Insulin resistance disrupts cell integrity, mitochondrial function, and inflammatory signaling in lymphatic endothelium

被引:24
作者
Lee, Yang [1 ]
Chakraborty, Sanjukta [1 ]
Meininger, Cynthia J. [1 ]
Muthuchamy, Mariappan [1 ]
机构
[1] Texas A&M Univ, Coll Med, Dept Med Physiol, College Stn, TX 77843 USA
关键词
inflammation; insulin resistance; lymphatic endothelial cells; mitochondria; permeability; NITRIC-OXIDE PRODUCTION; PROTEIN-KINASE AKT; GLUCOSE-UPTAKE; METABOLIC SYNDROME; IN-VIVO; MICROVASCULAR PERMEABILITY; VASCULAR MORPHOGENESIS; STIMULATED PRODUCTION; THORACIC-DUCT; RAT MODEL;
D O I
10.1111/micc.12492
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Objective: Lymphatic vessel dysfunction and increased lymph leakage have been directly associated with several metabolic diseases. However, the underlying cellular mechanisms causing lymphatic dysfunction have not been determined. Aberrant insulin signaling affects the metabolic function of cells and consequently impairs tissue function. We hypothesized that insulin resistance in LECs decreases eNOS activity, disrupts barrier integrity increases permeability, and activates mitochondrial dysfunction and pro-inflammatory signaling pathways. Methods: LECs were treated with insulin and/or glucose to determine the mechanisms leading to insulin resistance. Results: Acute insulin treatment increased eNOS phosphorylation and NO production in LECs via activation of the PI3K/Akt signaling pathway. Prolonged hyperglycemia and hyperinsulinemia induced insulin resistance in LECs. Insulin-resistant LECs produced less NO due to a decrease in eNOS phosphorylation and showed a significant decrease in impedance across an LEC monolayer that was associated with disruption in the adherence junctional proteins. Additionally, insulin resistance in LECs impaired mitochondrial function by decreasing basal-, maximal-, and ATP-linked OCRs and activated NF-kappa B nuclear translocation coupled with increased pro-inflammatory signaling. Conclusion: Our data provide the first evidence that insulin resistance disrupts endothelial barrier integrity, decreases eNOS phosphorylation and mitochondrial function, and activates inflammation in LECs.
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页数:18
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共 107 条
  • [1] DOSE-RESPONSE RELATIONSHIP BETWEEN LYMPH INSULIN AND GLUCOSE-UPTAKE REVEALS ENHANCED INSULIN SENSITIVITY OF PERIPHERAL-TISSUES
    ADER, M
    POULIN, RA
    YANG, YJ
    BERGMAN, RN
    [J]. DIABETES, 1992, 41 (02) : 241 - 253
  • [2] Ecscr regulates insulin sensitivity and predisposition to obesity by modulating endothelial cell functions
    Akakabe, Yoshiki
    Koide, Masahiro
    Kitamura, Youhei
    Matsuo, Kiyonari
    Ueyama, Tomomi
    Matoba, Satoaki
    Yamada, Hiroyuki
    Miyata, Keishi
    Oike, Yuichi
    Ikeda, Koji
    [J]. NATURE COMMUNICATIONS, 2013, 4
  • [3] Insulin does not regulate glucose transport and metabolism in human endothelium
    Artwohl, M.
    Brunmair, B.
    Fuernsinn, C.
    Hoelzenbein, T.
    Rainer, G.
    Freudenthaler, A.
    Porod, E. M.
    Huttary, N.
    Baumgartner-Parzer, S. M.
    [J]. EUROPEAN JOURNAL OF CLINICAL INVESTIGATION, 2007, 37 (08) : 643 - 650
  • [4] Fibronectins in vascular morphogenesis
    Astrof, Sophie
    Hynes, Richard O.
    [J]. ANGIOGENESIS, 2009, 12 (02) : 165 - 175
  • [5] Functionally specialized junctions between endothelial cells of lymphatic vessels
    Baluk, Peter
    Fuxe, Jonas
    Hashizume, Hiroya
    Romano, Talia
    Lashnits, Erin
    Butz, Stefan
    Vestweber, Dietmar
    Corada, Monica
    Molendini, Cinzia
    Dejana, Elisabetta
    McDonald, Donald M.
    [J]. JOURNAL OF EXPERIMENTAL MEDICINE, 2007, 204 (10) : 2349 - 2362
  • [6] ACTIONS OF INSULIN AND INSULINLIKE GROWTH FACTOR-I AND FACTOR-II IN CULTURED MICROVESSEL ENDOTHELIAL-CELLS FROM BOVINE ADIPOSE-TISSUE
    BAR, RS
    SIDDLE, K
    DOLASH, S
    BOES, M
    DAKE, B
    [J]. METABOLISM-CLINICAL AND EXPERIMENTAL, 1988, 37 (08): : 714 - 720
  • [7] The vascular actions of insulin control its delivery to muscle and regulate the rate-limiting step in skeletal muscle insulin action
    Barrett, E. J.
    Eggleston, E. M.
    Inyard, A. C.
    Wang, H.
    Li, G.
    Chai, W.
    Liu, Z.
    [J]. DIABETOLOGIA, 2009, 52 (05) : 752 - 764
  • [8] The endothelial cell: An "early responder" in the development of insulin resistance
    Barrett, Eugene J.
    Liu, Zhenqi
    [J]. REVIEWS IN ENDOCRINE & METABOLIC DISORDERS, 2013, 14 (01) : 21 - 27
  • [9] Nitric oxide formation by lymphatic bulb and valves is a major regulatory component of lymphatic pumping
    Bohlen, H. Glenn
    Gasheva, Olga Yu.
    Zawieja, David C.
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2011, 301 (05): : H1897 - H1906
  • [10] Phasic contractions of rat mesenteric lymphatics increase basal and phasic nitric oxide generation in vivo
    Bohlen, H. Glenn
    Wang, Wei
    Gashev, Anatoliy
    Gasheva, Olga
    Zawieja, Dave
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2009, 297 (04): : H1319 - H1328