Literature DB >> 23184288

Lipopolysaccharide induces CD38 expression and solubilization in J774 macrophage cells.

Cha-Uk Lee1, Eun-Kyung Song, Chae-Hwa Yoo, Yong-Keun Kwak, Myung-Kwan Han.   

Abstract

CD38, an ADP ribosyl cyclase, is a 45 kDa type II transmembrane protein having a short N-terminal cytoplasmic domain and a long C-terminal extracellular domain, expressed on the surface of various cells including macrophages, lymphocytes, and pancreatic β cells. It is known to be involved in cell adhesion, signal transduction and calcium signaling. In addition to its transmembrane form, CD38 is detectable in biological fluids in soluble forms. The mechanism by which CD38 is solubilized from the plasma membrane is not yet clarified. In this study, we found that lipopolysaccharide (LPS) induced CD38 upregulation and its extracellular release in J774 macrophage cells. Furthermore, it also increased CD38 expression at the mRNA level by activating the Janus kinase-signal transducers and activators of transcription (JAK-STAT) pathway. However, LPS decreased the levels of CD38 in the plasma membrane by releasing CD38 into the culture supernatant. LPS-induced CD38 release was blocked by the metalloproteinase-9 inhibitor indicating that MMP-9 solubilizes CD38. In conclusion, the present findings demonstrate a potential mechanism by which C38 is solubilized from the plasma membrane.

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Year:  2012        PMID: 23184288      PMCID: PMC3887823          DOI: 10.1007/s10059-012-0263-3

Source DB:  PubMed          Journal:  Mol Cells        ISSN: 1016-8478            Impact factor:   5.034


  20 in total

Review 1.  Topology of CD38.

Authors:  A De Flora; L Franco; L Guida; S Bruzzone; C Usai; E Zocchi
Journal:  Chem Immunol       Date:  2000

2.  Metabolism of cyclic ADP-ribose: Zinc is an endogenous modulator of the cyclase/NAD glycohydrolase ratio of a CD38-like enzyme from human seminal fluid.

Authors:  Weronika Zielinska; Hosana Barata; Eduardo N Chini
Journal:  Life Sci       Date:  2004-02-20       Impact factor: 5.037

Review 3.  Matrix metalloproteinases as modulators of inflammation and innate immunity.

Authors:  William C Parks; Carole L Wilson; Yolanda S López-Boado
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Authors:  A Funaro; G C Spagnoli; C M Ausiello; M Alessio; S Roggero; D Delia; M Zaccolo; F Malavasi
Journal:  J Immunol       Date:  1990-10-15       Impact factor: 5.422

5.  Cyclic ADP-ribose production by CD38 regulates intracellular calcium release, extracellular calcium influx and chemotaxis in neutrophils and is required for bacterial clearance in vivo.

Authors:  S Partida-Sánchez; D A Cockayne; S Monard; E L Jacobson; N Oppenheimer; B Garvy; K Kusser; S Goodrich; M Howard; A Harmsen; T D Randall; F E Lund
Journal:  Nat Med       Date:  2001-11       Impact factor: 53.440

6.  Connexin-43 hemichannels mediate cyclic ADP-ribose generation and its Ca2+-mobilizing activity by NAD+/cyclic ADP-ribose transport.

Authors:  Eun-Kyung Song; So-Young Rah; Young-Rae Lee; Chae-Hwa Yoo; Yu-Ri Kim; Ji-Hyun Yeom; Kwang-Hyun Park; Jong-Suk Kim; Uh-Hyun Kim; Myung-Kwan Han
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7.  Interaction between endothelium and CD4+CD45RA+ lymphocytes. Role of the human CD38 molecule.

Authors:  U Dianzani; A Funaro; D DiFranco; G Garbarino; M Bragardo; V Redoglia; D Buonfiglio; L B De Monte; A Pileri; F Malavasi
Journal:  J Immunol       Date:  1994-08-01       Impact factor: 5.422

8.  Formation and hydrolysis of cyclic ADP-ribose catalyzed by lymphocyte antigen CD38.

Authors:  M Howard; J C Grimaldi; J F Bazan; F E Lund; L Santos-Argumedo; R M Parkhouse; T F Walseth; H C Lee
Journal:  Science       Date:  1993-11-12       Impact factor: 47.728

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Authors:  Shinya Sakaguchi; Hideo Negishi; Masataka Asagiri; Chigusa Nakajima; Tatsuaki Mizutani; Akinori Takaoka; Kenya Honda; Tadatsugu Taniguchi
Journal:  Biochem Biophys Res Commun       Date:  2003-07-11       Impact factor: 3.575

10.  ADP-ribosyl cyclase: an enzyme that cyclizes NAD+ into a calcium-mobilizing metabolite.

Authors:  H C Lee; R Aarhus
Journal:  Cell Regul       Date:  1991-03
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