Literature DB >> 31694884

Adipose tissue NAD+ biosynthesis is required for regulating adaptive thermogenesis and whole-body energy homeostasis in mice.

Shintaro Yamaguchi1, Michael P Franczyk1, Maria Chondronikola1, Nathan Qi2, Subhadra C Gunawardana3, Kelly L Stromsdorfer1, Lane C Porter1, David F Wozniak4,5, Yo Sasaki6, Nicholas Rensing7, Michael Wong7, David W Piston3, Samuel Klein1,3, Jun Yoshino8,9.   

Abstract

Nicotinamide adenine dinucleotide (NAD+) is a critical coenzyme for cellular energy metabolism. The aim of the present study was to determine the importance of brown and white adipose tissue (BAT and WAT) NAD+ metabolism in regulating whole-body thermogenesis and energy metabolism. Accordingly, we generated and analyzed adipocyte-specific nicotinamide phosphoribosyltransferase (Nampt) knockout (ANKO) and brown adipocyte-specific Nampt knockout (BANKO) mice because NAMPT is the rate-limiting NAD+ biosynthetic enzyme. We found ANKO mice, which lack NAMPT in both BAT and WAT, had impaired gene programs involved in thermogenesis and mitochondrial function in BAT and a blunted thermogenic (rectal temperature, BAT temperature, and whole-body oxygen consumption) response to acute cold exposure, prolonged fasting, and administration of β-adrenergic agonists (norepinephrine and CL-316243). In addition, the absence of NAMPT in WAT markedly reduced adrenergic-mediated lipolytic activity, likely through inactivation of the NAD+-SIRT1-caveolin-1 axis, which limits an important fuel source fatty acid for BAT thermogenesis. These metabolic abnormalities were rescued by treatment with nicotinamide mononucleotide (NMN), which bypasses the block in NAD+ synthesis induced by NAMPT deficiency. Although BANKO mice, which lack NAMPT in BAT only, had BAT cellular alterations similar to the ANKO mice, BANKO mice had normal thermogenic and lipolytic responses. We also found NAMPT expression in supraclavicular adipose tissue (where human BAT is localized) obtained from human subjects increased during cold exposure, suggesting our finding in rodents could apply to people. These results demonstrate that adipose NAMPT-mediated NAD+ biosynthesis is essential for regulating adaptive thermogenesis, lipolysis, and whole-body energy metabolism.

Entities:  

Keywords:  NAD; adipose tissue; energy metabolism; lipolysis; thermogenesis

Mesh:

Substances:

Year:  2019        PMID: 31694884      PMCID: PMC6876243          DOI: 10.1073/pnas.1909917116

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  36 in total

1.  Caveolin-1-ablated mice survive in cold by nonshivering thermogenesis despite desensitized adrenergic responsiveness.

Authors:  Charlotte L Mattsson; Robert I Csikasz; Irina G Shabalina; Jan Nedergaard; Barbara Cannon
Journal:  Am J Physiol Endocrinol Metab       Date:  2010-06-08       Impact factor: 4.310

2.  Whole body and abdominal lipolytic sensitivity to epinephrine is suppressed in upper body obese women.

Authors:  J F Horowitz; S Klein
Journal:  Am J Physiol Endocrinol Metab       Date:  2000-06       Impact factor: 4.310

Review 3.  New Advances in Adaptive Thermogenesis: UCP1 and Beyond.

Authors:  Edward T Chouchani; Lawrence Kazak; Bruce M Spiegelman
Journal:  Cell Metab       Date:  2018-11-29       Impact factor: 27.287

4.  Diet-induced obesity and insulin resistance are associated with brown fat degeneration in SIRT1-deficient mice.

Authors:  Fen Xu; Xiaobin Zheng; Beisi Lin; Hua Liang; Mengyin Cai; Huanyi Cao; Jianping Ye; Jianping Weng
Journal:  Obesity (Silver Spring)       Date:  2016-03       Impact factor: 5.002

Review 5.  Modulating NAD+ metabolism, from bench to bedside.

