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环腺苷酸依赖的蛋白激酶和 D1 多巴胺受体调节二酰基甘油脂肪酶-α和突触 2-花生四烯酸甘油信号转导。

Cyclic AMP-dependent protein kinase and D1 dopamine receptors regulate diacylglycerol lipase-α and synaptic 2-arachidonoyl glycerol signaling.

机构信息

Department of Molecular Physiology and Biophysics, Vanderbilt University, Nashville, TN, USA.

Vanderbilt Brain Institute, Vanderbilt University, Nashville, TN, USA.

出版信息

J Neurochem. 2020 May;153(3):334-345. doi: 10.1111/jnc.14972. Epub 2020 Mar 5.

Abstract

Brain endocannabinoids serve as retrograde neurotransmitters, being synthesized in post-synaptic neurons "on demand" and released to bind pre-synaptic cannabinoid receptors and suppress glutamatergic or GABAergic transmission. The most abundant brain endocannabinoid, 2 arachidonoyl glycerol (2-AG), is primarily synthesized by diacylglycerol lipase-α (DGLα), which is activated by poorly understood mechanisms in response to calcium influx following post-synaptic depolarization and/or the activation of G -coupled group 1 metabotropic glutamate receptors. However, the impact of other neurotransmitters and their downstream signaling pathways on synaptic 2-AG signaling has not been intensively studied. Here, we found that DGLα activity in membrane fractions from transfected HEK293T cells was significantly increased by in vitro phosphorylation using cyclic AMP-dependent protein kinase (PKA). Moreover, PKA directly phosphorylated DGLα at Ser798 in vitro. Elevation of cAMP levels in HEK293 cells expressing DGLα increased Ser798 phosphorylation, as detected using a phospho-Ser798-specific antibody, and enhanced DGLα activity; this in situ enhancement of DGLα activity was prevented by mutation of Ser798 to Ala. We investigated the impact of PKA on synaptic 2-AG mobilization in mouse striatal slices by manipulating D1-dopamine receptor (D1R) signaling and assessing depolarization-induced suppression of excitation, a DGLα- and 2-AG-dependent form of short-term synaptic depression. The magnitude of depolarization-enhanced suppression of excitation in direct pathway medium spiny neurons was increased by pre-incubation with a D1R agonist, and this enhancement was blocked by post-synaptic inhibition of PKA. Taken together, these findings provide new molecular insights into the complex mechanisms regulating synaptic endocannabinoid signaling.

摘要

脑内源性大麻素作为逆行神经递质,在突触后神经元中“按需”合成,并释放到突触前大麻素受体结合,抑制谷氨酸能或 GABA 能传递。最丰富的脑内源性大麻素,2 花生四烯酰甘油(2-AG),主要由二酰基甘油脂肪酶-α(DGLα)合成,其通过在突触后去极化后钙内流和/或 G 偶联组 1 代谢型谷氨酸受体激活后,通过尚不清楚的机制激活。然而,其他神经递质及其下游信号通路对突触 2-AG 信号的影响尚未得到深入研究。在这里,我们发现用环腺苷酸依赖性蛋白激酶(PKA)在体外对转染的 HEK293T 细胞的膜部分进行磷酸化,可显著增加 DGLα 活性。此外,PKA 在体外直接磷酸化 DGLα 的 Ser798。在表达 DGLα 的 HEK293 细胞中升高 cAMP 水平,增加了 Ser798 的磷酸化,用磷酸化 Ser798 特异性抗体检测到,并增强了 DGLα 的活性;这种 DGLα 活性的原位增强被 Ser798 突变为 Ala 所阻止。我们通过操纵 D1-多巴胺受体(D1R)信号并评估去极化诱导的兴奋抑制,一种 DGLα 和 2-AG 依赖的短期突触抑制形式,研究了 PKA 对小鼠纹状体切片中突触 2-AG 动员的影响。直接途径中的中脑神经元去极化增强的兴奋抑制幅度在与 D1R 激动剂孵育后增加,这种增强被突触后 PKA 抑制所阻断。总之,这些发现为调节突触内源性大麻素信号的复杂机制提供了新的分子见解。

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