Increased Sirt1 secreted from visceral white adipose tissue is associated with improved glucose tolerance in obese Nrf2-deficient mice

被引:21
|
作者
Braud, Laura [1 ]
Pini, Maria [1 ]
Stec, Donald F. [2 ]
Manin, Sylvie [1 ]
Derumeaux, Genevieve [1 ]
Stec, David E. [3 ]
Foresti, Roberta [1 ]
Motterlini, Roberto [1 ]
机构
[1] Univ Paris Est Creteil, IMRB, INSERM, F-94010 Creteil, France
[2] Vanderbilt Univ, Vanderbilt Inst Chem Biol VICB, Nashville, TN USA
[3] Univ Mississippi, Med Ctr, Jackson, MS 39216 USA
来源
REDOX BIOLOGY | 2021年 / 38卷
关键词
Nrf2; Sirtuin; 1; Obesity; White adipose tissue; Glucose metabolism; DIET-INDUCED OBESITY; INSULIN-RESISTANCE; KEAP1-NRF2; SYSTEM; NRF2; PROTECTS; ADIPOCYTES; DEFICIENCY; EXPRESSION; INDUCTION; STRESS;
D O I
10.1016/j.redox.2020.101805
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Obesity is associated with metabolic dysregulation characterized by insulin resistance and glucose intolerance. Nuclear factor E2-related factor (Nrf2) is a critical regulator of the stress response and Nrf2-deficient mice (Nrf2(-/-)) are protected against high fat diet (HFD)-induced metabolic derangement. We searched for factors that could underline this favorable phenotype and found that Nrf2(-/-) mice exhibit higher circulating levels of sirtuin 1 (Sirt1), a key player in cellular homeostasis and energy metabolism, compared to wild-type mice. Increased Sirt1 levels in Nrf2(-/-) mice were found not only in animals under standard diet but also following HFD. Interestingly, we report here that the visceral adipose tissue (eWAT) is the sole source of increased Sirt1 protein in plasma. eWAT and other fat depots displayed enhanced adipocytes lipolysis, increased fatty acid oxidation and glycolysis, suggesting autocrine and endocrine actions of Sirt1 in this model. We further demonstrate that removal of eWAT completely abolishes the increase in circulating Sirt1 and that this procedure suppresses the beneficial effect of Nrf2 deficiency on glucose tolerance, but not insulin sensitivity, following a HFD regime. Thus, in contrast to many other stressful conditions where Nrf2 deficiency exacerbates damage, our study indicates that up-regulation of Sirt1 levels specifically in the visceral adipose tissue of Nrf2(-/-) mice is a key adaptive mechanism that mitigates glucose intolerance induced by nutritional stress.
引用
收藏
页数:11
相关论文
共 11 条
  • [1] Improvement of glucose homeostasis by SIRT1 and calorie restriction is associated with differential gene network regulation in white adipose tissue
    Villena, J. A.
    Pardo, R.
    Herrero, L.
    Vila, M.
    DIABETOLOGIA, 2019, 62 : S312 - S312
  • [2] Weight Loss Is Associated With Increased NAD+/SIRT1 Expression But Reduced PARP Activity in White Adipose Tissue
    Rappou, Elisabeth
    Jukarainen, Sakari
    Rinnankoski-Tuikka, Rita
    Kaye, Sanna
    Heinonen, Sini
    Hakkarainen, Antti
    Lundbom, Jesper
    Lundbom, Nina
    Saunavaara, Virva
    Rissanen, Aila
    Virtanen, Kirsi A.
    Pirinen, Eija
    Pietilainen, Kirsi H.
    JOURNAL OF CLINICAL ENDOCRINOLOGY & METABOLISM, 2016, 101 (03): : 1263 - 1273
  • [3] Transplantation of adipose tissue from mice overexpressing WISP2 increases FAHFAs and glucose tolerance in obese mice
    Gruenberg, J. R.
    Hoffmann, J. M.
