The antidepressant citalopram inhibits delayed rectifier outward K⁺ current in mouse cortical neurons. 2012

Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
Institutes of Brain Science, School of Life Sciences and State Key Laboratory of Medical Neurobiology, Fudan University, Shanghai, China.

Citalopram, a selective serotonin (5-HT) reuptake inhibitor (SSRI) as well as an antidepressant, is thought to exert its effects by increasing synaptic 5-HT levels. However, few studies have addressed the possibility that citalopram has other molecular mechanisms of action. We examined the effects of citalopram on delayed rectifier outward K(+) current (I(K) ) in mouse cortical neurons. Extracellular citalopram reversibly inhibited I(K) in a dose-dependent manner and significantly shifted both steady-state activation and inactivation curves toward hyperpolarization. Neither 5-HT itself nor antagonists of 5-HT and dopamine receptors could abolish citalopram-induced inhibition of I(K) . In addition, intracellular application of GTPγ-S similarly failed to prevent the inhibition of I(K) by citalopram. When applied intracellularly, citalopram had no effect on I(K) and did not influence the reduction of I(K) induced by extracellular citalopram. The effect of citalopram was use dependent, but not frequency dependent, and it did not require channel opening. Electrophysiological recordings in acute cortical slice showed that citalopram significantly reduced the action potential (AP) firing frequency of cortical neurons and increased action potential duration (APD). The selective Kv2.1 subunit blocker Jingzhaotoxin-III (JZTX-III) did not abolish citalopram-induced I(K) inhibition. Transfection of HEK293 cells with Kv2.1 or Kv2.2 constructs indicated that citalopram mainly inhibited Kv2.2 current. We suggest that citalopram-induced inhibition of I(K) in mouse cortical neurons is independent of G-protein-coupled receptors and might exert its antidepressant effects by enhancing presynaptic efficiency. Our results may help to explain some of the unknown therapeutic effects of citalopram.

UI MeSH Term Description Entries
D008813 Mice, Inbred ICR An inbred strain of mouse that is used as a general purpose research strain, for therapeutic drug testing, and for the genetic analysis of CARCINOGEN-induced COLON CANCER. Mice, Inbred ICRC,Mice, ICR,Mouse, ICR,Mouse, Inbred ICR,Mouse, Inbred ICRC,ICR Mice,ICR Mice, Inbred,ICR Mouse,ICR Mouse, Inbred,ICRC Mice, Inbred,ICRC Mouse, Inbred,Inbred ICR Mice,Inbred ICR Mouse,Inbred ICRC Mice,Inbred ICRC Mouse
D009433 Neural Inhibition The function of opposing or restraining the excitation of neurons or their target excitable cells. Inhibition, Neural
D009474 Neurons The basic cellular units of nervous tissue. Each neuron consists of a body, an axon, and dendrites. Their purpose is to receive, conduct, and transmit impulses in the NERVOUS SYSTEM. Nerve Cells,Cell, Nerve,Cells, Nerve,Nerve Cell,Neuron
D010455 Peptides Members of the class of compounds composed of AMINO ACIDS joined together by peptide bonds between adjacent amino acids into linear, branched or cyclical structures. OLIGOPEPTIDES are composed of approximately 2-12 amino acids. Polypeptides are composed of approximately 13 or more amino acids. PROTEINS are considered to be larger versions of peptides that can form into complex structures such as ENZYMES and RECEPTORS. Peptide,Polypeptide,Polypeptides
D002478 Cells, Cultured Cells propagated in vitro in special media conducive to their growth. Cultured cells are used to study developmental, morphologic, metabolic, physiologic, and genetic processes, among others. Cultured Cells,Cell, Cultured,Cultured Cell
D002540 Cerebral Cortex The thin layer of GRAY MATTER on the surface of the CEREBRAL HEMISPHERES that develops from the TELENCEPHALON and folds into gyri and sulci. It reaches its highest development in humans and is responsible for intellectual faculties and higher mental functions. Allocortex,Archipallium,Cortex Cerebri,Cortical Plate,Paleocortex,Periallocortex,Allocortices,Archipalliums,Cerebral Cortices,Cortex Cerebrus,Cortex, Cerebral,Cortical Plates,Paleocortices,Periallocortices,Plate, Cortical
D004305 Dose-Response Relationship, Drug The relationship between the dose of an administered drug and the response of the organism to the drug. Dose Response Relationship, Drug,Dose-Response Relationships, Drug,Drug Dose-Response Relationship,Drug Dose-Response Relationships,Relationship, Drug Dose-Response,Relationships, Drug Dose-Response
D004347 Drug Interactions The action of a drug that may affect the activity, metabolism, or toxicity of another drug. Drug Interaction,Interaction, Drug,Interactions, Drug
D004558 Electric Stimulation Use of electric potential or currents to elicit biological responses. Stimulation, Electric,Electrical Stimulation,Electric Stimulations,Electrical Stimulations,Stimulation, Electrical,Stimulations, Electric,Stimulations, Electrical
D004622 Embryo, Mammalian The entity of a developing mammal (MAMMALS), generally from the cleavage of a ZYGOTE to the end of embryonic differentiation of basic structures. For the human embryo, this represents the first two months of intrauterine development preceding the stages of the FETUS. Embryonic Structures, Mammalian,Mammalian Embryo,Mammalian Embryo Structures,Mammalian Embryonic Structures,Embryo Structure, Mammalian,Embryo Structures, Mammalian,Embryonic Structure, Mammalian,Embryos, Mammalian,Mammalian Embryo Structure,Mammalian Embryonic Structure,Mammalian Embryos,Structure, Mammalian Embryo,Structure, Mammalian Embryonic,Structures, Mammalian Embryo,Structures, Mammalian Embryonic

Related Publications

Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
March 2001, Acta pharmacologica Sinica,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
September 1999, Journal of neurochemistry,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
February 1998, Biochemical and biophysical research communications,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
July 2002, Yao xue xue bao = Acta pharmaceutica Sinica,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
August 2003, Sheng li xue bao : [Acta physiologica Sinica],
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
July 1998, The American journal of physiology,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
May 1981, Brain research,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
February 2011, Journal of cellular physiology,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
November 2009, Glia,
Xiao-Qin Zhan, and Yan-Lin He, and Jin-Jing Yao, and Jia-Li Zhuang, and Yan-Ai Mei
April 2004, The International journal of neuroscience,
Copied contents to your clipboard!