- P-ISSN 1225-0163
- E-ISSN 2288-8985
Changes in antimicrobial peptide-lipid mixtures were investigated using 31P solid-state nuclear magnetic resonance spectroscopy. An antimicrobial peptide, protegrin-1, and phosphatidylcholine were deposited on a thin cover glass and incubated under a relative humidity of 95%. The changes in the mixtures were observed after hydration or air-drying. How repetitive hydration and drying changed the phase of the sample was also observed. The degrees of disruption of the well-aligned bilayers of phosphatidylcholine were determined quantitatively by simulating the experimental spectra. The peptide-lipid mixtures changed reversibly after hydration and drying, and the samples reached an equilibrium state after several repetitions.
1. R. Latorre and O. Alvarez, Physiol Rev, 61, 77-150 (1981).
2. H. Steiner, D. Hultmark, A. Engstrom, H. Bennich and H. G. Boman, Nature, 292, 246-248 (1981).
3. J. Y. Lee, A. Boman, C. X. Sun, M. Andersson, H. Jornvall, V. Mutt and H. G. Boman, Proc. Natl. Acad. Sci. U.S.A, 86, 9159-9162 (1989).
4. M. R. Yeaman and N. Y. Yount, Pharmacol. Rev., 55, 27-55 (2003).
5. R. Mani, A. J. Waring, R. I. Lehrer and M. Hong, Biochim. et Biophs. Acta,-biomembr, 1716, 11-18 (2005).
6. Y. Bai, S. Liu, P. Jiang, L. Zhou, J. Li, C. Tang, C. Verma, Y. Mu, R. W. Beuerman and K. Pervushin, Biochemistry, 48, 7229-7239 (2009).
7. Toke, O. Biopolymers, 80, 717-735 (2005).
8. S. J. Ludtke, K. He, W. T. Heller, T. A. Harroun, L. Yang and H. W. Huang, Biochemistry, 35, 13723-13728 (1996).
9. K. Matsuzaki, O. Murase, N. Fujii and K. Miyajima, Biochemistry, 35, 11361-11368 (1996).
10. J. Z. Gesell, M. and S. J. Opella, J. Biomol. NMR, 9, 127-135 (1997).
11. K. Matsuzaki, O. Murase and K. Miyajima, Biochemistry, 34, 12553-12559 (1995).
12. I. Marcotte, L. Wegener Kate, Y.-H. Lam, C. S. Chia Brian, R. R. de Planque Maurits, H. Bowie John, M. Auger and F. Separovic, Chem. and Phys. of Lipids, 122, 107-116 (2003).
13. L. Yang, T. M. Weiss, R. I. Lehrer and H. W. Huang, Biophys. J., 79, 2002-2007 (2000).
14. C. Munster, A. Spaar, B. Bechinger and T. Salditt, Biochim. et Biophs. Acta,-biomembr., 1562, 37-44 (2002).
15. R. W. S. Glaser, Durr, C., Wadhwani, U. H. N., Afonin, P., Strandberg, S. E. and A. S. Ulrich, Biophys. J., 88, 3392-3397 (2005).
16. K. J. Hallock, D. K. Lee and A. Ramamoorthy, Biophys. J., 84, 3052-3060 (2003).
17. V. N. Kokryakov, S. S. Harwig, E. A. Panyutich, A. A. Shevchenko, G. M. Aleshina, O. V. Shamova, H. A. Korneva and R. I. Lehrer, FEBS Lett, 327, 231-236 (1993).
18. R. L. Fahrner, T. Dieckmann, S. S. L. Harwig, R. I. Lehrer, D. Eisenberg and J. Feigon, Chem. Biol., 3, 543-550 (1996).
19. S. Yamaguchi, T. Hong, A. Waring, R. I. Lehrer and M. Hong, Biochemistry, 41, 9852-9862 (2002).
20. J. J. Buffy, T. Hong, S. Yamaguchi, A. J. Waring, R. I. Lehrer and M. Hong, Biophys. J., 85, 2363-2373 (2003).
21. R. Mani, J. J. Buffy, A. J. Waring, R. I. Lehrer and M. Hong, Biochemistry, 43, 13839-13848 (2004).
22. C. Kim, J. Spano, E. K. Park and S. Wi, Biochim Biophys Acta, 1788, 1482-1496 (2009).
23. S. Wi and C. Kim, J. Phys. Chem. B, 112, 11402-11414 (2008).