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Impaired Transient Receptor Potential Vanilloid Type-1 Signaling Promotes Obesity and Leptin/Insulin Resistance In Mice : TRPV1 의 비만 및 렙틴/인슐린 저항성에의 역할과 그 작용기작 규명

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dc.contributor.advisor이형주-
dc.contributor.author이은정-
dc.date.accessioned2017-07-13T08:26:55Z-
dc.date.available2017-07-13T08:26:55Z-
dc.date.issued2014-02-
dc.identifier.other000000016841-
dc.identifier.urihttps://hdl.handle.net/10371/119558-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 농생명공학부(바이오모듈레이션전공), 2014. 2. 이형주.-
dc.description.abstractAccording to prevalence of obesity and its-associated metabolic disorders worldwide, these diseases become severe and global health problem. Obesity defined as a condition accumulated excess fat mass bodily is a hall marker and major cause of metabolic diseases such as cardiovascular disease, stroke, and type 2 diabetes (T2D). Because obesity and T2D patients have dramatically higher risks of cardiovascular disease, the most common cause of death in Western countries, an increase in the prevalence of obesity and diabetes in the population is one of the most serious problems of modern society. Thus, the prevention and treatment of obesity and T2D become more and more important. Insulin resistance, an attenuated or lack of response of the insulin receptor (IR) and its downstream signaling pathway to insulin stimulation even at high doses of insulin, is a representative characteristic of T2D. Although insulin resistance is caused by inflammation, oxidative stress, ER stress, and mitochondrial dysfunction, the specific mechanisms which lead from obesity to T2D is still unclear.
Recent evidences have been clearly showed that capsaicin, a pungent component of chili peppers, play a crucial role in obesity and metabolic disorders. Administration of capsaicin prevents obesity and improves glucose homeostasis and insulin secretion in small rodents and humans. Several previous studies have reported supportive clinical evidence that consumption of red peppers or capsaicin was shown to decrease appetite, cause weight loss and stimulate thermogenesis caused by substrate oxidation from carbohydrate to fat oxidation. However, the role of its receptor, transient receptor potential vanilloid subfamily type 1 (TRPV1), in development of obesity and its- associated insulin resistance is controversial, which suggests that its specific function and mechanistic studies in metabolic disorders are poorly understood.
Here, I examined the effect of TRPV1, capsaicin receptor, on diet-induced obesity and insulin resistance in mice. TRPV1-deficient mice became more obese and get more fat accumulation on high-fat diet (HFD) feeding than wild-type (WT) mice. These results were caused by reduced locomotor activity in TRPV1 KO mice fed HFD for 5 weeks. In TRPV1 KO mice, plasma leptin levels were decreased.
Although leptin up-regulates locomotor activity as well as energy expenditure, TRPV1 KO mice showed decreased activity and no changes in energy expenditure compared to WT mice, suggesting severe leptin resistance in TRPV1 KO mice fed HFD. All of these results indicated that TRPV1 is a regulator of energy balance and development of leptin resistance in obese mice. In addition, TRPV1 deletion accelerates diet-induced insulin resistance. Insulin-stimulated glucose uptake in adipose tissues and heart was significantly diminished in HFD-fed TRPV1 KO mice. As one of the major causes of inflammation, oxidative stress and mitochondrial dysfunction, aging has been showed to induce obesity and insulin resistance. Deletion of TRPV1 in mice accelerated aging-induced weight gain and insulin resistance. Unlike the results fed HFD, aging promoted hepatic insulin resistance in TRPV1 KO mice compared to WT mice. Thus, these results provide new insight into the involvement of TRPV1 in development of obesity and insulin resistance and promising strategy against their pathogenesis.
