• Title/Summary/Keyword: muscle glucose uptake

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The effect of Ginkgo biloba Extract (GB) on Glucose Uptake in L6 Rat Skeletal Muscle Cells (L6 근육세포에서 은행잎 추출물의 당 흡수효과)

  • Kim, Soo-Cheol;Han, Mi-Young;Kim, Hak-Jae;Jung, Kyung-Hee
    • The Korea Journal of Herbology
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    • v.22 no.2
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    • pp.155-161
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    • 2007
  • Objectives: Evidences suggests that Ginkgo biloba, a widely used traditional medicine, shows a hypoglycemic effect. Thus, we investigatd the effect of G. biloba extract (GB) on glucose uptake in L6 rat skeletal muscle cells. Method : Effect of GB on glucose uptake and phosphatidylinositol (PI) 3-kinase activity were assessed using Glucose uptake assay and PI 3-kinase assay, respectively. Also, AMP-activated protein kinase (AMPK), p38 mitogen activated protein kinase (p38 MAPK) expression were identified by Western blot. Results : Glucose uptake assay revealed that GB increased glucose uptake about 2.5-fold compared to thecontrol. GB stimulated the activity of PI 3-kinase which is a major switch element on the glucose uptake pathway. About a 6.5-fold increase in activity of PI 3-kinase was observed with GB. We then assessed the activity of AMPK, another regulatory molecule on the glucose uptake pathway. The result was that GB increased the phosphorylation level of both AMPK ${\alpha}$l and ${\alpha}$2. The activity of p38 MAPK, a downstream mediator of AMPK, was also increased by CB. Conclusion : These results suggest that GB may stimulate glucose uptake through both PI 3-kinase and AMPK mediated pathways in L6 skeletal muscle cells thereby contributing to glucose homeostasis.

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Effects of insulin and exercise on glucose uptake of skeletal muscle in diabetic rats (당뇨병 흰쥐에서 운동부하가 시험관 실험에서 골격근의 당섭취에 미치는 영향)

  • Park, Jin-Hyun;Kim, Young-Woon;Kim, Jong-Yeon;Lee, Suck-Kang
    • Journal of Yeungnam Medical Science
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    • v.7 no.1
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    • pp.29-37
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    • 1990
  • The effects of insulin and exercise on glucose uptake of skeletal muscle were investigated in soleus muscle isolated from low dose streptozotocin induced diabetic rats in vitro. Glucose uptake was assessed by measuring $^3H$-methylglucose uptake in vitro. Basal glucose uptake in diabetes was reduced by approximately one-third of the control value($5.6{\pm}0.73{\mu}Mol$/g/20min. in diabetes versus $8.4{\pm}0.77$ in control, P<0.01). There was also a significant decrease(P<0.01) in glucose uptake of diabetes at physiologic insulin concentration ($200{\mu}IU$/ml) by 40% ($6.1{\pm}1.20$ versus $10.0{\pm}0.81$). Furthermore, maximal insulin($20000{\mu}IU$/ml)-stimulated glucose uptake was 36% lower in diabetes as compared with control($7.3{\pm}1.29$ versus $11.4{\pm}1.29$, P<0.01). In contrast, exercise(1.0km/hr, treadmill running for 45min.) effect on glucose uptake was so dramatic in diabetes that glucose uptake at basal state was 8.4+1.09 and insulin stimulated-glucose uptake were $10.2{\pm}1.47$ and $11.9{\pm}1.64$, in 200 and $20000{\mu}IU$/ml added insulin, respectively. These results suggest that insulin insensitivity develops in skeletal muscle after 2 weeks of streptozotocin-induced diabetes, but these insensitivity was recovered significantly by single session of running exercise.

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Regulation of Blood Glucose Homeostasis during Prolonged Exercise

  • Suh, Sang-Hoon;Paik, Il-Young;Jacobs, Kevin A.
    • Molecules and Cells
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    • v.23 no.3
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    • pp.272-279
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    • 2007
  • The maintenance of normal blood glucose levels at rest and during exercise is critical. The maintenance of blood glucose homeostasis depends on the coordination and integration of several physiological systems, including the sympathetic nervous system and the endocrine system. During prolonged exercise increased demand for glucose by contracting muscle causes to increase glucose uptake to working skeletal muscle. Increase in glucose uptake by working skeletal muscle during prolonged exercise is due to an increase in the translocation of insulin and contraction sensitive glucose transporter-4 (GLUT4) proteins to the plasma membrane. However, normal blood glucose level can be maintained by the augmentation of glucose production and release through the stimulation of liver glycogen breakdown, and the stimulation of the synthesis of glucose from other substances, and by the mobilization of other fuels that may serve as alternatives. Both feedback and feedforward mechanisms allow glycemia to be controlled during exercise. This review focuses on factors that control blood glucose homeostasis during prolonged exercise.

