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Phytochrome structure: Peptide fragments from the amino-terminal domain involved in protein-chromophore interactions

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Abstract

We have undertaken a study of the structure of the amino-terminal domain of the phytochrome polypeptide purified from Avena sativa L. Amino-acid sequencing was used to indentify arginine 52 as the precise location of a conformation-specific cleavage of phytochrome by subtilisin. The location of the epitopes for a class of monoclonal antibodies designated type 2 has been shown to be located between approx. 10 and 20 kilodaltons (kDa) from the amino terminus. These two new spatial markers, in addition to the chromophore and another epitope recognized by type 1 monoclonal antibodies and located within 6 kDa from the amino terminus, have been used to map the locations of several new protease-accessible sites along the polypeptide. After extensive digestion of phytochrome with subtilisin, a stable spectrally-active group of peptides remains. Within this group is a 16-kDa chromopeptide which, either alone or as part of an assemblage of peptides, elutes from a size-exclusion column under nondenaturing conditions at a volume consistent with a molecular mass of 35–40 kDa. This group of peptides has an absorbance spectrum similar to the red-absorbing form of phytochrome (Pr) and is red/far-red photoreversible between this and a photobleached form. These data indicate that this group of peptides still retains the principal structural requisites for Pr-chromophore-protein interactions and for photoreversibility, but not for Pfr (far-red-absorbing phytochrome)-chromophore-protein interactions. It is uncertain if these structural requisites reside exclusively on the 16-kDa chromopeptide or result from an assemblage of these peptides. However, we have excluded any role for an adjacent 14-kDa fragment (approximately residues 50 to 200) in the observed spectral properties since it can be selectively removed without any effect on the photoreversibility.

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Abbreviations

Da:

dalton

Mr :

relative molecular mass

Pr, Pfr:

red and far-red-absorbing forms of phytochrome, respectively

SDS-PAGE:

sodium dodecyl sulfate polyacrylamide gel electrophoresis

References

  • Berkelman, T.R., Lagarias, J.C. (1986) Visualization of bilin-linked peptides and proteins in polyacrylamide gels. Anal. Biochem. 156, 194–201

    Google Scholar 

  • Daniels, S.M., Quail, P.H. (1984) Monoclonal antibodies to three separate domains on 124-kilodalton phytochrome from Avena. Plant Physiol. 76, 622–626

    Google Scholar 

  • Grimm, R., Lottspeich, F., Schneider, H.A.W., Rüdiger, W. (1986) Investigation of the peptide chain of 124 kDa phytochrome: Localization of proteolytic fragments and epitopes for monoclonal antibodies. Z. Naturforsch 41c, 83–90

    Google Scholar 

  • Grimm, R., Eckerskorn, C., Lottspeich, F., Zenger, C., Rüdiger, W. (1988) Sequence analysis of proteolytic fragments of 124-kilodalton phytochrome from etiolated Avena sativa L.: Conclusions on the conformation of the native protein. Planta 174, 396–401

    Google Scholar 

  • Hershey, H.P., Barker, R.F., Idler, K.B., Lissemore, J.L., Quail, P.H. (1985) Analysis of cloned cDNA and genomic sequences for phytochrome: complete amino acid sequences for two gene products expressed in etiolated Avena. Nucl. Acids Res. 13, 8543–8559

    Google Scholar 

  • Hunkapiller, M.W., Hewick, R.M., Dreyer, W.J., Hood, L.E. (1983a) High-sensitivity sequencing with a gas-phase sequenator. Methods Enzymol 91, 399–413

    Google Scholar 

  • Hunkapiller, M.W., Lujan, E., Ostrander, F., Hood, L.E. (1983b) Isolation of microgram quantities of proteins from polyacrylamide gels for amino acid sequence analysis. Methods Enzymol 91, 227–236

    Google Scholar 

  • Hunt, R.E., Pratt, L.H. (1979) Phytochrome immunoaffinity purification. Plant Physiol. 64, 332–336

    Google Scholar 

  • Jones, A.M., Quail, P.H. (1986) Quaternary structure of 124-kilodalton phytochrome from Avena sativa L. Biochemistry 25, 2987–2995

    Google Scholar 

  • Jones, A.M., Vierstra, R.D., Daniels, S.M., Quail, P.H. (1985) The role of separate molecular domains in the structure of phytochrome from etiolated Avena sativa L. Planta 164, 501–506

    Google Scholar 

  • Kelly, J.M., Lagarias, J.C. (1985) Photochemistry of 124-kilodalton Avena phytochrome under constant illumination in vitro. Biochemistry 24, 6003–6010