    Hedjazifar, S.
    Syed, I.
    Saghetelian, A.
    Kahn, B. B.
    Hammarstedt, A.
    Smith, U.
    DIABETOLOGIA, 2016, 59 : S48 - S48
  • [4] Increased systemic and adipose tissue inflammation differentiates obese women with T2DM from obese women with normal glucose tolerance
    van Beek, Lianne
    Lips, Mirjam A.
    Visser, Annemieke
    Pijl, Hanno
    Ioan-Facsinay, Andreea
    Toes, Rene
    Berends, Frits J.
    van Dijk, Ko Willems
    Koning, Frits
    van Harmelen, Vanessa
    METABOLISM-CLINICAL AND EXPERIMENTAL, 2014, 63 (04): : 492 - 501
  • [5] Brown and White Adipose Tissue Expression of IL6, UCP1 and SIRT1 are Associated with Alterations in Clinical, Metabolic and Anthropometric Parameters in Obese Humans
    Barcala Jorge, Antonio Sergio
    Batista Jorge, Gislaine Candida
    Paraiso, Alanna Fernandes
    Porto Franco, Raissa M.
    Tolentino Vieira, Lara Jhullian
    Hilzenderger, Aline Mourao
    Sena Guimaraes, Andre Luiz
    Oliveira Andrade, Joao Marcus
    Batista De-Paula, Alfredo M.
    Santos, Sergio Henrique S.
    EXPERIMENTAL AND CLINICAL ENDOCRINOLOGY & DIABETES, 2017, 125 (03) : 163 - 170
  • [6] Increased expression of SREBP-1 and DGAT-1 genes in enlarging white adipose tissue in IRS-2 deficient mice
    Suzuki, R
    Tobe, K
    Aoyama, M
    Kubota, N
    Terauchi, Y
    Ohsumi, J
    Abe, M
    Tanaka, J
    Kadowaki, T
    DIABETES, 2002, 51 : A89 - A90
  • [7] Metformin opposes impaired AMPK and SIRT1 function and deleterious changes in core clock protein expression in white adipose tissue of genetically-obese db/db mice
    Caton, P. W.
    Kieswich, J.
    Yaqoob, M. M.
    Holness, M. J.
    Sugden, M. C.
    DIABETES OBESITY & METABOLISM, 2011, 13 (12): : 1097 - 1104
  • [8] Up-regulation of the Sirtuin 1 (Sirt1) and Peroxisome Proliferator-activated Receptor γ Coactivator-1α (PGC-1α) Genes in White Adipose Tissue of Id1 Protein-deficient Mice IMPLICATIONS IN THE PROTECTION AGAINST DIET AND AGE-INDUCED GLUCOSE INTOLERANCE
    Zhao, Ying
    Ling, Flora
    Griffin, Timothy M.
    He, Ting
    Towner, Rheal
    Ruan, Hong
    Sun, Xiao-Hong
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (42) : 29112 - 29122
  • [9] Increased uncoupling protein2 mRNA in white adipose tissue, and decrease in leptin, visceral fat, blood glucose, and cholesterol in KK-Ay mice fed with eicosapentaenoic and docosahexaenoic acids in addition to linolenic acid
    Hun, CS
    Hasegawa, K
    Kawabata, T
    Kato, M
    Shimokawa, T
    Kagawa, Y
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1999, 259 (01) : 85 - 90
  • [10] Effects Of Anthocyanin On Fatty Acid-Associated Alterations In Mitochondrial Dynamics, Biogenesis And Thermogenesis In White Adipose Tissue From Obese Mice And In 3T3-L1 Mature Adipocytes
    Cremonini, Eleonora
    Da Silva, Leane
    Rodriguez-Lanzi, Cecilia Maria
    Iglesias, Dario
    Marino, Mirko
    Fraga, Cesar
    Oteiza, Patricia
    FREE RADICAL BIOLOGY AND MEDICINE, 2023, 208 : S15 - S15