Effect of Age on Glucose Metabolism of Skeletal Muscle in Rats (흰쥐에서 연령이 골격근의 당 대사에 미치는 영향)

  • Jang, Eung-Chan;Youn, Woon-Ki;Lee, Suck-Kang
    • Journal of Yeungnam Medical Science
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    • v.18 no.1
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    • pp.94-100
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    • 2001
  • Background: It is doubtful that aging causes deteriorated glucose metabolism and insulin resistance of skeletal muscle. Some researchers had different results about it. So we have studied the mechanism responsible for the abnormal glucose tolerance associated with aging in rapidly growing and matured rats. Materials and Methods: Animals were used S.D. rats. Growing rats were 7 weeks old (BW: 160-190 gm) and matured rats were 28 weeks old (BW: 420-525 gm). Results: Fasting blood glucose and plasma insulin levels were significantly elevated in matured rat compared with growing rats. And during oral glucose tolerance test the glucose level was also significantly elevated in matured rats. These results confirmed an insulin resistant state of aging. Insulin levels at 30 minutes of oral glucose tolerance test was significantly elevated in growing rat. But at 120 minutes it was maintained at higher level in matured rats than in growing rats. It suggested the possibility of increased insulin secretion by initial stimulation of beta-cells in growing rats, and increased secretion and decreased catabolic rate of insulin in matured rats. Glucose uptake rate of soleus muscle in matured rats was lower than that of growing rats, but the difference was not statistically significant. The dose(insulin)-responsive(glucose uptake) curve of soleus muscle was only slightly deviated to the right side. Conclusion: Glucose metabolism of rat skeletal muscle was worsened by aging. The data of glucose uptake experiments suggested the possibility of insulin resistance of skeletal muscle in matured rats. but the mechanism of insulin resistance of skeletal muscle need further studies.

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Effect of n-3 Polyunsaturated Fatty Acids on Glucose Uptake of Soleus Muscle in NIDDM Diabetic Rats (NIDDM 당뇨병 흰쥐에서 n-3 다가불포화지방산이 가자미근의 Glucose Uptake에 미치는 영향)

  • 최원경;윤옥현;강병태
    • The Korean Journal of Food And Nutrition
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    • v.11 no.5
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    • pp.550-555
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    • 1998
  • The purpose of this study was to investigate the effects of n-3 polyunsaturated fatty acids(PUFA) on glucose and lipids metabolism in high-fat diet rate. Rats were randomly assigned to normal, high-fat with n-3 PUFA and high-fat dietary groups. Experiments were carried out after 5 weeks feeding with prescriptive diets following 7 hrs fasting. Body weight gains tended to be higher in high-fat fed rats than normal. Blood glucose was increased (p<0.05) by high-fat diet compared with normal diet, and decreaseed (p<0.05) to normal level by n-3 PUFA. Plasma insulin level was significcantly higher (p<0.01) in high-fat diet rats than that of normal-diet rats, and also decreased (p<0.01) by n-3 PUFA. Glucose up take of soleus muscle in vitro was decreased markedly in high-fat fed rats than normal diet rats at 0, 1, 10, and 100nM insulin concentration. Therefore insulin sensitivity and responsiveness were decreased by high-fat diet. Omega-3 PUFA made a recover(p<0.01) insulin sensitivity to almost normal level, and improved (p<0.05) insulin responsiveness in some extent. In conclusion, the results suggest that metabolic disorder of glucose and insulin resistance of skeletal muscle are caused by high-fat diet and n-3 PUFA can ameliorate metabolic disorder and insulin resistance.

