101
Views
2
CrossRef citations to date
0
Altmetric
Research Article

About Oxygen, Cytochrome P450 and Titanium: Learning from Ron Estabrook

Pages 501-513 | Published online: 09 Oct 2008

REFERENCES

  • Bickley R. I., Jayanty R. K. M. Photo-adsorption and photo-catalysis on titanium dioxide surfaces. Photo-adsorption of oxygen and the photocatalyzed oxidation of isopropanol. Faraday Discuss. Chem. Soc. 1974; 58: 194–204
  • Boyan B. D., Dean D. D., Lohmann C. H., Cochran D. L., Sylvia V. L., Schwartz Z. The titanium-bone cell interface in vitro: The role of the surface in promoting osteointegration. Titanium in Medicine: Material Science, Surface Science, Engineering, Biological Responses and Medical Applications, D. M. Brunette, P. Tengvall, M. Textor, P. Thomsen. Springer-Verlag, Berlin 2001; 561–585
  • Brunette D. M., Tengvall P., Textor M., Thomsen P. Titanium in Medicine: Material Science, Surface Science, Engineering, Biological Responses and Medical Applications. Springer-Verlag, Berlin 2001
  • Chen X., Li S. Photooxidation of methane to methanol by molecular oxygen on water-preadsorbed porous TiO2-based catalysts. Chem. Lett. 2000; 4: 314–315
  • Choi J.-Y., Kim K.-H., Choy K.-C., Oh K.-T., Kim K.-N. Photocatalytic antibacterial effect of TiO2film formed on Ti and TiAg exposed to Lactobacillus acidophilus. J. Biomed. Mater. Res. Pt. B: Appl. Biomater 2006; 80B: 353–359
  • Choo M. J., Chole R. A. Cytochrome P-450 inhibition blocks bone resorption in vitro and in vivo. Otolaryngol. Head Neck Surg. 1999; 120: 84–91
  • Dilworth F. J., Scott I., Green A., Strugnell S., Guo Y.-D., Roberts E. A., Kremer R., Calverley M. J., Makin H. L. J., Jones G. Different mechanisms of hydroxylation site selection by liver and kidney cytochrome P450 species (CYP27 and CYP24) involved in vitamin D metabolism. J. Biol. Chem. 1995; 270: 16766–16774
  • Davit P., Martra G., Coluccia S. Photocatalytic degradation of organic compounds on TiO2powders – FT-IR investigation of surface reactivity and mechanistic aspects. J. Japan Petrol. Instit. 2004; 47: 359–376
  • Djegheri N., Formenti M., Juillet F., Teichner S. J. Photointeraction on the surface of titanium dioxide between oxygen and alkanes. Far. Disc. Chem. Soc. 1974; 58: 185–193
  • Eckert R., Jeney S., Horber J. K. Understanding intercellular interactions and cell adhesion: lessons from studies on protein-metal interactions. Cell Biol. Int. 1997; 21: 707–713
  • Nygren H., Tengvall P., Lundström I. The initial reactions of TiO2with blood. J. Biomed. Mater. Res. 1997; 34: 487–492
  • Estabrook R. W. Modifiers and the mechanism of cytochrome P-450 function. Microsomes, Drug Oxidations, and Drug Toxicity, R. Sato, R. Kato. Japan Scientific Societies Press, Wiley-Interscience, New York, Tokyo 1982; 133–138
  • Estabrook R. W. Cytochrome P-450 viennese style. Cytochrome P‐450: Biochemistry and Biophysics, I. Schuster. Taylor & Francis, London 1989; 1–15
  • Estabrook R. W. A passion for P450s (remembrance of the early history of research on cytochrome P450). Drug Metab. Dispos. 2003; 31: 1461–1473
  • Forster R. E., Estabrook R. W. Is oxygen an essential nutrient?. Ann. Rev. Nutr. 1993; 13: 383–403
  • Fujii H. Electronic structure and reactivity of high-valent oxo iron porphyrins. Coord. Chem. Rev. 2002; 226: 51–60
  • Gnaser H., Huber B., Ziegler C. Nanocrystalline TiO2for photocatalysis. Encycl. Nanosci. Nanotechnol. 2005; 6: 505–535
  • Gorren A. C. F., Mayer B. Nitric-oxide synthase: A cytochrome P450 family foster child. Biochim. Biophys. Acta 2007; 1770: 432–445
  • Groves J. T. Models and mechanisms of cytochrome P450 action. Cytochrome P450, Structure, Mechanism, and Biochemistry, P.R. Ortiz de Montellano. Kluwer Academic/Plenum Publishers, New York 2005; 1–43