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dc.description.tableofcontentsContents
Abstract i
Contents v
Chapter 1. Metabolic syndrome, transient receptor potential vanilloid subfamily type 1, and its agonists in food: A Review 1
Abstract 2
1.1. Introduction 4
1.2. Development of metabolic diseases 6
1.2.1. Obesity 6
1.2.2. Hyperglycemia, insulin resistance and type 2 diabetes 7
1.2.3. Hyperlipidemia, hyperleptinemia and Leptin resistance 9
1.3. Molecular mechanisms of TRPV1 and capsaicin in metabolic disease 14
1.3.1. Capsaicin receptor: Transient receptor potential vanilloid subfamily type 1 14
1.3.2. In obesity : adipogenesis and thermogenesis 15
1.3.3. In diabetes mellitus: insulin secretion and resistance 18
1.4. Conclusions 19
1.5. References 20
Chapter 2. TRPV1 is a regulator of energy homeostasis and leptin resistance 30
Abstract 31
2.1. Introduction 33
2.2. Materials and Methods 36
2.2.1. Animals 36
2.2.2. Body composition and energy balance measurement 36
2.2.3. Leptin/adiponectin ELISA assay 37
2.2.4. Leptin infusion study 37
2.2.5. Leptin signaling in primary cultured mouse embryonic fibloblasts (MEFs) 38
2.2.6. Leptin stimulation study 38
2.2.7. Western blotting 39
2.2.8. Statistical analysis 40
2.3. Results 41
2.3.1. Deletion of TRPV1 induces higher accumulation of fat and obesity during HFD feeding 41
2.3.2. TRPV1-deficient mice decreases locomoter activity 41
2.3.3. Deletion of TRPV1 induces increased plasma leptin levels compared to WT mice after HFD 43
2.3.4. Negative correlation between leptin and physical activity/energy expenditure in TRPV1 KO mice fed HFD 46
2.3.5. Impaired TRPV1 channel promotes leptin resistance in mice fed HFD 48
2.3.6. Deletion of TRPV1 induces blunted leptin signaling in MEFs and mice 51
2.4 Discussion 57
2.5. References 59
Chapter 3. TRPV1 deficiency deteriorates diet-induced obesity and insulin resistance in mice 70
Abstract 71
3.1. Introduction 72
3.2.Materials and methods 75
3.2.1. Animals. 75
3.2.2. Body composition 75
3.2.3. Hyperinsulinemic-euglycemic clamp 75
3.2.4. Biochecmical analysis and calculation 76
3.2.5. Plasma insulin measurement 77
3.2.6. Glucose uptake assay 78
3.2.7. Western blotting 78
3.2.8. Statistical analysis 79
3.3. Results 80
3.3.1. HFD-induced obesity and insulin resistance are worsed by deletion of TRPV1 80
3.3.2. Deletion of TRPV1 did not affect on impared insulin action in liver and skeletal muscle 82
3.3.3. Deletion of TRPV1 reduces glucose uptake into adipose tissues and heart 84
3.3.4. TRPV1 deficiency induces impaired insulin signaling in WAT after HFD feeding in mice 86
3.4. Discussion 91
3.5. References 94
Chapter 4. Deficiency of TRPV1 accelerates aging-induced obesity and insulin resistance in vivo 99
Abstract 100
4.1. Introduction 102
4.2.Materials and methods 105
4.2.1. Animals 105
4.2.2. Body composition 105
4.2.3. Energy balance measurement 105
4.2.4. Hyperinsulinemic-euglycemic clamp 106
4.2.5. Biochemical analysis and calculation 107
4.2.6. Glucose uptake assay 108
4.2.7. Statistical analysis 108
4.3. Results 109
4.3.1. TRPV1-deficiency accelerates aging-induced obesity in mice 109
4.3.2. TRPV1-deletion reduces energy expenditure 109
4.3.3. Deletion of TRPV1 promotes aging-induced insulin resistance 113
4.3.4. Deletion of TRPV1 aggrevates aging-induced impaired insulin sensitivity in liver 116
4.3.5. Deletion of TRPV1 have no effect on glucose uptake levels in adipose tissues, muscle, and heart 116
4.4. Discussion 120
4.5. References 123
Chapter 5. Conclusions 127
5.1 Deterioration of diet-induced obesity and leptin resistance in TRPV1 deficient mice 128
5.2 Deterioration of diet- and aging-induced obesity and insulin resistance in TRPV1 deficient mice 130
5.3 Discussion 132
5.4 References 137
국문초록 140
Acknowledgement 143
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dc.formatapplication/pdf-
dc.format.extent3010029 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectTRPV1-
dc.subjectmetabolic syndrome-
dc.subjectlocomotor activity-
dc.subjectleptin resistance-
dc.subjectinsulin resistance-
dc.subjectaging-
dc.subjecthigh-fat diet-
dc.subject.ddc571-
dc.titleImpaired Transient Receptor Potential Vanilloid Type-1 Signaling Promotes Obesity and Leptin/Insulin Resistance In Mice-
dc.title.alternativeTRPV1 의 비만 및 렙틴/인슐린 저항성에의 역할과 그 작용기작 규명-
dc.typeThesis-
dc.contributor.AlternativeAuthorEunjung Lee-
dc.description.degreeDoctor-
dc.citation.pagesxii, 145-
dc.contributor.affiliation농업생명과학대학 농생명공학부(바이오모듈레이션전공)-
dc.date.awarded2014-02-
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