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Eucommia ulmoides Extract Stimulates Glucose Uptake through PI 3-kinase Mediated Pathway in L6 Rat Skeletal Muscle Cells

  • Hong, Eui-Jae;Hong, Seung-Jae;Jung, Kyung-Hee;Ban, Ju-Yeon;Baek, Yong-Hyeon;Woo, Hyun-Su;Park, Dong-Suk
    • Molecular & Cellular Toxicology
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    • v.4 no.3
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    • pp.224-229
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    • 2008
  • Eucommia ulmoides (Duchung) is commonly used for treatment of diabetes in Korean traditional medicine. However, the exact mechanism of its anti-diabetic effect has not yet been fully elucidated. In this study, the effect of E. ulmoides extract on glucose uptake was investigated in L6 rat skeletal muscle cells. E. ulmoides extract stimulated the activity of phosphatidylinositol (PI) 3-kinase that is a major regulatory molecule in glucose uptake pathway. Protein kinase B (PKB) and protein kinase C-${\xi}$ (PKC-${\xi}$), downstream mediators of PI 3-kinase, were also activated by E. ulmoides extract. We assessed the activity of AMP-activated protein kinase (AMPK), another regulatory molecule in glucose uptake pathway. Phosphorylation level of AMPK did not change with treatment of E. ulmoides extract. Phosphorylations of p38 mitogen activated protein kinase (p38 MAPK) and acetyl-CoA carboxylase (ACC), downstream mediators of AMPK, were not significantly different. Taken together, our results suggest that E. ulmoides may stimulate glucose uptake through PI 3-kinase but not AMPK in L6 skeletal muscle cells.

Effects of Endurance Exercise and Ginsenoside Rb1 on AMP-Activated Protein Kinase, Phosphatidylinositol 3-Kinase Expression and Glucose Uptake in the Skeletal Muscle of Rats (지구성 운동과 Ginsenoside Rb1가 쥐 골격근의 AMP-Activated Protein Kinase(APMK), Phosphatidylinositol 3-Kinase(PI3K) 발현 및 Glucose Uptake에 미치는 영향)

  • Jung, Hyun-Lyung;Shin, Young Ho;Kang, Ho-Youl
    • Journal of the Korean Society of Food Science and Nutrition
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    • v.42 no.8
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    • pp.1197-1203
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    • 2013
  • This study investigated the effects of endurance exercise and ginsenoside $Rb_1$ on AMP-activated protein kinase (AMPK), phosphatidylinositol 3-kinase (PI3K) protein expression and glucose uptake in the skeletal muscle of rats. A total of 32 rats were randomly divided into four groups: CON (Control group, n=8), Ex (Exercise group; 25 m/min for 1 h, 6 days/week, 2 weeks, n=8), $Rb_1$ (Ginsenoside $Rb_1$ group; n=8), and $Rb_1/Ex$ ($Rb_1$+Exercise group, n=8). The $Rb_1$ and $Rb_1/Ex$ groups were incubated in ginsenoside $Rb_1$ (KRBP buffer, $100{\mu}g/mL$) for 60 min after a 2-week experimental treatment. After 2 weeks, the expression of phosphorylated $AMPK{\alpha}$ $Thr^{172}$, total $AMPK{\alpha}$, the p85 subunit of PI3K, pIRS-1 $Tyr^{612}$, and pAkt $Ser^{473}$ were determined in the soleus muscle. Muscle glucose uptake was measured using 2-deoxy-D-[$^3H$] glucose in epitroclearis muscle. Muscle glucose uptake was significantly higher in the three experimental groups (Ex, $Rb_1$, $Rb_1/Ex$) compared to the CON group (P<0.05). The expression of $tAMPK{\alpha}$ and $pAMPK{\alpha}$ $Thr^{172}$ was significantly higher in the Ex, $Rb_1$, and $Rb_1/Ex$ groups compared to the CON group (P<0.05). The expression of pAkt $Ser^{473}$ was significantly higher in the $Rb_1$ group compared to the CON and EX groups. However, the expression of pIRS-1 $Tyr^{612}$ and the p85 subunit of PI3K were not significantly different between the four groups. Overall, these results suggest that ginsenoside $Rb_1$ significantly stimulates glucose uptake in the skeletal muscle of rats through increasing phosphorylation in the AMPK pathway, similar to the effects of exercise.

