1.Neurobiological Functions of the Period Circadian Clock 2 Gene, Per2.
Mikyung KIM ; June Bryan DE LA PEÑA ; Jae Hoon CHEONG ; Hee Jin KIM
Biomolecules & Therapeutics 2018;26(4):358-367
Most organisms have adapted to a circadian rhythm that follows a roughly 24-hour cycle, which is modulated by both internal (clock-related genes) and external (environment) factors. In such organisms, the central nervous system (CNS) is influenced by the circadian rhythm of individual cells. Furthermore, the period circadian clock 2 (Per2) gene is an important component of the circadian clock, which modulates the circadian rhythm. Per2 is mainly expressed in the suprachiasmatic nucleus (SCN) of the hypothalamus as well as other brain areas, including the midbrain and forebrain. This indicates that Per2 may affect various neurobiological activities such as sleeping, depression, and addiction. In this review, we focus on the neurobiological functions of Per2, which could help to better understand its roles in the CNS.
Brain
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Central Nervous System
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Circadian Clocks*
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Circadian Rhythm
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Depression
;
Hypothalamus
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Mesencephalon
;
Neurotransmitter Agents
;
Prosencephalon
;
Suprachiasmatic Nucleus
2.The Abuse Potential of α-Piperidinopropiophenone (PIPP) and α-Piperidinopentiothiophenone (PIVT), Two New Synthetic Cathinones with Piperidine Ring Substituent.
Chrislean Jun BOTANAS ; Seong Shoon YOON ; June Bryan DE LA PEÑA ; Irene Joy DELA PEÑA ; Mikyung KIM ; Taeseon WOO ; Joung Wook SEO ; Choon Gon JANG ; Kyung Tae PARK ; Young Hun LEE ; Yong Sup LEE ; Hee Jin KIM ; Jae Hoon CHEONG
Biomolecules & Therapeutics 2017;25(2):122-129
A diversity of synthetic cathinones has flooded the recreational drug marketplace worldwide. This variety is often a response to legal control actions for one specific compound (e.g. methcathinone) which has resulted in the emergence of closely related replacement. Based on recent trends, the nitrogen atom is one of the sites in the cathinone molecule being explored by designer type modifications. In this study, we designed and synthesized two new synthetic cathinones, (1) α-piperidinopropiophenone (PIPP) and (2) α-piperidinopentiothiophenone (PIVT), which have piperidine ring substituent on their nitrogen atom. Thereafter, we evaluated whether these two compounds have an abuse potential through the conditioned place preference (CPP) in mice and self-administration (SA) in rats. We also investigated whether the substances can induce locomotor sensitization in mice following 7 days daily injection and challenge. qRT-PCR analyses were conducted to determine their effects on dopamine-related genes in the striatum. PIPP (10 and 30 mg/kg) induced CPP in mice, but not PIVT. However, both synthetic cathinones were not self-administered by the rats and did not induce locomotor sensitization in mice. qRT-PCR analyses showed that PIPP, but not PIVT, reduced dopamine transporter gene expression in the striatum. These data indicate that PIPP, but not PIVT, has rewarding effects, which may be attributed to its ability to affect dopamine transporter gene expression. Altogether, this study suggests that PIPP may have abuse potential. Careful monitoring of this type of cathinone and related drugs are advocated.
Animals
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Dopamine Plasma Membrane Transport Proteins
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Gene Expression
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Mice
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Nitrogen
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Rats
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Reward
3.Protection Against Electroshock- and Pentylenetetrazol-induced Seizures by the Water Extract of Rehmannia glutinous can be Mediated through GABA Receptor-chloride Channel Complexes.
