• 제목/요약/키워드: gluconeogenesis

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Identification and validation of putative biomarkers by in silico analysis, mRNA expression and oxidative stress indicators for negative energy balance in buffaloes during transition period

  • Savleen Kour;Neelesh Sharma;Praveen Kumar Guttula;Mukesh Kumar Gupta;Marcos Veiga dos Santos;Goran Bacic;Nino Macesic;Anand Kumar Pathak;Young-Ok Son
    • Animal Bioscience
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    • 제37권3호
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    • pp.522-535
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    • 2024
  • Objective: Transition period is considered from 3 weeks prepartum to 3 weeks postpartum, characterized with dramatic events (endocrine, metabolic, and physiological) leading to occurrence of production diseases (negative energy balance/ketosis, milk fever etc). The objectives of our study were to analyze the periodic concentration of serum beta-hydroxy butyric acid (BHBA), glucose and oxidative markers along with identification, and validation of the putative markers of negative energy balance in buffaloes using in-silico and quantitative real time-polymerase chain reaction (qRT-PCR) assay. Methods: Out of 20 potential markers of ketosis identified by in-silico analysis, two were selected and analyzed by qRT-PCR technique (upregulated; acetyl serotonin o-methyl transferase like and down regulated; guanylate cyclase activator 1B). Additional two sets of genes (carnitine palmotyl transferase A; upregulated and Insulin growth factor; downregulated) that have a role of hepatic fatty acid oxidation to maintain energy demands via gluconeogenesis were also validated. Extracted cDNA (complementary deoxyribonucleic acid) from the blood of the buffaloes were used for validation of selected genes via qRTPCR. Concentrations of BHBA, glucose and oxidative stress markers were identified with their respective optimized protocols. Results: The analysis of qRT-PCR gave similar trends as shown by in-silico analysis throughout the transition period. Significant changes (p<0.05) in the levels of BHBA, glucose and oxidative stress markers throughout this period were observed. This study provides validation from in-silico and qRT-PCR assays for potential markers to be used for earliest diagnosis of negative energy balance in buffaloes. Conclusion: Apart from conventional diagnostic methods, this study improves the understanding of putative biomarkers at the molecular level which helps to unfold their role in normal immune function, fat synthesis/metabolism and oxidative stress pathways. Therefore, provides an opportunity to discover more accurate and sensitive diagnostic aids.

Constitutive Androstane Receptor (CAR)의 활성, 에너지 대사 및 세포의 증식과 사멸의 조절에 대한 CAR의 cross-talk 기전 (The Cross-talk Mechanisms of Constitutive Androstane Receptor (CAR) in the Regulation of its Activity, Energy Metabolism, Cellular Proliferation and Apoptosis)

  • 민계식
    • 생명과학회지
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    • 제30권2호
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    • pp.211-220
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    • 2020
  • CAR의 활성은 리간드 결합 뿐만 아니라, 세포외신호전달 경로를 통한 관련 조절인자들의 인산화, 전사 조절인자들과의 상호작용, 그리고 coactivators 및 corepressors의 동원, 분해 및 발현 등에 의해 조절되며, 이러한 CAR의 활성 조절은 또한 외인성 화학물질과 에너지 대사, 세포의 증식 및 사멸을 포함한 다양한 생리적 항상성 조절에 영향을 미친다. CAR는 ERK1/2의 신호전달경로에 의해 인산화되어 Hsp-90/CCRP와 복합체를 형성하여 세포질 내에 잔류하는 반면, PB는 ERK1/2를 억제하여 downstream 신호전달 조절인자들의 탈인산화를 유발하고, 활성화된 RACK-1/PP2A를 동원하여 CAR를 탈인산화 함으로써 핵 이동 및 전사 활성을 유도한다. CAR의 활성은 FoxO1 및 PGC-1α와의 cross-talk을 통하여 각각 전사 활성 억제와 ubiquitination을 통한 단백질 분해를 유도하여 당합성과정에 관여하는 PEPCK 및 G6Pase 유전자의 발현을 억제한다. CAR에 의한 지방의 합성과 산화 조절은 각각 PPARγ 및 PPARα와의 cross-talk에 의한 PGC-1α의 분해와 CPT-1의 발현 억제 또는 PGC-1α와의 결합을 통해 지방 합성 유전자의 발현 억제와 조직 특이적 산화 억제 또는 촉진으로 이루어진다. CAR는 FoxO1의 억제를 통한 p21의 발현 억제와 cyclin D1의 발현을 유도하여 세포 증식을 촉진하는 반면, GADD45B의 발현을 통한 MKK7과 JNK1의 활성을 억제하여 세포 사멸을 억제한다. 결론적으로, CAR는 세포외신호전달 경로와 세포내 조절인자들과의 다양한 상호작용을 통하여 외인성 화학물질의 대사뿐만 아니라 에너지 대사 및 세포의 성장과 사멸의 조절을 통한 항상성 유지에 관여한다.