Authors:  Elena Katsyuba; Johan Auwerx
Journal:  EMBO J       Date:  2017-08-07       Impact factor: 11.598

6.  SIRT1-Mediated eNAMPT Secretion from Adipose Tissue Regulates Hypothalamic NAD+ and Function in Mice.

Authors:  Myeong Jin Yoon; Mitsukuni Yoshida; Sean Johnson; Akiko Takikawa; Isao Usui; Kazuyuki Tobe; Takashi Nakagawa; Jun Yoshino; Shin-ichiro Imai
Journal:  Cell Metab       Date:  2015-04-23       Impact factor: 27.287

7.  Altered mitochondrial function and metabolic inflexibility associated with loss of caveolin-1.

Authors:  Ingrid Wernstedt Asterholm; Dorothy I Mundy; Jian Weng; Richard G W Anderson; Philipp E Scherer
Journal:  Cell Metab       Date:  2012-02-08       Impact factor: 27.287

Review 8.  Brown and beige fat in humans: thermogenic adipocytes that control energy and glucose homeostasis.

Authors:  Labros Sidossis; Shingo Kajimura
Journal:  J Clin Invest       Date:  2015-02-02       Impact factor: 14.808

9.  Loss of NAD Homeostasis Leads to Progressive and Reversible Degeneration of Skeletal Muscle.

Authors:  David W Frederick; Emanuele Loro; Ling Liu; Antonio Davila; Karthikeyani Chellappa; Ian M Silverman; William J Quinn; Sager J Gosai; Elisia D Tichy; James G Davis; Foteini Mourkioti; Brian D Gregory; Ryan W Dellinger; Philip Redpath; Marie E Migaud; Eiko Nakamaru-Ogiso; Joshua D Rabinowitz; Tejvir S Khurana; Joseph A Baur
Journal:  Cell Metab       Date:  2016-08-09       Impact factor: 27.287

10.  Cold-Induced Thermogenesis Depends on ATGL-Mediated Lipolysis in Cardiac Muscle, but Not Brown Adipose Tissue.

Authors:  Renate Schreiber; Clemens Diwoky; Gabriele Schoiswohl; Ursula Feiler; Nuttaporn Wongsiriroj; Mahmoud Abdellatif; Dagmar Kolb; Joris Hoeks; Erin E Kershaw; Simon Sedej; Patrick Schrauwen; Guenter Haemmerle; Rudolf Zechner
Journal:  Cell Metab       Date:  2017-10-05       Impact factor: 27.287

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Journal:  J Clin Invest       Date:  2020-12-01       Impact factor: 14.808

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Authors:  Julianna D Zeidler; Kelly A Hogan; Guillermo Agorrody; Thais R Peclat; Sonu Kashyap; Karina S Kanamori; Lilian Sales Gomez; Delaram Z Mazdeh; Gina M Warner; Katie L Thompson; Claudia C S Chini; Eduardo Nunes Chini
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Review 3.  Harnessing NAD+ Metabolism as Therapy for Cardiometabolic Diseases.

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4.  Nicotinamide mononucleotide increases muscle insulin sensitivity in prediabetic women.

Authors:  Mihoko Yoshino; Jun Yoshino; Brandon D Kayser; Gary J Patti; Michael P Franczyk; Kathryn F Mills; Miriam Sindelar; Terri Pietka; Bruce W Patterson; Shin-Ichiro Imai; Samuel Klein
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Journal:  Hepatology       Date:  2021-06-22       Impact factor: 17.425

6.  Importance of Adipose Tissue NAD+ Biology in Regulating Metabolic Flexibility.

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Review 7.  An update on brown adipose tissue biology: a discussion of recent findings.

Authors:  Rafael C Gaspar; José R Pauli; Gerald I Shulman; Vitor R Muñoz
Journal:  Am J Physiol Endocrinol Metab       Date:  2021-01-18       Impact factor: 4.310

Review 8.  Targeting hepatocyte carbohydrate transport to mimic fasting and calorie restriction.

Authors:  Jacqueline Kading; Brian N Finck; Brian J DeBosch
Journal:  FEBS J       Date:  2020-07-26       Impact factor: 5.622

Review 9.  The role of ADP-ribose metabolism in metabolic regulation, adipose tissue differentiation, and metabolism.

Authors:  Magdolna Szántó; Peter Bai
Journal:  Genes Dev       Date:  2020-02-06       Impact factor: 11.361

Review 10.  Nicotinamide Mononucleotide: A Promising Molecule for Therapy of Diverse Diseases by Targeting NAD+ Metabolism.

Authors:  Weiqi Hong; Fei Mo; Ziqi Zhang; Mengyuan Huang; Xiawei Wei
Journal:  Front Cell Dev Biol       Date:  2020-04-28
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