  • Guengerich F. P. Human cytochrome P450 enzymes. Cytochrome P450: Structure, Mechanism, And Biochemistry3rd, P. R. Ortiz de Montellano. Kluwer Academic/Plenum Publishers, New York 2005; 377–530
  • Gupta A., Majumdar P., Amit J., Rajesh A., Singh S. B., Chakraborty M. Cell viability and growth on metallic surfaces: in vitrostudies. Trends Biomater. Artif. Organs 2006; 20: 84–89
  • Hannemann F., Bichet A., Ewen K. M., Bernhardt R. Cytochrome P450 systems–biological variations of electron transport chains. Biochim. Biophys. Acta 2007; 1770: 330–344
  • Harvey J. N., Diefenbach M., Schröder D., Schwarz H. Oxidation properties of the early transition-metal dioxide cations MO2+(M = Ti, V, Zr, Nb) in the gas-phase. Int. J. Mass Spectrom 1999; 182/183: 85–97
  • Helfich M., Evans D., Grabowski P. S., Pollock J. S., Ohshima H., Ralston S. H. Expression of nitric oxide synthase isoforms in bone and bone cell cultures. J. Bone Min. Res. 1997; 12: 1108–1115
  • Hlavica P. Models and mechanisms of O-O bond activation by cytochrome P450: A critical assessment of the potential role of multiple intermediates in oxidative catalysis. Eur. J. Biochem. 2004; 271: 4335–4360
  • Hong X., Hsu Y.-H., Terwedow H., Arguelles L. M., Tang G., Liu X., Zhang S., Xu Xi, Xu X. CYP19A1 polymorphisms are associated with bone mineral density in Chinese men. Hum. Genet. 2007; 121: 491–500
  • Isin E. M., Guengerich F. P. Complex reactions catalyzed by cytochrome P450 enzymes. Biochim. Biophys. Acta 2007; 1770: 314–329
  • Jung C., Friedrich J., Ristau O. Quantum chemical interpretation of the spectral properties of the CO and O2complexes of hemoglobin and cytochrome P450. Acta Biol. Med. Germ. 1979; 38: 363–377
  • Jung C. Leakage in cytochrome P450 reactions in relation to protein structural properties. Metal Ions in Life Sciences, A. Sigel, H. Sigel, R. K. O. Sigel. John Wiley & Sons Ltd, ChichesterUK 2007; Volume 3: 187–234, The Ubiquitous Roles of Cytochrome P450 Proteins
  • Karyakin A., Motiejunas D., Wade R. C., Jung C. FTIR studies of the redox partner interaction in cytochrome P450: The Pdx–P450cam couple. Biochim. Biophys. Acta 2007; 1770: 420–431
  • Kellner D. G., Hung S.-C., Weiss K. E., Sligar S. G. Kinetic characterization of compound I formation in the thermostable cytochrome P450 CYP119. J. Biol. Chem. 2002; 277: 9641–9644
  • Khan S. U. M., Al-Shahry M., Ingler W. B., Jr. Efficient photochemical water splitting by a chemically modified n-TiO2. Science 2002; 297: 2243–2245
  • Kirchheiner J., Seeringer A. Clinical implications of pharmacogenetics of cytochrome P450 drug metabolizing enzymes. Biochim. Biophys. Acta 2007; 1770: 489–494
  • Kuo W.S., Ho P. H. Solar photocatalytic decolorization of dyes in solution with TiO2films. Dyes and Pigments 2006; 71: 212–217
  • Lacefield W. R. Materials characteristics of uncoated/ceramic-coated implants materials. Adv. Dent. Res. 1999; 13: 21–26
  • Larson C., Esposito M, Liao H., Thomsen P. The titanium-bone interface in vivo. Titanium in Medicine: Material Science, Surface Science, Engineering, Biological Responses and Medical Applications, D. M. Brunette, P. Tengvall, M. Textor, P. Thomsen. Springer-Verlag, Berlin 2001; 587–648
  • Ollis D. F., Al-Ekabi H. Photocatalytic Purification and Treatment of Water and Air. Elsevier, Amsterdam 1993
  • Newcomb M., Hollenberg P. F., Coon M. J. Multiple mechanisms and multiple oxidants in P450-catalyzed hydroxylations. Arch. Biochem. Biophys. 2003; 409: 72–79
  • Pack A. M., Gidal B., Vazquez B. Bone disease associated with antiepileptic drugs. Cleveland Clin. J. Med. 2004; 71(Suppl. 2)S42–S48
  • Perera R., Jin S., Sono M., Dawson J. H. Cytochrome P450-catalyzed hydroxylations and epoxidations. Metal Ions in Life Sciences; Volume 3: The Ubiquitous Roles of Cytochrome P450 Proteins, A. Sigel, H. Sigel, R. K. O. Sigel. John Wiley & Sons Ltd, ChichesterUK 2007; 319–359
