Cloning, expression, and spectroscopic characterization of Cucumis sativus stellacyanin in its nonglycosylated form.
Journal: 1997/February - Protein Science
ISSN: 0961-8368
Abstract:
The cDNA encoding the 182 amino acid long precursor stellacyanin from Cucumis sativus was isolated and characterized. The protein precursor consists of four sequence domains: I, a 23 amino acid hydrophobic N-terminal signal peptide with features characteristic of secretory proteins; II, a 109 amino acid copper-binding domain; III, a 26 amino acid hydroxyproline- and serine-rich peptide characteristic of motifs found in the extension family, extracellular structural glycoproteins found in plant cell walls; and IV, a 22 amino acid hydrophobic extension. Maturation of the protein involves posttranslational processing of domains I and IV. The copper-binding domain (domain II), which shares high sequence identity with other stellacyanins, has been expressed without its carbohydrate attachment sites, refolded from the Escherichia coli inclusion bodies, purified, and characterized by electronic absorption, EPR, ESEEM, and RR spectroscopy. Its spectroscopic properties are nearly identical to those of stellacyanin from the Japanese lacquer tree Rhus vernicifera, the most extensively studied and best characterized stellacyanin, indicating that this domain folds correctly, even in the absence of its carbohydrate moiety. The presence of a hydroxyproline- and serine-rich domain III suggests that stellacyanin may have a function other than that of a diffusible electron transfer protein, conceivably participating in redox reactions localized at the plant cell wall, which are known to occur in response to wounding or infection of the plant.
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Protein Sci 5(11): 2184-2192

Cloning, expression, and spectroscopic characterization of Cucumis sativus stellacyanin in its nonglycosylated form.

Abstract

The cDNA encoding the 182 amino acid long precursor stellacyanin from Cucumis sativus was isolated and characterized. The protein precursor consists of four sequence domains: I, a 23 amino acid hydrophobic N-terminal signal peptide with features characteristic of secretory proteins; II, a 109 amino acid copper-binding domain; III, a 26 amino acid hydroxyproline- and serine-rich peptide characteristic of motifs found in the extension family, extracellular structural glycoproteins found in plant cell walls; and IV, a 22 amino acid hydrophobic extension. Maturation of the protein involves posttranslational processing of domains I and IV. The copper-binding domain (domain II), which shares high sequence identity with other stellacyanins, has been expressed without its carbohydrate attachment sites, refolded from the Escherichia coli inclusion bodies, purified, and characterized by electronic absorption, EPR, ESEEM, and RR spectroscopy. Its spectroscopic properties are nearly identical to those of stellacyanin from the Japanese lacquer tree Rhus vernicifera, the most extensively studied and best characterized stellacyanin, indicating that this domain folds correctly, even in the absence of its carbohydrate moiety. The presence of a hydroxyproline- and serine-rich domain III suggests that stellacyanin may have a function other than that of a diffusible electron transfer protein, conceivably participating in redox reactions localized at the plant cell wall, which are known to occur in response to wounding or infection of the plant.

