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Effects of the ΔF508 mutation on the structure, function, and folding of the first nucleotide-binding domain of CFTR

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Abstract

The fatal autosomal recessive disease cystic fibrosis (CF) is caused by mutations in the gene which encodes the cystic fibrosis transmembrane conductance regulator (CFTR). Many of these disease-causing mutations, including the deletion of F508 (ΔF508) which accounts for approximately 70% of the disease alleles, occur in one of the two consensus nucleotide binding sequences. Peptide studies have directly demonstrated that the N-terminal nucleotide binding sequences bind adenine nucleotides. Structurally, circular dichroism spectropolarimetry indicates that this region of CFTR assumes a β-stranded structure in solution. The ΔF508 mutation causes a diminution in the amount of β-stranded structure and a concomitant increase in the amount of random coil structure present, indicating that either the mutant peptide has a different native structure or that the conformational equilibrium is shifted toward a more disordered form. Furthermore, the mutant peptide is more sensitive to denaturation, indicating that ΔF508 is a stability, or protein-folding mutant. Here we review these results and discuss their implications for interpreting the behavior of ΔF508in situ and for the rational design of new CF drugs.

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References

  • Anderson, M. P., Rich, D. P., Gregory, R. J., Smith, A. E., and Welsh, M. J. (1991a).Science 251, 679–682.

    Google Scholar 

  • Anderson, M. P., Gregory, R. J., Thompson, S., Souza, D. W., Paul, S., Mulligan, R. C., Smith, A. E., and Welsh, M. J. (1991b).Science 253, 202–205.

    Google Scholar 

  • Anderson, M. P., Berger, H. A., Rich, D. P., Gregory, R. J., Smith, A. E., and Welsh, M. J. (1991c).Cell 67, 775–784.

    Google Scholar 

  • Arispe, N., Rojas, E., Hartman, J., Sorscher, E. J., and Pollard, H. B. (1992).Proc. Natl. Acad. Sci. USA 89, 1539–1543.

    Google Scholar 

  • Bear, C. E., Li, C., Kartner, N., Bridges, R. J., Jensen, T. J., Ramjeesingh, M., and Riordan, J. R. (1992a).Cell 68, 809–818.

    Google Scholar 

  • Bear, C. E., Jensen, T. J., and Riordan, J. R. (1992b).Biophys. J. 61, A127.

    Google Scholar 

  • Chandrasegaran, S., and Smith, H. O. (1990). InSecond Annual New England Biolabs Workshop on Biological DNA Modifications, New England Biolabs, Berlin, p. 106.

    Google Scholar 

  • Cheng, S. H., Gregory, R. J., Marshall, J., Paul, S., Souza, D. W., White, G.A., O'Riordan, C., and Smith, A. E. (1990).Cell 63, 827–834.

    Google Scholar 

  • Cheng, S. H., Rich, D. P., Marshall, J., Gregory, R. J., Welsh, M. J., and Smith, A. E. (1991).Cell 66, 1027–1036.

    Google Scholar 

  • Chou, Y., and Fasman, G. D. (1978).Adv. Enzymol. 47, 45–148.

    Google Scholar 

  • Cuppens, H., Marynen, P., De Broeck, C., and Cassiman, J. J. (1990).Pediatr. Pulmonol. Suppl 5, 203.

    Google Scholar 

  • Cutting, G. R., Kasch, L. M., Rosenstein, B. J., Zielenski, J., Tsui, L.-C., Antonarakis, S. E., and Kazazian, H. H. (1990).Nature (London)346, 366–369.

    Google Scholar 

  • Dahlmanns, W., Barbry, P., Champigny, G., Jallat, S., Dott, K., Dreyer, D., Crystal, R. G., Pavirani, A., Lecocq, J.-P., and Lazdunski, M. (1991).Nature (London)354, 526–528.

    Google Scholar 

  • Devoto, M., Ronchetto, P., Fanen, P., Telleria Orriols, J. J., Romeo, G., Gossens, M., Ferrari, M., Magnani, C., Seia, M., and Cremonesi, L. (1991).Am. J. Hum. Genet. 48, 1127–1132.

    Google Scholar 

  • Drumm, M. L., Pope, H. A., Cliff, W. H., Rommens, J. M., Marvin, S. A., Tsui, L.-C., Collins, F. S. Frizzell, R. A., and Wilson, J. M. (1990).Cell 62, 1227–1233.

    Google Scholar 

  • Drumm, M. L. Wilkinson, D. J., Smit, L. S., Worrell, R. T., Strong, T. V., Frizzell, R. A., Dawson, D. C., and Collins, F. S. (1991).Science 254, 1797–1799.

    Google Scholar 

  • Flynn, G. C., Pohl, J., Flocco, M. T., and Rothman, J. E. (1991).Nature (London)353, 726–730.

    Google Scholar 

  • Garnier, J., Osguthorpe, D. J., and Robson, B. (1978).J. Mol. Biol. 120, 97–120.

    Google Scholar 

  • Gregory, R. J., Rich, D. P., Cheng, S. H., Souza, D. W., Paul, S., Manavalan, P., Anderson, M. P., Welsh, M. J., and Smith, A. E. (1991).Mol. Cell. Biol. 11, 3886–3893.

