EGCG regulation of non-insulin-responsive endosomal compartments in insulin-resistant skeletal muscle

被引:4
|
作者
Kang, Bean-Bu [1 ,2 ]
Chiang, Been-Huang [1 ]
机构
[1] Natl Taiwan Univ, Inst Food Sci & Technol, 1,Sect 4,Roosevelt Rd, Taipei 10617, Taiwan
[2] Taiwan Liquor Corp, Res Inst Liquor & Biotechnol, Taipei, Taiwan
关键词
Type; 2; diabetes; Insulin resistance; Vesicle transport; Glucose uptake; Skeletal muscle; EGCG; GLUT4; TRANSLOCATION; GLUCOSE-TRANSPORT; RESVERATROL; TRAFFICKING; ACTIVATORS; MEMBRANE; DEFECTS; CELLS; SIRT1;
D O I
10.1016/j.fbio.2018.12.001
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Tea consumption reduces the risk of type 2 diabetes mellitus, but how (-)-epigallocatechin-3-gallate (EGCG), the most abundant catechin in tea, mediates glucose transporter (GLUT)- containing vesicles in muscle cells is still unknown. This study investigated the hypothesis that EGCG can stimulate glucose transport by regulating endosome- specific signaling control systems, thus enhancing glucose uptake by skeletal muscle cells. To understand the relationship between the endosomal system and the EGCG-regulated pathway in skeletal muscle, the insulin-resistance L6 myotubes, induced by palmitate treatment, were treated with vesicle ablation, actin filament disruption and signaling inhibition and results were analyzed. The horseradish peroxidase-conjugated human transferrin was localized to endosomes in the cells, followed by incubation with diaminobenzidine/H2O2. The unablated cell-associated glucose uptake was determined using quantitative fluorescence assay. Ablation of endosomal compartments showed that insulin had little effect on the endosomal recycling pathway, and it mainly affected GLUT4 storage vesicles. Conversely, EGCG stimulated endosomal compartments to facilitate glucose transport using a mechanism independent of the actin-based cytoskeletal transit system. Both Akt and atypical protein kinase C, the downstream effectors of phosphatidylinositol-3-kinase (PI3K), participated in the development of palmitate-induced muscle cells insulin resistance. However, EGCG-stimulated glucose uptake is mediated using a PI3K-independent mechanism that involves silent information regulator 1. Thus, glucose transport is regulated by at least two signal cascades and by two types of vesicles, and EGCG can improve glucose uptake in insulin-resistant skeletal muscle through the non-insulin-responsive endosomal pathway.
引用
收藏
页码:1 / 6
页数:6
相关论文
共 50 条
  • [31] 3D analysis of capillary network in skeletal muscle of obese insulin-resistant mice
    Umek, Nejc
    Horvat, Simon
    Cvetko, Erika
    Kreft, Marko
    Janacek, Jiri
    Kubinova, Lucie
    Stopar Pintaric, Tatjana
    Erzen, Ida
    HISTOCHEMISTRY AND CELL BIOLOGY, 2019, 152 (05) : 323 - 331
  • [32] 3D analysis of capillary network in skeletal muscle of obese insulin-resistant mice
    Nejc Umek
    Simon Horvat
    Erika Cvetko
    Marko Kreft
    Jiří Janáček
    Lucie Kubínová
    Tatjana Stopar Pintarič
    Ida Eržen
    Histochemistry and Cell Biology, 2019, 152 : 323 - 331
  • [33] Collagen 24 α1 Is Increased in Insulin-Resistant Skeletal Muscle and Adipose Tissue
    Weng, Xiong
    Lin, De
    Huang, Jeffrey T. J.
    Stimson, Roland H.
    Wasserman, David H.
    Kang, Li
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2020, 21 (16) : 1 - 13
  • [34] Local myostatin inhibition improves skeletal muscle glucose uptake in insulin-resistant high-fat diet-fed mice
    Eilers, Wouter
    Chambers, David
    Cleasby, Mark
    Foster, Keith
    AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2020, 319 (01): : E163 - E174
  • [35] Quantitative Analysis of Orphan Nuclear Receptors in Insulin-Resistant C2C12 Skeletal Muscle Cells
    Chew, G. S.
    Gawned, M.
    Molina, E.
    Myers, S. A.
    JOURNAL OF DIABETES & METABOLISM, 2015, 6 (11)
  • [36] α-lipoic acid supplementation reduces oxidative stress and inflammation in red skeletal muscle of insulin-resistant rats
    Dajnowicz-Brzezik, Patrycja
    Zebrowska, Ewa
    Maciejczyk, Mateusz
    Zalewska, Anna
    Chabowski, Adrian
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2025, 742
  • [37] The proteomic signature of insulin-resistant human skeletal muscle reveals increased glycolytic and decreased mitochondrial enzymes
    J. Giebelstein
    G. Poschmann
    K. Højlund
    W. Schechinger
    J. W. Dietrich
    K. Levin
    H. Beck-Nielsen
    K. Podwojski
    K. Stühler
    H. E. Meyer
    H. H. Klein
    Diabetologia, 2012, 55 : 1114 - 1127
  • [38] The proteomic signature of insulin-resistant human skeletal muscle reveals increased glycolytic and decreased mitochondrial enzymes
    Giebelstein, J.
    Poschmann, G.
    Hojlund, K.
    Schechinger, W.
    Dietrich, J. W.
    Levin, K.
    Beck-Nielsen, H.
    Podwojski, K.
    Stuehler, K.
    Meyer, H. E.
    Klein, H. H.
    DIABETOLOGIA, 2012, 55 (04) : 1114 - 1127
  • [39] Differential effects of lipoic acid stereoisomers on glucose metabolism in insulin-resistant skeletal muscle
    Streeper, RS
    Henriksen, EJ
    Jacob, S
    Hokama, JY
    Fogt, DL
    Tritschler, HJ
    AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 1997, 273 (01): : E185 - E191
  • [40] Skeletal muscle fiber type-selective effects of acute exercise on insulin-stimulated glucose uptake in insulin-resistant, high-fat-fed rats
    Pataky, Mark W.
    Yu, Carmen S.
    Nie, Yilin
    Arias, Edward B.
    Singh, Manak
    Mendias, Christopher L.
    Ploutz-Snyder, Robert J.
    Cartee, Gregory D.
    AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2019, 316 (05): : E695 - E706