其他 PKC 变体,如 PKCλ/ι。我们的结果表明,TrkB 通过所有三种下游途径调节 PSD-95 的突触后定位,但也建议进一步研究以确定其他调节 PSD-95 的棕榈酰化和突触定位的 PKC 变体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66a1/3978359/b261562c67d6/fnsyn-06-00006-g001.jpg

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