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Kinetic Studies of Metalloporphyrins Bonding with Nitric Oxide
Corresponding Author(s) : Jianbin Zhang
Asian Journal of Chemistry,
Vol. 26 No. 16 (2014): Vol 26 Issue 16
Abstract
At room temperature, the bonding of metalloporphyrins with nitric oxide was investigated in dichloromethane by conventional fluorescence and UV-visible techniques. Spectral analyses showed that metalloporphyrins can react with nitric oxide in a nitric oxide-saturated solution. The experimental rate follows a pseudo first order reaction for metalloporphyrins. The bonding kinetic rate constant of zinc tetraphenylporphyrin with nitric oxide for 0.01965 min-1 and the half-life of bonding was 35.27 min. The bonding kinetic rate constant of magnesium tetraphenylporphyrin with nitric oxide for 0.02184 min-1 and the half-life of bonding was 31.74 min. The experimental results showed that the coordination of magnesium tetraphenylporphyrin with nitric oxide is easier than Zinc tetraphenylporphyrin with nitric oxide.
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- T. Komatsu, Y. Matsukawa and E. Tsuchida, Bioconjug. Chem., 11, 772 (2000); doi:10.1021/bc000016e.
- J.P. Yang and P.C. Huang, Chem. Mater., 12, 2693 (2000); doi:10.1021/cm0010506.
- O. Tsutsumi, H. Sato, K. Takeda and T. Ogawa, Thin Solid Films, 499, 219 (2006); doi:10.1016/j.tsf.2005.07.030.
- P.M. Kozlowski, K. Wolinski, P.J. Pulay, B.-H. Ye and X.-Y. Li, Phys. Chem. A, 103, 420 (1999); doi:10.1021/jp9829288.
- J.Y. Ji, S.W. Xia, L.L. Zhao et al., Chinese J. Org. Chem., 33, 1447 (2013).
- H. Dehghani and F. Fathi, Dyes Pigments, 77, 323 (2008); doi:10.1016/j.dyepig.2007.05.017.
- T.S. Kurtikyan, A.A. Hovhannisyan, M.E. Hakobyan, J.C. Patterson, A. Iretskii and P.C. Ford, J. Am. Chem. Soc., 129, 3576 (2007); doi:10.1021/ja067245h.
- R.S. Wade and C.E. Castro, Chem. Res. Toxicol., 9, 1382 (1996); doi:10.1021/tx9600457.
- I. Lorković and P.C. Ford, J. Am. Chem. Soc., 122, 6516 (2000); doi:10.1021/ja000308q.
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- L.E. Laverman, M. Hoshino and P.C. Ford, J. Am. Chem. Soc., 119, 12663 (1997); doi:10.1021/ja972448e.
- D. Weinraub, P. Peretz and M. Faraggi, J. Phys. Chem., 86, 1839 (1982); doi:10.1021/j100207a020.
- G.R.A. Wyllie and W.R. Scheidt, Chem. Rev., 102, 1067 (2002); doi:10.1021/cr000080p.
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- D. Solomon, M. Peretz and M. Faraggi, J. Phys. Chem., 86, 1842 (1982); doi:10.1021/j100207a021.
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- A. Pandey and S.N.J. Datta, Phys. Chem. B, 109, 9066 (2005); doi:10.1021/jp0446478.
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- C. Balarew and D.J. Stoilova, Solid State Chem., 38, 192 (1981); doi:10.1016/0022-4596(81)90035-9.
References
T. Komatsu, Y. Matsukawa and E. Tsuchida, Bioconjug. Chem., 11, 772 (2000); doi:10.1021/bc000016e.
J.P. Yang and P.C. Huang, Chem. Mater., 12, 2693 (2000); doi:10.1021/cm0010506.
O. Tsutsumi, H. Sato, K. Takeda and T. Ogawa, Thin Solid Films, 499, 219 (2006); doi:10.1016/j.tsf.2005.07.030.
P.M. Kozlowski, K. Wolinski, P.J. Pulay, B.-H. Ye and X.-Y. Li, Phys. Chem. A, 103, 420 (1999); doi:10.1021/jp9829288.
J.Y. Ji, S.W. Xia, L.L. Zhao et al., Chinese J. Org. Chem., 33, 1447 (2013).
H. Dehghani and F. Fathi, Dyes Pigments, 77, 323 (2008); doi:10.1016/j.dyepig.2007.05.017.
T.S. Kurtikyan, A.A. Hovhannisyan, M.E. Hakobyan, J.C. Patterson, A. Iretskii and P.C. Ford, J. Am. Chem. Soc., 129, 3576 (2007); doi:10.1021/ja067245h.
R.S. Wade and C.E. Castro, Chem. Res. Toxicol., 9, 1382 (1996); doi:10.1021/tx9600457.
I. Lorković and P.C. Ford, J. Am. Chem. Soc., 122, 6516 (2000); doi:10.1021/ja000308q.
G.G. Martirosyan, A.S. Azizyan, T.S. Kurtikyan and P.C. Ford, Inorg. Chem., 45, 4079 (2006); doi:10.1021/ic051824q.
J. Santolini, M. Roman, D.J. Stuehr and T.A. Mattioli, Biochemistry, 45, 1480 (2006); doi:10.1021/bi051710q.
L.E. Laverman, M. Hoshino and P.C. Ford, J. Am. Chem. Soc., 119, 12663 (1997); doi:10.1021/ja972448e.
D. Weinraub, P. Peretz and M. Faraggi, J. Phys. Chem., 86, 1839 (1982); doi:10.1021/j100207a020.
G.R.A. Wyllie and W.R. Scheidt, Chem. Rev., 102, 1067 (2002); doi:10.1021/cr000080p.
W.R. Scheidt and M.K. Ellison, Acc. Chem. Res., 32, 350 (1999); doi:10.1021/ar9700116.
D. Solomon, M. Peretz and M. Faraggi, J. Phys. Chem., 86, 1842 (1982); doi:10.1021/j100207a021.
L.E. Laverman and P.C. Ford, J. Am. Chem. Soc., 123, 11614 (2001); doi:10.1021/ja0113910; L.E. Laverman, A. Wanat, J. Oszajca, G. Stochel, P.C. Ford and R. van Eldik, J. Am. Chem. Soc., 123, 285 (2001); doi:10.1021/ja001696z.
J. Zhang, P. Zhang, Z. Zhang and X. Wei, J. Phys. Chem. A, 113, 5367 (2009); doi:10.1021/jp811209k.
A. Pandey and S.N.J. Datta, Phys. Chem. B, 109, 9066 (2005); doi:10.1021/jp0446478.
J.B. Zhang, C.P. Li, T.R. Huo, Q. Li, T. Zhang and X.H. Wei, Sci. China Ser. Biol. Chem., 55, 1881 (2012); doi:10.1007/s11426-012-4656-0.
J.P. Collman, R. Boulatov, C.J. Sunderland and L. Fu, Chem. Rev., 104, 561 (2004); doi:10.1021/cr0206059.
C. Ruzie, P. Even, D. Ricard, T. Roisnel and B. Boitrel, Inorg. Chem., 45, 1338 (2006); doi:10.1021/ic0514703.
C. Balarew and D.J. Stoilova, Solid State Chem., 38, 192 (1981); doi:10.1016/0022-4596(81)90035-9.