1.Exploring the Validity of Valproic Acid Animal Model of Autism.
Darine Froy N MABUNGA ; Edson Luck T GONZALES ; Ji Woon KIM ; Ki Chan KIM ; Chan Young SHIN
Experimental Neurobiology 2015;24(4):285-300
The valproic acid (VPA) animal model of autism spectrum disorder (ASD) is one of the most widely used animal model in the field. Like any other disease models, it can't model the totality of the features seen in autism. Then, is it valid to model autism? This model demonstrates many of the structural and behavioral features that can be observed in individuals with autism. These similarities enable the model to define relevant pathways of developmental dysregulation resulting from environmental manipulation. The uncovering of these complex pathways resulted to the growing pool of potential therapeutic candidates addressing the core symptoms of ASD. Here, we summarize the validity points of VPA that may or may not qualify it as a valid animal model of ASD.
Animals*
;
Autistic Disorder*
;
Child
;
Models, Animal*
;
Valproic Acid*
;
Autism Spectrum Disorder
2.Clinical and Neurobiological Relevance of Current Animal Models of Autism Spectrum Disorders.
Ki Chan KIM ; Edson Luck GONZALES ; María T LÁZARO ; Chang Soon CHOI ; Geon Ho BAHN ; Hee Jeong YOO ; Chan Young SHIN
Biomolecules & Therapeutics 2016;24(3):207-243
Autism spectrum disorder (ASD) is a neurodevelopmental disorder characterized by social and communication impairments, as well as repetitive and restrictive behaviors. The phenotypic heterogeneity of ASD has made it overwhelmingly difficult to determine the exact etiology and pathophysiology underlying the core symptoms, which are often accompanied by comorbidities such as hyperactivity, seizures, and sensorimotor abnormalities. To our benefit, the advent of animal models has allowed us to assess and test diverse risk factors of ASD, both genetic and environmental, and measure their contribution to the manifestation of autistic symptoms. At a broader scale, rodent models have helped consolidate molecular pathways and unify the neurophysiological mechanisms underlying each one of the various etiologies. This approach will potentially enable the stratification of ASD into clinical, molecular, and neurophenotypic subgroups, further proving their translational utility. It is henceforth paramount to establish a common ground of mechanistic theories from complementing results in preclinical research. In this review, we cluster the ASD animal models into lesion and genetic models and further classify them based on the corresponding environmental, epigenetic and genetic factors. Finally, we summarize the symptoms and neuropathological highlights for each model and make critical comparisons that elucidate their clinical and neurobiological relevance.
Animals*
;
Autism Spectrum Disorder*
;
Autistic Disorder*
;
Comorbidity
;
Complement System Proteins
;
Epigenomics
;
Models, Animal*
;
Models, Genetic
;
Neurodevelopmental Disorders
;
Population Characteristics
;
Risk Factors
;
Rodentia
;
Seizures
3.Effects of Triclosan on Neural Stem Cell Viability and Survival.
Bo Kyung PARK ; Edson Luck T GONZALES ; Sung Min YANG ; Minji BANG ; Chang Soon CHOI ; Chan Young SHIN
Biomolecules & Therapeutics 2016;24(1):99-107
Triclosan is an antimicrobial or sanitizing agent used in personal care and household products such as toothpaste, soaps, mouthwashes and kitchen utensils. There are increasing evidence of the potentially harmful effects of triclosan in many systemic and cellular processes of the body. In this study, we investigated the effects of triclosan in the survivability of cultured rat neural stem cells (NSCs). Cortical cells from embryonic day 14 rat embryos were isolated and cultured in vitro. After stabilizing the culture, triclosan was introduced to the cells with concentrations ranging from 1 muM to 50 muM and in varied time periods. Thereafter, cell viability parameters were measured using MTT assay and PI staining. TCS decreased the cell viability of treated NSC in a concentration-dependent manner along with increased expressions of apoptotic markers, cleaved caspase-3 and Bax, while reduced expression of Bcl2. To explore the mechanisms underlying the effects of TCS in NSC, we measured the activation of MAPKs and intracellular ROS. TCS at 50 muM induced the activations of both p38 and JNK, which may adversely affect cell survival. In contrast, the activities of ERK, Akt and PI3K, which are positively correlated with cell survival, were inhibited. Moreover, TCS at this concentration augmented the ROS generation in treated NSC and depleted the glutathione activity. Taken together, these results suggest that TCS can induce neurodegenerative effects in developing rat brains through mechanisms involving ROS activation and apoptosis initiation.
