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Cited 12 time in webofscience Cited 16 time in scopus
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NAMPT mitigates colitis severity by supporting redox-sensitive activation of phagocytosis in inflammatory macrophages SCIE SCOPUS

Title
NAMPT mitigates colitis severity by supporting redox-sensitive activation of phagocytosis in inflammatory macrophages
Authors
Hong, Sun MiLee, A-YeonHwang, Sung-MinHa, Yu-JinKim, Moo-JinMin, SeongkiHwang, WonYoon, GyesoonKwon, So MeeWoo, Hyun GooKim, Hee-HoonJeong, Won-IlShen, Han-MingIm, Sin-HyeogLee, DakeunKim, You-Sun
Date Issued
2022-04
Publisher
Elsevier BV
Abstract
Nicotinamide phosphoribosyltransferase (NAMPT) is the rate-limiting enzyme in the nicotinamide adenine dinucleotide (NAD+) salvage pathway and plays a crucial role in the maintenance of the NAD+ pool during inflammation. Considering that macrophages are essential for tissue homeostasis and inflammation, we sought to examine the functional impact of NAMPT in inflammatory macrophages, particularly in the context of inflammatory bowel disease (IBD). In this study, we show that mice with NAMPT deletion within the myeloid compartment (Namptf/fLysMCre+/-, Nampt mKO) have more pronounced colitis with lower survival rates, as well as numerous uncleared apoptotic corpses within the mucosal layer. Nampt-deficient macrophages exhibit reduced phagocytic activity due to insufficient NAD+ abundance, which is required to produce NADPH for the oxidative burst. Nicotinamide mononucleotide (NMN) treatment rescues NADPH levels in Nampt mKO macrophages and sustains superoxide generation via NADPH oxidase. Consequently, Nampt mKO mice fail to clear dead cells during tissue repair, leading to substantially prolonged chronic colitis. Moreover, systemic administration of NMN, to supply NAD+, effectively suppresses the disease severity of DSS-induced colitis. Collectively, our findings suggest that activation of the NAMPT-dependent NAD+ biosynthetic pathway, via NMN administration, is a potential therapeutic strategy for managing inflammatory diseases.
URI
https://oasis.postech.ac.kr/handle/2014.oak/109585
DOI
10.1016/j.redox.2022.102237
ISSN
2213-2317
Article Type
Article
Citation
Redox Biology, vol. 50, 2022-04
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임신혁IM, SIN HYEOG
Dept of Life Sciences
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