Selective delivery of nitric oxide to a cellular target: A pseudosubstrate-coupled dinitrosyl-iron complex inhibits the enteroviral protease 2A

被引:24
作者
Badorff, C
Fichtlscherer, B
Muelsch, A
Zeiher, AM
Dimmeler, S
机构
[1] Univ Frankfurt, Dept Internal Med 4, Mol Cardiol Unit, Dept Med 4, D-60590 Frankfurt, Germany
[2] Univ Frankfurt, Inst Cardiovasc Physiol, D-60590 Frankfurt, Germany
来源
NITRIC OXIDE-BIOLOGY AND CHEMISTRY | 2002年 / 6卷 / 03期
关键词
nitric oxide; dinitrosyl-iron complex; protease; 2A; coxsackievirus; enteroviruses;
D O I
10.1006/niox.2001.0413
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Nitric oxide (NO) regulates multiple biological processes. To use NO as a potential therapeutic substance, a more selective modulation of individual NO targets is desirable. Here, we tested whether peptide conjugation of the dinitrosyl-iron complex (DNIC), a potent NO donor, confers targeted NO delivery. As target, we used the protease 2A of Coxsackie-B-viruses (2A(pro)), which can cause dilated cardiomyopathy. Through S-nitrosylation, NO inhibits this protease, which is essential for viral replication. The tetrapeptide Leu-SerThr-Cys (LSTC) (based on the 2A(pro) substrate recognition motif) and DNIC generated LSTC-DNIC in vitro by S-nitrosylation as evidenced by reverse-phase chromatography. In vitro, LSTC-DNIC (IC50 510 nM) dose-dependently inhibited purified 2A(pro) 4.7-fold more effectively than DNIC (IC50 2.4 muM), whereas LSTC alone had no effect. In intact cells, expression of Coxsackievirus protease 2A by transient transfection led to eIF4G-I-cleavage. LSTC-DNIC (IC50 23 muM) dose-dependently inhibited eIF4G cleavage in 2A(pro)-transfected cells 3.8-fold more effectively than DNIC (IC50 88 muM). To test the specificity of the DNIC-conjugated LSTC peptide part, we investigated its influence on Caspase-3, a known target for S-nitrosylation. LSTC-DNIC and DNIC inhibited purified Caspase-3 in vitro (IC50 3.7 muM) and in intact cells similarly. LSTC conjugation of DNIC enhances its fidelity for inhibition of 2A(pro) in vitro and intracellularly. Peptide-DNIC may be useful to selectively modulate cellular processes by NO, i.e., to enhance its antiviral properties. (C) 2001 Elsevier Science (USA).
引用
收藏
页码:305 / 312
页数:8
相关论文
共 31 条
  • [21] The structure of the 2A proteinase from a common cold virus: a proteinase responsible for the shut-off of host-cell protein synthesis
    Petersen, JFW
    Cherney, MM
    Liebig, HD
    Skern, T
    Kuechler, E
    James, MNG
    [J]. EMBO JOURNAL, 1999, 18 (20) : 5463 - 5475
  • [22] Nitric oxide inhibits caspase-3 by S-nitrosation in vivo
    Rössig, L
    Fichtlscherer, B
    Breitschopf, K
    Haendeler, J
    Zeiher, AM
    Mülsch, A
    Dimmeler, S
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (11) : 6823 - 6826
  • [23] Akt-dependent phosphorylation of p21Cip1 regulates PCNA binding and proliferation of endothelial cells
    Rössig, L
    Jadidi, AS
    Urbich, C
    Badorff, C
    Zeiher, AM
    Dimmeler, S
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 2001, 21 (16) : 5644 - 5657
  • [24] Rossoni G, 2001, J PHARMACOL EXP THER, V297, P380
  • [25] RUECKERT RR, 1996, FIELDS VIROLOGY, V3, P609
  • [26] An antiviral mechanism of nitric oxide: Inhibition of a viral protease
    Saura, M
    Zaragoza, C
    McMillan, A
    Quick, RA
    Hohenadl, C
    Lowenstein, JM
    Lowenstein, CJ
    [J]. IMMUNITY, 1999, 10 (01) : 21 - 28
  • [27] BIOCHEMISTRY OF NITRIC-OXIDE AND ITS REDOX-ACTIVATED FORMS
    STAMLER, JS
    SINGEL, DJ
    LOSCALZO, J
    [J]. SCIENCE, 1992, 258 (5090) : 1898 - 1902
  • [28] Vanin AF, 1998, BIOCHEMISTRY-MOSCOW+, V63, P782
  • [29] Cleavage specificity of human rhinovirus-2 2A protease for peptide substrates
    Wang, QM
    Sommergruber, W
    Johnson, RB
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1997, 235 (03) : 562 - 566
  • [30] Nitric oxide inhibition of coxsackievirus replication in vitro
    Zaragoza, C
    Ocampo, CJ
    Saura, M
    McMillan, A
    Lowenstein, CJ
    [J]. JOURNAL OF CLINICAL INVESTIGATION, 1997, 100 (07) : 1760 - 1767