13.01.2013 Views

Calcium-Binding Protein Protocols Calcium-Binding Protein Protocols

Calcium-Binding Protein Protocols Calcium-Binding Protein Protocols

Calcium-Binding Protein Protocols Calcium-Binding Protein Protocols

SHOW MORE
SHOW LESS

Create successful ePaper yourself

Turn your PDF publications into a flip-book with our unique Google optimized e-Paper software.

228 Drakenberg<br />

NMR at sub-mM concentration without having probes specifically designed<br />

for this particular purpose. Even though the cost for enriched 43 Ca may appear<br />

high, the total cost for a sample will almost always be dominated by the cost<br />

involved in preparation of the protein. Hopefully, in the future, more groups<br />

will consider the use of 43 Ca NMR in their studies of calcium-binding proteins.<br />

References<br />

1. Robertson, P., Hiskey, R. G., and Koehler, K. L. (1978) <strong>Calcium</strong> and magnesium<br />

binding to γ-carboxyglutamic acid-containing peptides via metal ion nuclear magnetic<br />

resonance. J. Biol. Chem. 253, 5880–5883.<br />

2. Andersson, T., Drakenberg, T., Forsén, S., Thulin, E., and Svärd, M. (1982) Direct<br />

observation of the 43Ca ions bound to proteins. J. Am. Chem. Soc. 104, 576–580.<br />

3. Shimizu, T. and Hatano, M. (1985) Magnetic resonance studies of trifluoperazinecalmodulin<br />

solutions: 43Ca, 25Mg, 67Zn, and 39K nuclear magnetic resonance. Inorg.<br />

Chem. 24, 2003–2009.<br />

4. Urry, D. W., Trapane, T. L., and Venkatachalam, C. M. (1982) <strong>Calcium</strong> binding to<br />

a calcifiable matrix: 43Ca NMR binding studies on the polypentapeptide of elastin.<br />

Calcif. Tissue Int. 34, S41–S46.<br />

5. Bouhoutsos-Brown, E., Pletcher, C. H., Nelsestuen, G. L., and Bryant, R. G. (1984)<br />

Prothrombin fragment 1-membrane interactions: a calcium-43 NMR study. J. Inorg.<br />

Biochem. 21, 337–343.<br />

6. Aramini, J. H., Drakenberg, T., Hiraoki, T., Nitta, K., and Vogel, H. (1992) <strong>Calcium</strong>-43<br />

NMR studies of calcium-binding lysozymes and α-lactalbumins. Biochemistry<br />

31, 6761–6768.<br />

7. Belton, P. S., Cox, I. Y., and Harris, R. K. (1985) Experimental sulphur-33 nuclear<br />

magnetic resonance spectroscopy. J. Chem. Soc. Faraday, Trans 2 81, 63–75.<br />

8. Ernst, R. R., Bodenhusen, G., and Wokaun, A. (1989) Principles of Nuclear Magnetic<br />

Resonance in One and Two Dimensions. Oxford Science, Oxford, United<br />

Kingdom.<br />

9. Bull, T. E., Forsén, S., and Turner, D. L. (1978) Nuclear magnetic relaxation of<br />

spin 5/2 and 7/2 nuclei including effect of chemical exchange. J. Chem. Phys. 70,<br />

3106–3111.<br />

10. Halle, B. and Wennerström, H. (1981) Nearly exponential quadrupole relaxation. A<br />

perturbation treatment. J. Magn. Reson. 44, 89–100.<br />

11. Bull, T. E. (1972) Nuclear magnetic relaxation of spin-3/2 nuclei involved in chemical<br />

exchange. J. Magn. Reson. 8, 344–353.<br />

12. Drakenberg, T., Johansson, C., and Forsén, S. (1997) Metal NMR for the study of<br />

metalloproteins, in <strong>Protein</strong> NMR Techniques (Reid, D. G., ed.), Humana, Totowa,<br />

New Jersey.<br />

13. Sandström, J. (1982) Dynamic NMR Spectroscopy, Academic, London.<br />

14. McConnell, H. M. (1958) Reaction rates by nuclear magnetic resonance. J. Magn.<br />

Reson. 28, 430–431.

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!