Orientation and Cellular Distribution of Membrane-bound Catechol-O-methyltransferase in Cortical Neurons

邻苯二酚-O-甲基转移酶 多巴胺 突触后电位 细胞外 神经科学 去甲肾上腺素 苯乙醇胺N-甲基转移酶 化学 细胞生物学 生物 生物化学 酪氨酸羟化酶 苯乙醇胺 等位基因 基因 受体
作者
Jingshan Chen,Jian Song,Peixiong Yuan,Qingjun Tian,Yuanyuan Ji,Renee F. Ren‐Patterson,Guangping Liu,Yoshitasu Sei,Daniel R. Weinberger
出处
期刊:Journal of Biological Chemistry [Elsevier BV]
卷期号:286 (40): 34752-34760 被引量:75
标识
DOI:10.1074/jbc.m111.262790
摘要

Catechol-O-methyltransferase (COMT) is a key enzyme for inactivation and metabolism of catechols, including dopamine, norepinephrine, caffeine, and estrogens. It plays an important role in cognition, arousal, pain sensitivity, and stress reactivity in humans and in animal models. The human COMT gene is associated with a diverse spectrum of human behaviors and diseases from cognition and psychiatric disorders to chronic pain and cancer. There are two major forms of COMT proteins, membrane-bound (MB) COMT and soluble (S) COMT. MB-COMT is the main form in the brain. The cellular distribution of MB-COMT in cortical neurons remains unclear and the orientation of MB-COMT on the cellular membrane is controversial. In this study, we demonstrate that MB-COMT is located in the cell body and in axons and dendrites of rat cortical neurons. Analyses of MB-COMT orientation with computer simulation, flow cytometry and a cell surface enzyme assay reveal that the C-terminal catalytic domain of MB-COMT is in the extracellular space, which suggests that MB-COMT can inactivate synaptic and extrasynaptic dopamine on the surface of presynaptic and postsynaptic neurons. Finally, we show that the COMT inhibitor tolcapone induces cell death via the mechanism of apoptosis, and its cytotoxicity is dependent on dosage and correlated with COMT Val/Met genotypes in human lymphoblastoid cells. These results suggest that MB-COMT specific inhibitors can be developed and that tolcapone may be less hazardous at low doses and in specific genetic backgrounds.

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