  • Peterson J. A., Mock D. M. Cytochrome P-450cam and putidaredoxin interaction during electron transfer. Acta Biol. Med. Germ. 1979; 38: 153–162
  • Pogoda P., Priemel M., Rueger J. M., Amling M. Bone remodelling: new aspects of a key process that controls skeletal maintenance and repair. Osteoporos. Int. 2005; 16: S18–S24
  • Rahimtula A. D., O'Brien P. J., Hrycay E. G., Peterson J. A., Estabrook R. W. Possible higher valence states of cytochrome P-450 during oxidative reactions. Biochem. Biophys. Res. Commun. 1974; 60: 695–702
  • Ratner B. D. A perspective on titanium biocompatibility. Titanium in Medicine: material science, surface science, engineering, biological responses and medical applications, D. M. Brunette, P. Tengvall, M. Textor, P. Thomsen. Springer-Verlag, Berlin 2001; 1–12, 2001
  • Ruckpaul K. Early years of cytochrome P450 research in Berlin-Buch: its present state and origin of the biochemical and biophysical conferences. Biochem. Biophys. Res. Commun. 2003; 312: 65–74
  • Sabokbar A., Pandey R., Quinn J. M. W., Athanasou N. A. Osteoclastic differentiation by mononuclear phagocytes containing biomaterial particles. Arch. Orthop. Trauma Surg. 1998; 117: 136–140
  • Schröder D., Shaik S., Schwarz H. Two-state reactivity as a new concept in organometallic chemistry. Acc. Chem. Res. 2000; 33: 139–145
  • Seliskar M., Rozman D. Mammalian cytochromes P450—Importance of tissue specificity. Biochim. Biophys. Acta 2007; 1770: 458–466
  • Senanayake S. D., Idriss H. Photocatalysis and the origin of life: Synthesis of nucleoside bases from formamide on TiO2(001) single surfaces. Proc. Natl. Acad. Soc. USA 2006; 103: 1194–1198
  • Shaik S., Filatov M., Schröder D., Schwarz H. Electronic structure makes a difference: Cytochrome P-450 mediated hydroxylations of hydrocarbons as a two-state reactivity paradigm. Chem. Eur. J. 1998; 4: 193–199
  • Shaik S., De Visser S. P. Computational approaches to cytochrome P450 function. Cytochrome P450, Structure, Mechanism, and Biochemistry, P. R. Ortiz de Montellano. Kluwer Academic/Plenum Publishers, New York 2005; 45–85
  • Sigel A., Sigel H., Sigel R. K. O. The Ubiquitous Roles of Cytochrome P450 Proteins. John Wiley & Sons Ltd., ChichesterUK 2007; 3, Metal Ions in Life Sciences
  • Stea S., Visentin M., Donati M. E., Granchi D., Ciapetti G., Sudanese A., Toni A. Nitric oxide synthase in tissues around failed hip prostheses. Biomaterials 2002; 23: 4833–4838
  • Suzuki R., Frangos J. A. Inhibition of inflammatory species by titanium surfaces. Clin. Orthopaedics Rel. Res. 2000; 1(372)280–289
  • Tanaka S., Haji M., Takayanagi R., Tanaka S., Sugioka Y., Nawata H. 1,25-dihydroxy vitamin D3enhances the enzymatic activity and expression of the messenger ribonucleic acid for aromatase cytochrome P450 synergetistically with dexamethasone depending on the vitamin D receptor level in cultured human osteoblasts. Endocrinology 1996; 137: 1860–1869
  • Textor M., Sittig C., Frauchiger V., Tosatti S., Brunette D. M. Properties and biological significance of natural oxide films on titanium and its alloys. Titanium in Medicine: Material Science, Surface Science, Engineering, Biological Responses and Medical Applications, D. M. Brunette, P. Tengvall, M. Textor, P. Thomsen. Springer-Verlag, Berlin 2001; 171–230
  • Ullrich V., Staudinger H. J. Model systems in studies of the chemistry and the enzymatic activation of oxygen. Handbuch der Experimentellen Pharmakologie, B. B. Brodie, J. R. Gilette, H. S. Ackermann. Springer Verlag, 1971, Berlin 1971; 28/2: 251–263
  • Vaz A. D. N., McGinnity D. F., Coon M. J. Epoxidation of olefins by cytochrome P450: Evidence from site-specific mutagenesis for hydroperoxo-iron as an electrophilic oxidant. Proc. Natl. Acad. Sci. USA 1998; 95: 3555–3560
  • Williams D. F. Definitions in biomaterials. Prog. Biomed. Eng.4th. Elsevier, Amsterdam 1987

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.