Literature DB >> 30833708

Nicotinamide phosphoribosyltransferase aggravates inflammation and promotes atherosclerosis in ApoE knockout mice.

Yuan-Yuan Kong1, Guo-Qiang Li1, Wen-Jie Zhang1, Xia Hua1, Can-Can Zhou1, Tian-Ying Xu1, Zhi-Yong Li1, Pei Wang2,3, Chao-Yu Miao4.   

Abstract

Nicotinamide phosphoribosyltransferase (Nampt) is the rate-limiting enzyme of nicotinamide adenine dinucleotide (NAD) salvage biosynthesis in mammals, and is involved in fundamental physiological processes and pathophysiology of many diseases. Thus far, however, the role of Nampt in atherosclerosis development is still in debate. In this study, we crossed global Nampt transgenic mice (Nampt-Tg) with a well-established atherosclerosis animal model (ApoE knockout mice, ApoE-/-) to generate ApoE-/-;Nampt-Tg mice and investigated the effects of Nampt overexpression on atherosclerosis development in ApoE-/- mice. Both ApoE-/- and ApoE-/-;Nampt-Tg mice were fed with a pro-atherosclerotic high-fat diet (HFD) for 16 weeks. Their serum lipid contents and atherosclerotic lesion were assessed. The results showed that there was no significant difference in body weight or serum levels of glucose, total cholesterol, triglycerides, high-density lipoprotein cholesterol, and low-density lipoprotein cholesterol between the two strains of mice, but ApoE-/-;Nampt-Tg mice had a significantly higher level of serum non-esterified fatty acid. Compared with ApoE-/- mice, ApoE-/-;Nampt-Tg mice displayed significantly increased atherosclerotic lesion area and thickness, lower collagen content, decreased collagen I/III ratio (collagen immaturation), increased number of apoptotic cells, and enhanced activities of caspase-3, caspase-8, and caspase-9. Moreover, macrophage infiltration (F4/80 staining), tumor necrosis factor signaling, and chemokines expression (ICAM-1 and CXCR-4) were all activated in aortic atherosclerotic plaque of ApoE-/-;Nampt-Tg mice compared with ApoE-/- mice. Our results provide in vivo evidence that Nampt transgene aggravates atherosclerotic inflammation and promotes atherosclerosis development in ApoE-/- mice.

Entities:  

Keywords:  Nampt; apoptosis; atherosclerosis; tumor necrosis factor-α inflammation; vascular smooth muscle cell

Mesh:

Substances:

Year:  2019        PMID: 30833708      PMCID: PMC6786310          DOI: 10.1038/s41401-018-0207-3

Source DB:  PubMed          Journal:  Acta Pharmacol Sin        ISSN: 1671-4083            Impact factor:   6.150


  51 in total

1.  Nicotinamide phosphoribosyltransferase regulates cell survival through NAD+ synthesis in cardiac myocytes.

Authors:  Chiao-Po Hsu; Shinichi Oka; Dan Shao; Nirmala Hariharan; Junichi Sadoshima
Journal:  Circ Res       Date:  2009-08-06       Impact factor: 17.367

2.  Nampt/PBEF/Visfatin regulates insulin secretion in beta cells as a systemic NAD biosynthetic enzyme.

Authors:  Javier R Revollo; Antje Körner; Kathryn F Mills; Akiko Satoh; Tao Wang; Antje Garten; Biplab Dasgupta; Yo Sasaki; Cynthia Wolberger; R Reid Townsend; Jeffrey Milbrandt; Wieland Kiess; Shin-Ichiro Imai
Journal:  Cell Metab       Date:  2007-11       Impact factor: 27.287

3.  NAMPT is essential for the G-CSF-induced myeloid differentiation via a NAD(+)-sirtuin-1-dependent pathway.

Authors:  Julia Skokowa; Dan Lan; Basant Kumar Thakur; Fei Wang; Kshama Gupta; Gunnar Cario; Annette Müller Brechlin; Axel Schambach; Lars Hinrichsen; Gustav Meyer; Matthias Gaestel; Martin Stanulla; Qiang Tong; Karl Welte
Journal:  Nat Med       Date:  2009-02-01       Impact factor: 53.440

4.  Nutrient-sensitive mitochondrial NAD+ levels dictate cell survival.

Authors:  Hongying Yang; Tianle Yang; Joseph A Baur; Evelyn Perez; Takashi Matsui; Juan J Carmona; Dudley W Lamming; Nadja C Souza-Pinto; Vilhelm A Bohr; Anthony Rosenzweig; Rafael de Cabo; Anthony A Sauve; David A Sinclair
Journal:  Cell       Date:  2007-09-21       Impact factor: 41.582

Review 5.  Physiological and pathophysiological roles of NAMPT and NAD metabolism.