Mikyung KIM ; Hee Jin KIM ; Sung Mok KIM ; June Bryan DE LA PEÑA ; Irene Joy DELA PEÑA ; Chrislean Jun BOTANAS ; Taeseon WOO ; Yong Soo LEE ; Jong Hoon RYU ; Jae Hoon CHEONG
Natural Product Sciences 2017;23(1):40-45
Epilepsy is a brain disorder that affects millions of people worldwide. It is characterized by recurrent and unpredictable seizures that are usually controlled with antiepileptic/anticonvulsive drugs. However, most antiepileptic drugs produce various side effects such as tolerance and sedation. Thus, there is a growing interest for alternative anticonvulsive drugs, preferably from natural or herbal sources. In this study, we evaluated the anticonvulsive effects of Rehmannia glutinosa (RG). The anticonvulsive effect of RG extract was evaluated using electroshock- and chemical-induced seizure tests in mice. To identify its probable mechanism of action, the effects of RG extract on Cl− influx was measured in vitro. We found that RG extract has anticonvulsive effects against electroshock-induced seizures, as indicated by an increased seizure threshold in mice. The RG extract also decreased the percentage of seizure responses induced by the GABAergic antagonist, pentylenetetrazole. These results suggest that the anticonvulsive effects of RG extract are mediated through a GABAergic mechanism. In support of this mechanism, our in vitro test showed that RG extract increases intracellular Cl− influx. Furthermore, RG extract did not show sedative and/or muscle relaxant effects in the open-field and rota-rod tests. Altogether, these results confirm that RG extract could be a herbal anticonvulsant and a potential alternative for clinical use.
Animals
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Anticonvulsants
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Brain Diseases
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Epilepsy
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gamma-Aminobutyric Acid*
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In Vitro Techniques
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Mice
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Pentylenetetrazole
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Rehmannia*
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Seizures*
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Water*
4.Evaluation of the Abuse Potential of Novel Amphetamine Derivatives with Modifications on the Amine (NBNA) and Phenyl (EDA, PMEA, 2-APN) Sites.
Raly James Perez CUSTODIO ; Chrislean Jun BOTANAS ; Seong Shoon YOON ; June Bryan DE LA PEÑA ; Irene Joy DELA PEÑA ; Mikyung KIM ; Taeseon WOO ; Joung Wook SEO ; Choon Gon JANG ; Yong Ho KWON ; Nam Yong KIM ; Yong Sup LEE ; Hee Jin KIM ; Jae Hoon CHEONG
Biomolecules & Therapeutics 2017;25(6):578-585
Recently, there has been a rise in the number of amphetamine derivatives that serve as substitutes for controlled substances (e.g. amphetamine and methamphetamine) on the global illegal drug market. These substances are capable of producing rewarding effects similar to their parent drug. In anticipation of the future rise of new and similar psychoactive substances, we designed and synthesized four novel amphetamine derivatives with N-benzyl, N-benzylamphetamine HCl (NBNA) substituent on the amine region, 1,4-dioxane ring, ethylenedioxy-amphetamine HCl (EDA), methyl, para-methylamphetamine HCl (PMEA), and naphthalene, 2-(aminopropyl) naphthalene HCl (2-APN) substituents on the phenyl site. Then, we evaluated their abuse potential in the conditioned place preference (CPP) test in mice and self-administration (SA) test in rats. We also investigated the psychostimulant properties of the novel drugs using the locomotor sensitization test in mice. Moreover, we performed qRT-PCR analyses to explore the effects of the novel drugs on the expression of D1 and D2 dopamine receptor genes in the striatum. NBNA, but not EDA, PMEA, and 2-APN, induced CPP and SA in rodents. None of the test drugs have produced locomotor sensitization. qRT-PCR analyses demonstrated that NBNA increased the expression of striatal D1 dopamine receptor genes. These data indicate that NBNA yields rewarding effects, suggesting potential for abuse. Continual observation for the rise of related substances is thus strongly encouraged.
Amphetamine*
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Animals
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Controlled Substances
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Humans
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Mice
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Parents
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Rats
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Receptors, Dopamine
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Reward
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Rodentia