Inhibition of LPS-induced nitric oxide production by transduced Tat-arginine deiminase fusion protein in Raw 264.7 cells
Author(s) -
Min-Jung Lee,
Dae Won Kim,
Yeom-Pyo Lee,
Hoon-Jae Jeong,
Hye-Won Kang,
Min-Jae Shin,
Eun-Jeong Sohn,
Mi Jin Kim,
Sang-Ho Jang,
Tae-Cheon Kang,
Moo-Ho Won,
Bon-Hong Min,
SungWoo Cho,
Kil-Soo Lee,
Jinseu Park,
Won-Sik Eum,
Soo-Young Choi
Publication year - 2009
Publication title -
bmb reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.511
H-Index - 77
eISSN - 1976-670X
pISSN - 1976-6696
DOI - 10.5483/bmbrep.2009.42.5.286
Subject(s) - arginine deiminase , nitric oxide , fusion protein , arginine , viability assay , chemistry , lipopolysaccharide , cell culture , enzyme , inflammation , cancer research , biochemistry , microbiology and biotechnology , cell , biology , gene , recombinant dna , amino acid , immunology , genetics , organic chemistry
Arginine deiminase (ADI), an arginine-degrading enzyme, has anti-proliferative and anti-tumor activities and is capable of inhibiting the production of nitric oxide (NO). Modulation of nitric oxide (NO) production is considered a promising approach for the treatment of various diseases including cancer, inflammation and neuronal disorders. In this study, an ADI gene was fused with an HIV-1 Tat peptide in a bacterial expression vector to produce an genetic in-frame Tat-ADI fusion protein. When added exogenously to the culture media, the expressed and purified Tat-ADI fusion proteins were efficiently transduced into macrophage Raw 264.7 cells in a time- and dose-dependent manner. Furthermore, transduced Tat-ADI fusion proteins markedly increased cell viability in cells treated with lipopolysaccharide (LPS). This increase in viability was mediated by an inhibition of NO production. These results suggest that this Tat-ADI fusion protein can be used in protein therapies of NO-related disorders such as cancer, inflammation and neuronal diseases.
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