Animals
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Apoptosis
;
Brain
;
Caspase 3
;
Cell Survival
;
Embryonic Structures
;
Glutathione
;
Household Products
;
Humans
;
Mouthwashes
;
Neural Stem Cells*
;
Rats
;
Soaps
;
Toothpastes
;
Triclosan*
4.Erratum: Valproic Acid Induces Telomerase Reverse Transcriptase Expression during Cortical Development.
Ki Chan KIM ; Chang Soon CHOI ; Edson Luck T GONZALES ; Darine Froy N MABUNGA ; Sung Hoon LEE ; Se Jin JEON ; Ram HWANGBO ; Minha HONG ; Jong Hoon RYU ; Seol Heui HAN ; Geon Ho BAHN ; Chan Young SHIN
Experimental Neurobiology 2017;26(6):399-399
In the ‘Acknowledgements’ section on page 263 of the original article, the grant number was incorrectly stated.
5.Treatment of GABA from Fermented Rice Germ Ameliorates Caffeine-Induced Sleep Disturbance in Mice.
Darine Froy N MABUNGA ; Edson Luck T GONZALES ; Hee Jin KIM ; Se Young CHOUNG
Biomolecules & Therapeutics 2015;23(3):268-274
gamma-Aminobutyric acid (GABA), a major inhibitory neurotransmitter in the mammalian central nervous system, is involved in sleep physiology. Caffeine is widely used psychoactive substance known to induce wakefulness and insomnia to its consumers. This study was performed to examine whether GABA extracts from fermented rice germ ameliorates caffeine-induced sleep disturbance in mice, without affecting spontaneous locomotor activity and motor coordination. Indeed, caffeine (10 mg/kg, i.p.) delayed sleep onset and reduced sleep duration of mice. Conversely, rice germ ferment extracts-GABA treatment (10, 30, or 100 mg/kg, p.o.), especially at 100 mg/kg, normalized the sleep disturbance induced by caffeine. In locomotor tests, rice germ ferment extracts-GABA slightly but not significantly reduced the caffeine-induced increase in locomotor activity without affecting motor coordination. Additionally, rice germ ferment extracts-GABA per se did not affect the spontaneous locomotor activity and motor coordination of mice. In conclusion, rice germ ferment extracts-GABA supplementation can counter the sleep disturbance induced by caffeine, without affecting the general locomotor activities of mice.
Animals
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Anxiety
;
Caffeine
;
Central Nervous System
;
gamma-Aminobutyric Acid*
;
Mice*
;
Motor Activity
;
Neurotransmitter Agents
;
Physiology
;
Sleep Initiation and Maintenance Disorders
;
Wakefulness
6.Sex-specific Behavioral Features of Rodent Models of Autism Spectrum Disorder.
Se Jin JEON ; Edson Luck GONZALES ; Darine Froy N MABUNGA ; Schley T VALENCIA ; Do Gyeong KIM ; Yujeong KIM ; Keremkleroo Jym L ADIL ; Dongpil SHIN ; Donghyun PARK ; Chan Young SHIN
Experimental Neurobiology 2018;27(5):321-343
Sex is an important factor in understanding the clinical presentation, management, and developmental trajectory of children with neuropsychiatric disorders. While much is known about the clinical and neurobehavioral profiles of males with neuropsychiatric disorders, surprisingly little is known about females in this respect. Animal models may provide detailed mechanistic information about sex differences in autism spectrum disorder (ASD) in terms of manifestation, disease progression, and development of therapeutic options. This review aims to widen our understanding of the role of sex in autism spectrum disorder, by summarizing and comparing behavioral characteristics of animal models. Our current understanding of how differences emerge in boys and girls with neuropsychiatric disorders is limited: Information derived from animal studies will stimulate future research on the role of biological maturation rates, sex hormones, sex-selective protective (or aggravating) factors and psychosocial factors, which are essential to devise sex precision medicine and to improve diagnostic accuracy. Moreover, there is a strong need of novel strategies to elucidate the major mechanisms leading to sex-specific autism features, as well as novel models or methods to examine these sex differences.
Animals
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Autism Spectrum Disorder*
;
Autistic Disorder*
;
Child
;
Disease Progression
;
Female
;
Gonadal Steroid Hormones
;
Humans
;
Male
;
Models, Animal
;
Precision Medicine
;
Psychology
;
Rodentia*
;
Sex Characteristics
7.Valproic Acid Induces Telomerase Reverse Transcriptase Expression during Cortical Development.