Authors:  Antje Garten; Susanne Schuster; Melanie Penke; Theresa Gorski; Tommaso de Giorgis; Wieland Kiess
Journal:  Nat Rev Endocrinol       Date:  2015-07-28       Impact factor: 43.330

6.  Extracellular Nampt promotes macrophage survival via a nonenzymatic interleukin-6/STAT3 signaling mechanism.

Authors:  Yankun Li; Yuan Zhang; Bernhard Dorweiler; Dongying Cui; Tao Wang; Connie W Woo; Cynthia S Brunkan; Cynthia Wolberger; Shin-ichiro Imai; Ira Tabas
Journal:  J Biol Chem       Date:  2008-10-21       Impact factor: 5.157

7.  Nicotinamide phosphoribosyltransferase (NAMPT/PBEF/visfatin) is constitutively released from human hepatocytes.

Authors:  A Garten; S Petzold; A Barnikol-Oettler; A Körner; W E Thasler; J Kratzsch; W Kiess; R Gebhardt
Journal:  Biochem Biophys Res Commun       Date:  2009-11-11       Impact factor: 3.575

8.  PGC1α drives NAD biosynthesis linking oxidative metabolism to renal protection.

Authors:  Mei T Tran; Zsuzsanna K Zsengeller; Anders H Berg; Eliyahu V Khankin; Manoj K Bhasin; Wondong Kim; Clary B Clish; Isaac E Stillman; S Ananth Karumanchi; Eugene P Rhee; Samir M Parikh
Journal:  Nature       Date:  2016-03-16       Impact factor: 49.962

9.  Circadian clock feedback cycle through NAMPT-mediated NAD+ biosynthesis.

Authors:  Kathryn Moynihan Ramsey; Jun Yoshino; Cynthia S Brace; Dana Abrassart; Yumiko Kobayashi; Biliana Marcheva; Hee-Kyung Hong; Jason L Chong; Ethan D Buhr; Choogon Lee; Joseph S Takahashi; Shin-Ichiro Imai; Joseph Bass
Journal:  Science       Date:  2009-03-19       Impact factor: 47.728

10.  Monomeric eNAMPT in the development of experimental diabetes in mice: a potential target for type 2 diabetes treatment.

Authors:  Julius Kieswich; Sophie R Sayers; Marta F Silvestre; Steven M Harwood; Muhammad M Yaqoob; Paul W Caton
Journal:  Diabetologia       Date:  2016-08-19       Impact factor: 10.122

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  7 in total

1.  Both gain and loss of Nampt function promote pressure overload-induced heart failure.

Authors:  Jaemin Byun; Shin-Ichi Oka; Nobushige Imai; Chun-Yang Huang; Guersom Ralda; Peiyong Zhai; Yoshiyuki Ikeda; Shohei Ikeda; Junichi Sadoshima
Journal:  Am J Physiol Heart Circ Physiol       Date:  2019-07-26       Impact factor: 4.733

Review 2.  NAD+ and Vascular Dysfunction: From Mechanisms to Therapeutic Opportunities.

Authors:  Mahmoud Abdellatif; Heiko Bugger; Guido Kroemer; Simon Sedej
Journal:  J Lipid Atheroscler       Date:  2022-04-06

3.  Bacteroides fragilis Supplementation Deteriorated Metabolic Dysfunction, Inflammation, and Aorta Atherosclerosis by Inducing Gut Microbiota Dysbiosis in Animal Model.

Authors:  Guoxiang Shi; Yubi Lin; Yuanyuan Wu; Jing Zhou; Lixiang Cao; Jiyan Chen; Yong Li; Ning Tan; Shilong Zhong
Journal:  Nutrients       Date:  2022-05-25       Impact factor: 6.706

4.  NAMPT/SIRT1 Attenuate Ang II-Induced Vascular Remodeling and Vulnerability to Hypertension by Inhibiting the ROS/MAPK Pathway.

Authors:  Lei Zhou; Sheng Zhang; Enkhbat Bolor-Erdene; Lingwei Wang; Ding Tian; Yunqing Mei
Journal:  Oxid Med Cell Longev       Date:  2020-12-30       Impact factor: 6.543

5.  Astragaloside IV Relieves Atherosclerosis and Hepatic Steatosis via MAPK/NF-κB Signaling Pathway in LDLR-/- Mice.

Authors:  Yifan Zhang; Min Du; Jiarou Wang; Ping Liu
Journal:  Front Pharmacol       Date:  2022-02-21       Impact factor: 5.810

6.  Visfatin Amplifies Cardiac Inflammation and Aggravates Cardiac Injury via the NF-κB p65 Signaling Pathway in LPS-Treated Mice.

Authors:  Yewen Hu; Nan Wu; Weiping Du; Shuangshuang Wang; Jian Wang; Chaoxia Zhang; Xiaomin Chen; Caijie Shen
Journal:  Mediators Inflamm       Date:  2022-10-10       Impact factor: 4.529

Review 7.  Therapeutic Potential of Emerging NAD+-Increasing Strategies for Cardiovascular Diseases.

Authors:  Noemi Rotllan; Mercedes Camacho; Mireia Tondo; Elena M G Diarte-Añazco; Marina Canyelles; Karen Alejandra Méndez-Lara; Sonia Benitez; Núria Alonso; Didac Mauricio; Joan Carles Escolà-Gil; Francisco Blanco-Vaca; Josep Julve
Journal:  Antioxidants (Basel)       Date:  2021-12-03
  7 in total

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