    Google Scholar 

  • Hartman, J., Huang, Z., Rado, T. A., Peng, S., Jiling, T., Muccio, D. D., and Sorscher, E. J. (1992).J. Biol. Chem. 267, 6455–6458.

    Google Scholar 

  • Hwang, T.-C., Lu, L., Zeitlin, P. L., Gruenert, D. C., Huganir, R., and Guggino, W. B. (1989).Science 244, 1351–1353.

    Google Scholar 

  • Hyde, S. C., Emsley, P., Hartshorn, M., Mimmack, M. M., Gileadi, U., Pearce, S. R., Gallagher, M. P., Gill, D. R., Hubbard, R. E., and Higgins, C. F. (1990).Nature (London)346, 362–365.

    Google Scholar 

  • Jurnak, F. (1985)Science 230, 32–36.

    Google Scholar 

  • Kartner, N., Hanrahan, J. W., Jensen, T. J., Naismith, A. L., Sun, S., Ackerley, C. A., Reyes, E. F., Tsui, L.-C., Rommens, J. M., Bear, C. E., and Riordan, J. R. (1991)Cell 64, 681–691.

    Google Scholar 

  • Kerem, B.-S., Zielenski, J., Markiewicz, D., Bozon, D., Gazit, E., Yahav, J., Kennedy, D., Riordan, J. R., Collins, F. S., Rommens, J. M., and Tsui, L.-C. (1990).Proc. Natl. Acad. Sci. USA 87, 8447–8451.

    Google Scholar 

  • Kobayashi, K., Knowles, M. R., Boucher, R. C., O'Brien, W. E., and Beaudet, A. L. (1990).Am. J. Hum. Genet. 47, 611–615.

    Google Scholar 

  • La Cour, T. F. M., Nyborg, J., Thirup, S., and Clark, B. F. C. (1985).EMBO J. 4, 2385–2388.

    Google Scholar 

  • Li, M., McCann, J. D., Liedtke, C. M., Nairn, A. C., Greengard, P., and Welsh, M. J. (1988).Nature (London)331, 358–360.

    Google Scholar 

  • Mimura, C. S., Holbrook, S. R., and Ames, G. F.-L. (1991).Proc. Natl. Acad. Sci. USA 88, 84–88.

    Google Scholar 

  • Novotny, J., and Auffray, C. (1984).Nucleic Acids Res. 12, 243–255.

    Google Scholar 

  • Rich, D. P., Andersen, M. P., Gregory, R. J., Cheng, S. H., Paul, S., Jefferson, D. M., McCann, J. D., Klinger, K. W., Smith, A. E., and Welsh, M. J. (1990).Nature (London)347, 358–363.

    Google Scholar 

  • Riordan, J. R., Rommens, J. M., Kerm, B.-S., Alon, N., Rozmahel, R., Grzelczak, Z., Zielenski, J., Lok, S., Plavsic, N., Chou, J.-L., Drumm, M. L., Iannuzzi, M. C., Collins, F. S., and Tsui, L.-C. (1989).Science 245, 1066–1073.

    Google Scholar 

  • Rossmann, M. G., Lijas, A., Brädén, C. I., and Banaszak, I. J. (1975). InThe Enzymes (Boyer, P. D., ed.), Vol.11, 3rd ed., Academic Press, New York, pp. 61–102.

    Google Scholar 

  • Schoumacher, R. A., Shoemaker, R. L., Halm, D. R., Tallant, E. A., Wallace, R. W., and Frizzell, R. A. (1987).Nature (London)330, 752–754.

    Google Scholar 

  • Schultz, G. (1987).Cold Spring Harbor Symp. Quant. Biol. LII, 429–439.

    Google Scholar 

  • Shyamala, V., Biachwal, V., Beall, E., and Ames, G. F.-L. (1991).J. Biol. Chem. 266, 18714–18719.

    Google Scholar 

  • Story, R. M., and Steitz, T. A. (1992).Nature (London)355, 374–376.

    Google Scholar 

  • Thomas, P. J., Shenbagamurthi, P., Ysern, X., and Pedersen, P. L. (1991).Science 251, 555–557.

    Google Scholar 

  • Thomas, P. J., Shenbagamurthi, P., Sondek, J., Hullihen, J., and Pedersen, P. L. (1992a).J. Biol. Chem. 267, 5727–5730.

    Google Scholar 

  • Thomas P. J., Garboczi, D. N., and Pedersen, P. L. (1992b)Acta Physiol. Scand. 146, 23–29.

    Google Scholar 

  • Thomas, P. J., Sondek, J., Ko, Y. H., and Pedersen, P. L. (1992c).Biophys. J. 61, A62.

    Google Scholar 

  • Tong, L., deVos, A. M., Milburn, M. V., and Kim, S.-H. (1991).J. Mol. Biol. 221, 751–754.

    Google Scholar 

  • Vignais, P., and Lunardi, J. (1985).Ann. Rev. Biochem. 54, 977–1014.

    Google Scholar 

  • Walker, J. E., Saraste, M., Runswick, M. J., and Gay, N. J. (1982).EMBO J. 1, 945–951.

    Google Scholar 

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Thomas, P.J., Pedersen, P.L. Effects of the ΔF508 mutation on the structure, function, and folding of the first nucleotide-binding domain of CFTR. J Bioenerg Biomembr 25, 11–19 (1993). https://doi.org/10.1007/BF00768063

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