The Stimulatory Effect of Essential Fatty Acids on Glucose Uptake Involves Both Akt and AMPK Activation in C2C12 Skeletal Muscle Cells

  • Park, So Yeon;Kim, Min Hye;Ahn, Joung Hoon;Lee, Su Jin;Lee, Jong Ho;Eum, Won Sik;Choi, Soo Young;Kwon, Hyeok Yil
    • The Korean Journal of Physiology and Pharmacology
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    • v.18 no.3
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    • pp.255-261
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    • 2014
  • Essential fatty acid (EFA) is known to be required for the body to function normally and healthily. However, the effect of EFA on glucose uptake in skeletal muscle has not yet been fully investigated. In this study, we examined the effect of two EFAs, linoleic acid (LA) and ${\alpha}$-linolenic acid (ALA), on glucose uptake of C2C12 skeletal muscle cells and investigated the mechanism underlying the stimulatory effect of polyunsaturated EFAs in comparison with monounsaturated oleic acid (OA). In palmitic acid (PA)-induced insulin resistant cells, the co-treatment of EFAs and OA with PA almost restored the PA-induced decrease in the basal and insulin-stimulated 2-NBDG (fluorescent D-glucose analogue) uptake, respectively. Two EFAs and OA significantly protected PA-induced suppression of insulin signaling, respectively, which was confirmed by the increased levels of Akt phosphorylation and serine/threonine kinases ($PKC{\theta}$ and JNK) dephosphorylation in the western blot analysis. In PA-untreated, control cells, the treatment of $500{\mu}M$ EFA significantly stimulated 2-NBDG uptake, whereas OA did not. Phosphorylation of AMP-activated protein kinase (AMPK) and one of its downstream molecules, acetyl-CoA carboxylase (ACC) was markedly induced by EFA, but not OA. In addition, EFA-stimulated 2-NBDG uptake was significantly inhibited by the pre-treatment of a specific AMPK inhibitor, adenine 9-${\beta}$-D-arabinofuranoside (araA). These data suggest that the restoration of suppressed insulin signaling at PA-induced insulin resistant condition and AMPK activation are involved at least in the stimulatory effect of EFA on glucose uptake in C2C12 skeletal muscle cells.

Effects of a Hwanggi-tang Ethanol Extract on Glucose Uptake and Metabolism in Murine Myotubes (근육세포주에서 당 흡수 및 대사 조절에 대한 황기탕 에탄올 추출물의 효과)

  • Jang, Chul-yong;Shin, Sun-ho;Shin, Yong-jeen
    • The Journal of Internal Korean Medicine
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    • v.41 no.4
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    • pp.599-611
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    • 2020
  • Objectives: The aim of this study was to evaluate the effects of Hwanggi-tang on glucose digestion, uptake, and metabolism in murine C2C12 myotubes. Methods: Hwanggi-tang was prepared according to the Dong-ui-bo-gam (≪東醫寶鑑≫) prescription by 70% ethanol extraction. The effect on glucose digestion was examined by determining the inhibitory effect of Hwanggi-tang on α-glucosidase activity. We also compared and verified the gene and protein expression of genes related to glucose uptake in C2C12 myotubes treated with Hwanggi-tang or insulin. Glucose metabolism was assessed by the expression levels of associated enzymes. Results: Hwanggi-tang caused a dose-dependent inhibition of α-glucosidase activity, induced glucose uptake by activation of the PI3K/Akt/mTOR pathway in the insulin signaling pathway, and promoted glucose oxidation and β-oxidation. Conclusions: Hwanggi-tang exerts an anti-diabetic effect on murine myotubes by inhibiting glucose digestion and inducing glucose uptake and consumption.

Effect of White, Taegeuk, and Red Ginseng Root Extracts on Insulin-Stimulated Glucose Uptake in Muscle Cells and Proliferation of β-cells

  • Cha, Ji-Young;Park, Eun-Young;Kim, Ha-Jung;Park, Sang-Un;Nam, Ki-Yeul;Choi, Jae-Eul;Jun, Hee-Sook
    • Journal of Ginseng Research
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    • v.34 no.3
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    • pp.192-197
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    • 2010
  • Recent studies have indicated that $\beta$-cell dysfunction and insulin resistance are important factors in the development of type 2 diabetes. The present study investigated the effect of extracts from different parts of white, Taegeuk, and red ginseng root on insulin-stimulated glucose uptake in muscle cells and proliferation of $\beta$-cells. Extracts of the fine roots of Taegeuk ginseng significantly enhanced glucose uptake compared with the control. White ginseng lateral root extracts enhanced insulin-induced glucose uptake. Proliferation of $\beta$-cells was significantly increased by Taegeuk ginseng main and lateral root extracts and by red ginseng lateral and fine root extracts. In conclusion, different root parts of white, Taegeuk, and red ginseng differentially affect glucose uptake and pancreatic $\beta$-cell proliferation.