Ki Chan KIM ; Chang Soon CHOI ; Edson Luck T GONZALES ; Darine Froy N MABUNGA ; Sung Hoon LEE ; Se Jin JEON ; Ram HWANGBO ; Minha HONG ; Jong Hoon RYU ; Seol Heui HAN ; Geon Ho BAHN ; Chan Young SHIN
Experimental Neurobiology 2017;26(5):252-265
The valproic acid (VPA)-induced animal model is one of the most widely utilized environmental risk factor models of autism. Autism spectrum disorder (ASD) remains an insurmountable challenge among neurodevelopmental disorders due to its heterogeneity, unresolved pathological pathways and lack of treatment. We previously reported that VPA-exposed rats and cultured rat primary neurons have increased Pax6 expression during post-midterm embryonic development which led to the sequential upregulation of glutamatergic neuronal markers. In this study, we provide experimental evidence that telomerase reverse transcriptase (TERT), a protein component of ribonucleoproteins complex of telomerase, is involved in the abnormal components caused by VPA in addition to Pax6 and its downstream signals. In embryonic rat brains and cultured rat primary neural progenitor cells (NPCs), VPA induced the increased expression of TERT as revealed by Western blot, RT-PCR, and immunostainings. The HDAC inhibitor property of VPA is responsible for the TERT upregulation. Chromatin immunoprecipitation revealed that VPA increased the histone acetylation but blocked the HDAC1 binding to both Pax6 and Tert genes. Interestingly, the VPA-induced TERT overexpression resulted to sequential upregulations of glutamatergic markers such as Ngn2 and NeuroD1, and inter-synaptic markers such as PSD-95, α-CaMKII, vGluT1 and synaptophysin. Transfection of Tert siRNA reversed the effects of VPA in cultured NPCs confirming the direct involvement of TERT in the expression of those markers. This study suggests the involvement of TERT in the VPA-induced autistic phenotypes and has important implications for the role of TERT as a modulator of balanced neuronal development and transmission in the brain.
Acetylation
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Animals
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Autism Spectrum Disorder
;
Autistic Disorder
;
Blotting, Western
;
Brain
;
Chromatin Immunoprecipitation
;
Embryonic Development
;
Female
;
Histones
;
Models, Animal
;
Neurodevelopmental Disorders
;
Neurons
;
Phenotype
;
Population Characteristics
;
Pregnancy
;
Rats
;
Ribonucleoproteins
;
Risk Factors
;
RNA, Small Interfering
;
Stem Cells
;
Synaptophysin
;
Telomerase*
;
Transfection
;
Up-Regulation
;
Valproic Acid*
8.Repeated Neonatal Propofol Administration Induces Sex-Dependent Long-Term Impairments on Spatial and Recognition Memory in Rats.
Edson Luck T GONZALES ; Sung Min YANG ; Chang Soon CHOI ; Darine Froy N MABUNGA ; Hee Jin KIM ; Jae Hoon CHEONG ; Jong Hoon RYU ; Bon Nyeo KOO ; Chan Young SHIN
Biomolecules & Therapeutics 2015;23(3):251-260
Propofol is an anesthetic agent that gained wide use because of its fast induction of anesthesia and rapid recovery post-anesthesia. However, previous studies have reported immediate neurodegeneration and long-term impairment in spatial learning and memory from repeated neonatal propofol administration in animals. Yet, none of those studies has explored the sex-specific long-term physical changes and behavioral alterations such as social (sociability and social preference), emotional (anxiety), and other cognitive functions (spatial working, recognition, and avoidance memory) after neonatal propofol treatment. Seven-day-old Wistar-Kyoto (WKY) rats underwent repeated daily intraperitoneal injections of propofol or normal saline for 7 days. Starting fourth week of age and onwards, rats were subjected to behavior tests including open-field, elevated-plus-maze, Y-maze, 3-chamber social interaction, novel-object-recognition, passive-avoidance, and rotarod. Rats were sacrificed at 9 weeks and hippocampal protein expressions were analyzed by Western blot. Results revealed long-term body weight gain alterations in the growing rats and sex-specific impairments in spatial (female) and recognition (male) learning and memory paradigms. A markedly decreased expression of hippocampal NMDA receptor GluN1 subunit in female- and increased expression of AMPA GluR1 subunit protein expression in male rats were also found. Other aspects of behaviors such as locomotor activity and coordination, anxiety, sociability, social preference and avoidance learning and memory were not generally affected. These results suggest that neonatal repeated propofol administration disrupts normal growth and some aspects of neurodevelopment in rats in a sex-specific manner.
alpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic Acid
;
Anesthesia
;
Animals
;
Anxiety
;
Avoidance Learning
;
Blotting, Western
;
Body Weight
;
Humans
;
Injections, Intraperitoneal
;
Interpersonal Relations
;
Learning
;
Male
;
Memory*
;
Motor Activity
;
N-Methylaspartate
;
Propofol*
;
Rats*
;
Weight Gain
9.Effects of Several Cosmetic Preservatives on ROS-Dependent Apoptosis of Rat Neural Progenitor Cells.
