Abstract
Antifreeze proteins (AFPs) depress the freezing point of aqueous solutions by binding to and inhibiting the growth of ice. Whereas the ice-binding surface of some fish AFPs is suggested by their linear, repetitive, hydrogen bonding motifs, the 66-amino-acid-long Type III AFP has a compact, globular fold without any obvious periodicity. In the structure, 9 beta-strands are paired to form 2 triple-stranded antiparallel sheets and 1 double-stranded antiparallel sheet, with the 2 triple sheets arranged as an orthogonal beta-sandwich (Sönnichsen FD, Sykes BD, Chao H, Davies PL, 1993, Science 259:1154-1157). Based on its structure and an alignment of Type III AFP isoform sequences, a cluster of conserved, polar, surface-accessible amino acids (N14, T18, Q44, and N46) was noted on and around the triple-stranded sheet near the C-terminus. At 3 of these sites, mutations that switched amide and hydroxyl groups caused a large decrease in antifreeze activity, but amide to carboxylic acid changes produced AFPs that were fully active at pH 3 and pH 6. This is consistent with the observation that Type III AFP is optimally active from pH 2 to pH 11. At a concentration of 1 mg/mL, Q44T, N14S, and T18N had 50%, 25%, and 10% of the activity of wild-type antifreeze, respectively. The effects of the mutations were cumulative, such that the double mutant N14S/Q44T had 10% of the wild-type activity and the triple mutant N14S/T18N/Q44T had no activity. All mutants with reduced activity were shown to be correctly folded by NMR spectroscopy. Moreover, a complete characterization of the triple mutant by 2-dimensional NMR spectroscopy indicated that the individual and combined mutations did not significantly alter the structure of these proteins. These results suggest that the C-terminal beta-sheet of Type III AFP is primarily responsible for antifreeze activity, and they identify N14, T18, and Q44 as key residues for the AFP-ice interaction.
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- Chakrabartty A., Hew C. L. The effect of enhanced alpha-helicity on the activity of a winter flounder antifreeze polypeptide. Eur J Biochem. 1991 Dec 18;202(3):1057–1063. doi: 10.1111/j.1432-1033.1991.tb16470.x. [DOI] [PubMed] [Google Scholar]
- Chao H., Davies P. L., Sykes B. D., Sönnichsen F. D. Use of proline mutants to help solve the NMR solution structure of type III antifreeze protein. Protein Sci. 1993 Sep;2(9):1411–1428. doi: 10.1002/pro.5560020906. [DOI] [PMC free article] [PubMed] [Google Scholar]
- Davies P. L., Hew C. L. Biochemistry of fish antifreeze proteins. FASEB J. 1990 May;4(8):2460–2468. doi: 10.1096/fasebj.4.8.2185972. [DOI] [PubMed] [Google Scholar]
- DeLuca C. I., Davies P. L., Samis J. A., Elce J. S. Molecular cloning and bacterial expression of cDNA for rat calpain II 80 kDa subunit. Biochim Biophys Acta. 1993 Oct 19;1216(1):81–93. doi: 10.1016/0167-4781(93)90040-k. [DOI] [PubMed] [Google Scholar]
- DeVries A. L. Antifreeze peptides and glycopeptides in cold-water fishes. Annu Rev Physiol. 1983;45:245–260. doi: 10.1146/annurev.ph.45.030183.001333. [DOI] [PubMed] [Google Scholar]
- Harrison K., Hallett J., Burcham T. S., Feeney R. E., Kerr W. L., Yeh Y. Ice growth in supercooled solutions of antifreeze glycoprotein. Nature. 1987 Jul 16;328(6127):241–243. doi: 10.1038/328241a0. [DOI] [PubMed] [Google Scholar]
- Knight C. A., Driggers E., DeVries A. L. Adsorption to ice of fish antifreeze glycopeptides 7 and 8. Biophys J. 1993 Jan;64(1):252–259. doi: 10.1016/S0006-3495(93)81361-4. [DOI] [PMC free article] [PubMed] [Google Scholar]
- Kunkel T. A., Roberts J. D., Zakour R. A. Rapid and efficient site-specific mutagenesis without phenotypic selection. Methods Enzymol. 1987;154:367–382. doi: 10.1016/0076-6879(87)54085-x. [DOI] [PubMed] [Google Scholar]
- Li X. M., Trinh K. Y., Hew C. L., Buettner B., Baenziger J., Davies P. L. Structure of an antifreeze polypeptide and its precursor from the ocean pout, Macrozoarces americanus. J Biol Chem. 1985 Oct 25;260(24):12904–12909. [PubMed] [Google Scholar]
- Rance M., Sørensen O. W., Bodenhausen G., Wagner G., Ernst R. R., Wüthrich K. Improved spectral resolution in cosy 1H NMR spectra of proteins via double quantum filtering. Biochem Biophys Res Commun. 1983 Dec 16;117(2):479–485. doi: 10.1016/0006-291x(83)91225-1. [DOI] [PubMed] [Google Scholar]
- Wen D., Laursen R. A. Structure-function relationships in an antifreeze polypeptide. The role of neutral, polar amino acids. J Biol Chem. 1992 Jul 15;267(20):14102–14108. [PubMed] [Google Scholar]
- Wishart D. S., Sykes B. D., Richards F. M. Relationship between nuclear magnetic resonance chemical shift and protein secondary structure. J Mol Biol. 1991 Nov 20;222(2):311–333. doi: 10.1016/0022-2836(91)90214-q. [DOI] [PubMed] [Google Scholar]
- Yang D. S., Sax M., Chakrabartty A., Hew C. L. Crystal structure of an antifreeze polypeptide and its mechanistic implications. Nature. 1988 May 19;333(6170):232–237. doi: 10.1038/333232a0. [DOI] [PubMed] [Google Scholar]