    Google Scholar 

  • Lagarias, J.C., Mercurio, F.M. (1985) Structure function studies on phytochrome. J. Biol. Chem. 260, 2415–2423

    Google Scholar 

  • Lagarias, J.C., Rapoport, H. (1980) Chromopeptides from phytochrome. The structure and linkage of the Pr form of the phytochrome chromophore. J. Am. Chem. Soc. 102, 4821–4828

    Google Scholar 

  • Marcus, F. (1985) Preferential cleavage at aspartyl-prolyl peptide bonds in dilute acid. Int. J. Prot. Res. 25, 542–546

    Google Scholar 

  • Merrill, C.R., Goldman, D., Van Keuren, M.L. (1983) Silver staining methods for polyacrylamide gel electrophoresis. Methods Enzymol 96, 230–239

    Google Scholar 

  • Quail, P.H., Barker, R.F., Colbert, J.T., Daniels, S.M., Hershey, H.P., Idler, K.B., Jones, A.M., Lissemore, J.L. (1986) Structural features of the phytochrome molecule and feedback regulation of the expression of its genes in Avena. In: Molecular biology of plant growth control, pp. 425–439. Fox, J.E., Jacobs, M., eds. Alan R. Liss, New York

    Google Scholar 

  • Quail, P.H., Gatz, C., Hershey, H.P., Jones, A.M., Lissemore, J.L., Parks, B.M., Sharrock, R.A., Barker, R.F., Idler, K., Murray, M.G., Koorneef, M., Kendrick, R.E. (1987) Molecular biology of phytochrome. In: Phytochrome and photoregulation of plants, pp. 23–37, M. Furuya, ed. Academic Press, Tokyo Orlando, Fld., USA

    Google Scholar 

  • Reiff, U., Eilfeld, P., Rüdiger, W. (1985) A photoreversible 39 kDalton fragment from the Pfr form of 124 kDalton oat phytochrome. Z. Naturforsch. 40c, 693–698

    Google Scholar 

  • Rüdiger, W., Thümmler, F., Cmiel, E., Schneider, S. (1983) Chromophore structure of the physiologically active form (Pfr) of phytochrome. Proc. Natl. Acad. Sci. USA 80, 6244–6248

    Google Scholar 

  • Russell, A.J., Fersht, A.R. (1986) Commerical samples of subtilisin BPN'. Nature 321, 733

    Google Scholar 

  • Sharrock, R.A., Lissemore, J.L., Quail, P.H. (1986) Nucleotide and amino acid sequence of a Cururbita phytochrome clone: Identification of conserved features by comparison with Avena phytochrome. Gene 47, 287–295

    Google Scholar 

  • Siegelman, H.W., Turner, B.C., Hendricks, S.B. (1966) The chromophore of phytochrome. Plant Physiol. 41, 1289–1292

    Google Scholar 

  • Smithes, O., Gibson, D., Fanning, E.M., Goodlfiesch, R.M., Gilman, J.G., Ballantyne, D.L. (1971) Quantitative procedures for use with the Edman-Begg sequenator. Partial sequences of two unusual immunoglobulin light chains. Biochemistry 10, 4912–4921

    Google Scholar 

  • Song, P.-S. (1985) The molecular model of phytochrome deduced from optical probes. In: Optical properties and structure of tetrapyrroles, pp. 311–348, Blauer, G., Sund, H., eds., Walter de Gruyter and Co., New York

    Google Scholar 

  • Thümmler, F., Rüdiger, W. (1984) Chromophore structure in phytochrome intermediates and bleached forms of phytochrome. Physiol. Plant. 60, 378–382

    Google Scholar 

  • Vierstra, R.D., Quail, P.H. (1982) Proteolysis alters the spectral properties of 124 kdalton phytochrome from Avena. Planta 156, 158–165

    Google Scholar 

  • Vierstra, R.D., Quail, P.H. (1983) Purification and initial characterization of 124-kilodalton phytochrome from Avena Biochemistry 22, 2498–2505

    Google Scholar 

  • Yamamoto, K.T., Furuya, M. (1983) Spectral properties of chromophore-containing fragments prepared from pea phytochrome by limited proteolysis. Plant Cell Physiol. 24, 713–718

    Google Scholar 

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Jones, A.M., Quail, P.H. Phytochrome structure: Peptide fragments from the amino-terminal domain involved in protein-chromophore interactions. Planta 178, 147–156 (1989). https://doi.org/10.1007/BF00393189

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