Onjeon RYU ; Bo Kyung PARK ; Minji BANG ; Kyu Suk CHO ; Sung Hoon LEE ; Edson Luck T GONZALES ; Sung Min YANG ; Seonmin KIM ; Pyeong Hwa EUN ; Joo Young LEE ; Kyu Bong KIM ; Chan Young SHIN ; Kyoung Ja KWON
Biomolecules & Therapeutics 2018;26(6):608-615
Benzalkonium chloride, diazolidinyl urea, and imidazolidinyl urea are commonly used preservatives in cosmetics. Recent reports suggested that these compounds may have cellular and systemic toxicity in high concentration. In addition, diazolidinyl urea and imidazolidinyl urea are known formaldehyde (FA) releasers, raising concerns for these cosmetic preservatives. In this study, we investigated the effects of benzalkonium chloride, diazolidinyl urea, and imidazolidinyl urea on ROS-dependent apoptosis of rat neural progenitor cells (NPCs) in vitro. Cells were isolated and cultured from embryonic day 14 rat cortices. Cultured cells were treated with 1–1,000 nM benzalkonium chloride, and 1–50 μM diazolidinyl urea or imidazolidinyl urea at various time points to measure the reactive oxygen species (ROS). PI staining, MTT assay, and live-cell imaging were used for cell viability measurements. Western blot was carried out for cleaved caspase-3 and cleaved caspase-8 as apoptotic protein markers. In rat NPCs, ROS production and cleaved caspase-8 expression were increased while the cell viability was decreased in high concentrations of these substances. These results suggest that several cosmetic preservatives at high concentrations can induce neural toxicity in rat brains through ROS induction and apoptosis.
Animals
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Apoptosis*
;
Benzalkonium Compounds
;
Blotting, Western
;
Brain
;
Caspase 3
;
Caspase 8
;
Cell Survival
;
Cells, Cultured
;
Formaldehyde
;
In Vitro Techniques
;
Rats*
;
Reactive Oxygen Species
;
Stem Cells*
;
Urea
10.T-Type Calcium Channels Are Required to Maintain Viability of Neural Progenitor Cells.
Ji Woon KIM ; Hyun Ah OH ; Sung Hoon LEE ; Ki Chan KIM ; Pyung Hwa EUN ; Mee Jung KO ; Edson Luck T GONZALES ; Hana SEUNG ; Seonmin KIM ; Geon Ho BAHN ; Chan Young SHIN
Biomolecules & Therapeutics 2018;26(5):439-445
T-type calcium channels are low voltage-activated calcium channels that evoke small and transient calcium currents. Recently, T-type calcium channels have been implicated in neurodevelopmental disorders such as autism spectrum disorder and neural tube defects. However, their function during embryonic development is largely unknown. Here, we investigated the function and expression of T-type calcium channels in embryonic neural progenitor cells (NPCs). First, we compared the expression of T-type calcium channel subtypes (CaV3.1, 3.2, and 3.3) in NPCs and differentiated neural cells (neurons and astrocytes). We detected all subtypes in neurons but not in astrocytes. In NPCs, CaV3.1 was the dominant subtype, whereas CaV3.2 was weakly expressed, and CaV3.3 was not detected. Next, we determined CaV3.1 expression levels in the cortex during early brain development. Expression levels of CaV3.1 in the embryonic period were transiently decreased during the perinatal period and increased at postnatal day 11. We then pharmacologically blocked T-type calcium channels to determine the effects in neuronal cells. The blockade of T-type calcium channels reduced cell viability, and induced apoptotic cell death in NPCs but not in differentiated astrocytes. Furthermore, blocking T-type calcium channels rapidly reduced AKT-phosphorylation (Ser473) and GSK3β-phosphorylation (Ser9). Our results suggest that T-type calcium channels play essential roles in maintaining NPC viability, and T-type calcium channel blockers are toxic to embryonic neural cells, and may potentially be responsible for neurodevelopmental disorders.
Apoptosis
;
Astrocytes
;
Autism Spectrum Disorder
;
Brain
;
Calcium
;
Calcium Channels
;
Calcium Channels, T-Type*
;
Cell Death
;
Cell Survival
;
Embryonic Development
;
Female
;
Neural Tube Defects
;
Neurodevelopmental Disorders
;
Neurons
;
Pregnancy
;
Stem Cells*