Role of Liver CD38 in the Regulation of Metabolic Pathways during Cold-Induced Thermogenesis in Mice

被引:3
|
作者
Benzi, Andrea [1 ]
Spinelli, Sonia [1 ]
Sturla, Laura [1 ]
Heine, Markus [2 ]
Fischer, Alexander W. [2 ]
Koch-Nolte, Friedrich [3 ]
Mittruecker, Hans-Willi [3 ]
Guse, Andreas H. [2 ]
De Flora, Antonio [1 ]
Heeren, Joerg [2 ]
Bruzzone, Santina [1 ]
机构
[1] Univ Genoa, Sect Biochem, DIMES, I-16132 Genoa, Italy
[2] Univ Med Ctr Hamburg Eppendorf, Dept Biochem & Mol Cell Biol, D-20246 Hamburg, Germany
[3] Univ Med Ctr Hamburg Eppendorf, Inst Immunol, D-20246 Hamburg, Germany
关键词
CD38; NAD(P)(H); hepatic metabolism; thermogenesis; browning; ENZYME CD38; PROTEIN; GLUCONEOGENESIS; DYSFUNCTION; CONVERSION; INHIBITOR; COUPLES; SIRT3; ACID;
D O I
10.3390/cells11233812
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Boosting NAD(+) levels are considered a promising means to promote healthy aging and ameliorate dysfunctional metabolism. The expression of CD38, the major NAD(+)-consuming enzyme, is downregulated during thermogenesis in both brown and white adipose tissues (BAT and WAT). Moreover, BAT activation and WAT "browning" were enhanced in Cd38(-/-) mice. In this study, the role of CD38 in the liver during thermogenesis was investigated, with the liver being the central organ controlling systemic energy metabolism. Wild-type mice and Cd38(-/-) mice were exposed to cold temperatures, and levels of metabolites and enzymes were measured in the livers and plasma. During cold exposure, CD38 expression was downregulated in the liver, as in BAT and WAT, with a concomitant increase in NAD(H) and a marked decrease in NADPH levels. Glucose-6-phosphate dehydrogenase and the malic enzyme, along with enzymes in the glycolytic pathway, were downregulated, which is in line with glucose-6-P being re-directed towards glucose release. In Cd38(-/-) mice, the cross-regulation between glycolysis and glucose release was lost, although this did not impair the glucose release from glycogen. Glycerol levels were decreased in the liver from Cd38(-/-) animals upon cold exposure, suggesting that glyceroneogenesis, as gluconeogenesis, was not properly activated in the absence of CD38. SIRT3 activity, regulating mitochondrial metabolism, was enhanced by cold exposure, whereas its activity was already high at a warm temperature in Cd38(-/-) mice and was not further increased by the cold. Notably, FGF21 and bile acid release was enhanced in the liver of Cd38(-/-) mice, which might contribute to enhanced BAT activation in Cd38(-/-) mice. These results demonstrate that CD38 inhibition can be suggested as a strategy to boost NAD(+) and would not negatively affect hepatic functions during thermogenesis.
引用
收藏
页数:19
相关论文
共 15 条
  • [1] Effects of Three Thiazolidinediones on Metabolic Regulation and Cold-Induced Thermogenesis
    Sohn, Jee Hyung
    Kim, Jong In
    Jeon, Yong Geun
    Park, Jeu
    Kim, Jae Bum
    MOLECULES AND CELLS, 2018, 41 (10) : 900 - 908
  • [2] Cold-induced adaptive thermogenesis is impaired by exposure of Asian sand dust in mice
    Bagon, Bernadette B.
    Lee, Junhyeong
    Matienzo, Merc Emil
    Lee, Se-Jin
    Pak, So-Won
    Kim, Keon
    Lee, Jeongmin
    Lee, Chang-Min
    Shin, In -Sik
    Moon, Changjong
    Park, Min -Jung
    Kim, Dong -il
    JOURNAL OF THERMAL BIOLOGY, 2023, 116
  • [3] Regulation of cold-induced thermogenesis by the RNA binding protein FAM195A
    Cannavino, Jessica
    Shao, Mengle
    An, Yu A.