Anti-diabetic effect and mechanism of Korean red ginseng extract in C57BL/KsJ db/db mice

  • ;;정성현
    • 고려인삼학회:학술대회논문집
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    • 고려인삼학회 2007년도 추계 학술대회
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    • pp.57-58
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    • 2007
  • Purpose: Ginseng is a well-known medical plant used in traditional Oriental medicine. Korean red ginseng (KRG) has been known to have potent biological activities such as radical scavenging, vasodilating, anti-tumor and anti-diabetic activities. However, the mechanism of the beneficial effects of KRG on diabetes is yet to be elucidated. The present study was designed to investigate the anti-diabetic effect and mechanism of KRG extract in C57BL/KsJ db/db mice. Methods: The db/db mice were randomly divided into six groups: diabetic control group (DC), red ginseng extract low dose group (RGL, 100 mg/kg), red ginseng extract high dose group (RGH, 200 mg/kg), metformin group (MET, 300 mg/kg), glipizide group (GPZ, 15 mg/kg) and pioglitazone group (PIO, 30 mg/kg), and treated with drugs once per day for 10 weeks. During the experiment, body weight and blood glucose levels were measured once every week. At the end of treatment, we measured Hemoglobin A1c (HbA1c), blood glucose, insulin, triglyceride (TG), adiponectin, leptin, non-esterified fatty acid (NEFA). Morphological analyses of liver, pancreas and white adipose tissue were done by histological observation through hematoxylin-eosin staining. Pancreatic islet insulin and glucagon levels were detected by double-immunofluorescence staining. To elucidate an action of mechanism of KRG, DNA microarray analyses were performed, and western blot and RT-PCR were conducted for validation. Results: Compared to the DC group mice, body weight gain of PIO treated group mice showed 15.2% increase, but the other group mice did not showed significant differences. Compared to the DC group, fasting blood glucose levels were decreased by 19.8% in RGL, 18.3% in RGH, 67.7% in MET, 52.3% in GPZ, 56.9% in PIO-treated group. With decreased plasma glucose levels, the insulin resistance index of the RGL-treated group was reduced by 27.7% compared to the DC group. Insulin resistance values for positive drugs were all markedly decreased by 80.8%, 41.1% and 68.9%, compared to that of DC group. HbA1c levels in RGL, RGH, MET, GPZ and PIO-treated groups were also decreased by 11.0%, 6.4%, 18.9%, 16.1% and 27.9% compared to that of DC group, and these figure revealed a similar trend shown in plasma glucose levels. Plasma TG and NEFA levels were decreased by 18.8% and 16.8%, respectively, and plasma adiponectin and leptin levels were increased by 20.6% and 12.1%, respectively, in the RGL-treated group compared to those in DC group. Histological analysis of the liver of mice treated with KRG revealed a significantly decreased number of lipid droplets compared to the DC group. The control mice exhibited definitive loss and degeneration of islet, whereas mice treated with KRG preserved islet architecture. Compared to the DC group mice, KRG resulted in significant reduction of adipocytes. From the pancreatic islet double-immunofluorescence staining, we observed KRG has increased insulin production, but decreased glucagon production. KRG treatment resulted in stimulation of AMP-activated protein kinase (AMPK) phosphorylation in the db/db mice liver. To elucidate mechanism of action of KRG extract, microarray analysis was conducted in the liver tissue of mice treated with KRG extract, and results suggest that red ginseng affects on hepatic expression of genes responsible for glycolysis, gluconeogenesis and fatty acid oxidation. In summary, multiple administration of KRG showed the hypoglycemic activity and improved glucose tolerance. In addition, KRG increased glucose utilization and improved insulin sensitivity through inhibition of lipogenesis and activation of fatty acid $\beta$-oxidation in the liver tissue. In view of our present data, we may suggest that KRG could provide a solid basis for the development of new anti-diabetic drug.

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