    Bezprozvannaya, Svetlana
    Chen, Shiuhwei
    Kim, Jiwoong
    Xu, Lin
    McAnally, John R.
    Scherer, Philipp E.
    Liu, Ning
    Gupta, Rana K.
    Bassel-Duby, Rhonda
    Olson, Eric N.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2021, 118 (23)
  • [4] The Role of Proton-Coupled Amino Acid Transporter 2 (SLC36A2) in Cold-Induced Thermogenesis of Mice
    Shu, Hui
    Zhang, Jie
    Cheng, Dawei
    Zhao, Xiaorui
    Ma, Yue
    Zhang, Chi
    Zhang, Yong
    Jia, Zhihao
    Liu, Zhiwei
    NUTRIENTS, 2023, 15 (16)
  • [5] The Alterations of Energy Metabolism-related Protein Patterns in Brown Adipose Tissue of Rats During Cold-induced Thermogenesis
    Yang Yue
    Gong Wei
    Wang Wei-Wei
    Yu Xiao-Min
    Hu Song-Nian
    Yu Jun
    PROGRESS IN BIOCHEMISTRY AND BIOPHYSICS, 2010, 37 (10) : 1108 - 1119
  • [6] Distinct physical condition and social behavior phenotypes of CD157 and CD38 knockout mice during aging
    Gerasimenko, Maria
    Lopatina, Olga
    Shabalova, Anna A.
    Cherepanov, Stanislav M.
    Salmina, Alla B.
    Yokoyama, Shigeru
    Goto, Hisanori
    Okamoto, Hiroshi
    Yamamoto, Yasuhiko
    Ishihara, Katsuhiko
    Higashida, Haruhiro
    PLOS ONE, 2020, 15 (12):
  • [7] Treatment Responses of Procaterol and CD38 Inhibitors in an Ozone-Induced Airway Hyperresponsiveness Mice Model
    Deng, Zheng
    Gao, Zhan-Cheng
    Ge, Hui-Qi
    Zhang, Liang-Ren
    Zhou, Jun-Jun
    Zhu, Zhi-Peng
    Wu, Dong-Ying
    Sun, Shuang-Yong
    Chen, Lin
    Pu, Xiao-Ping
    BIOLOGICAL & PHARMACEUTICAL BULLETIN, 2013, 36 (08) : 1348 - 1355
  • [8] Regulation of metabolic pathways in liver and kidney during experimental diabetes: Effects of antidiabetic compounds
    Baquer N.Z.
    Gupta D.
    Raju J.
    Indian Journal of Clinical Biochemistry, 1998, 13 (2) : 63 - 80
  • [9] Substantial Metabolic Activity of Human Brown Adipose Tissue during Warm Conditions and Cold-Induced Lipolysis of Local Triglycerides
    Weir, Graeme
    Ramage, Lynne E.
    Akyol, Murat
    Rhodes, Jonathan K.
    Kyle, Catriona J.
    Fletcher, Alison M.
    Craven, Thomas H.
    Wakelin, Sonia J.
    Drake, Amanda J.
    Gregoriades, Maria-Lena
    Ashton, Ceri
    Weir, Nick
    van Beek, Edwin J. R.
    Karpe, Fredrik
    Walker, Brian R.
    Stimson, Roland H.
    CELL METABOLISM, 2018, 27 (06) : 1348 - +
  • [10] The Cold-Induced Two-Component System CBO0366/CBO0365 Regulates Metabolic Pathways with Novel Roles in Group I Clostridium botulinum ATCC 3502 Cold Tolerance
    Dahlsten, Elias
    Zhang, Zhen
    Somervuo, Panu
    Minton, Nigel P.
    Lindstrom, Miia
    Korkeala, Hannu
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2014, 80 (01) : 306 - 319