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Selected References

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  • Adman ET. Copper protein structures. Adv Protein Chem. 1991;42:145–197. [PubMed] [Google Scholar]
  • Arvidsson RH, Nordling M, Lundberg LG. The azurin gene from Pseudomonas aeruginosa. Cloning and characterization. Eur J Biochem. 1989 Jan 15;179(1):195–200. [PubMed] [Google Scholar]
  • Bednarek SY, Raikhel NV. The barley lectin carboxyl-terminal propeptide is a vacuolar protein sorting determinant in plants. Plant Cell. 1991 Nov;3(11):1195–1206.[PMC free article] [PubMed] [Google Scholar]
  • Blumberg WE, Levine WG, Margolis S, Peisach J. On the nature of copper in two proteins obtained from Rhus vernicifera latex. Biochem Biophys Res Commun. 1964 Mar 26;15(3):277–283. [PubMed] [Google Scholar]
  • Canters GW. The azurin gene from Pseudomonas aeruginosa codes for a pre-protein with a signal peptide. Cloning and sequencing of the azurin gene. FEBS Lett. 1987 Feb 9;212(1):168–172. [PubMed] [Google Scholar]
  • Casimiro DR, Toy-Palmer A, Blake RC, 2nd, Dyson HJ. Gene synthesis, high-level expression, and mutagenesis of Thiobacillus ferrooxidans rusticyanin: His 85 is a ligand to the blue copper center. Biochemistry. 1995 May 23;34(20):6640–6648. [PubMed] [Google Scholar]
  • Chelly J, Kaplan JC, Maire P, Gautron S, Kahn A. Transcription of the dystrophin gene in human muscle and non-muscle tissue. Nature. 1988 Jun 30;333(6176):858–860. [PubMed] [Google Scholar]
  • Chistoserdov AY, Tsygankov YD, Lidstrom ME. Nucleotide sequence of the amicyanin gene from Methylobacterium extorquens AM1. DNA Seq. 1991;2(1):53–55. [PubMed] [Google Scholar]
  • Ferris NS, Woodruff WH, Tennent DL, McMillin DR. Native azurin and its Ni(II) derivative: a resonance Raman study. Biochem Biophys Res Commun. 1979 May 14;88(1):288–296. [PubMed] [Google Scholar]
  • Germann UA, Müller G, Hunziker PE, Lerch K. Characterization of two allelic forms of Neurospora crassa laccase. Amino- and carboxyl-terminal processing of a precursor. J Biol Chem. 1988 Jan 15;263(2):885–896. [PubMed] [Google Scholar]
  • Guss JM, Merritt EA, Phizackerley RP, Hedman B, Murata M, Hodgson KO, Freeman HC. Phase determination by multiple-wavelength x-ray diffraction: crystal structure of a basic "blue" copper protein from cucumbers. Science. 1988 Aug 12;241(4867):806–811. [PubMed] [Google Scholar]
  • Hart PJ, Nersissian AM, Herrmann RG, Nalbandyan RM, Valentine JS, Eisenberg D. A missing link in cupredoxins: crystal structure of cucumber stellacyanin at 1.6 A resolution. Protein Sci. 1996 Nov;5(11):2175–2183.[PMC free article] [PubMed] [Google Scholar]
  • Kieliszewski MJ, Lamport DT. Extensin: repetitive motifs, functional sites, post-translational codes, and phylogeny. Plant J. 1994 Feb;5(2):157–172. [PubMed] [Google Scholar]
  • Kyte J, Doolittle RF. A simple method for displaying the hydropathic character of a protein. J Mol Biol. 1982 May 5;157(1):105–132. [PubMed] [Google Scholar]
  • Lee CC, Wu XW, Gibbs RA, Cook RG, Muzny DM, Caskey CT. Generation of cDNA probes directed by amino acid sequence: cloning of urate oxidase. Science. 1988 Mar 11;239(4845):1288–1291. [PubMed] [Google Scholar]
  • Levine A, Tenhaken R, Dixon R, Lamb C. H2O2 from the oxidative burst orchestrates the plant hypersensitive disease resistance response. Cell. 1994 Nov 18;79(4):583–593. [PubMed] [Google Scholar]
  • Malmström BG. Rack-induced bonding in blue-copper proteins. Eur J Biochem. 1994 Aug 1;223(3):711–718. [PubMed] [Google Scholar]
  • Mann K, Schäfer W, Thoenes U, Messerschmidt A, Mehrabian Z, Nalbandyan R. The amino acid sequence of a type I copper protein with an unusual serine- and hydroxyproline-rich C-terminal domain isolated from cucumber peelings. FEBS Lett. 1992 Dec 21;314(3):220–223. [PubMed] [Google Scholar]
  • Markossian KA, Aikazyan VT, Nalbandyan RM. Two copper-containing proteins from cucumber (Cucumis sativus). Biochim Biophys Acta. 1974 Jul 7;359(1):47–54. [PubMed] [Google Scholar]
  • Mattar S, Scharf B, Kent SB, Rodewald K, Oesterhelt D, Engelhard M. The primary structure of halocyanin, an archaeal blue copper protein, predicts a lipid anchor for membrane fixation. J Biol Chem. 1994 May 27;269(21):14939–14945. [PubMed] [Google Scholar]
  • Mims WB, Davis JL, Peisach J. The accessibility of type I Cu(II) centers in laccase, azurin, and stellacyanin to exchangeable hydrogen and ambient water. Biophys J. 1984 Apr;45(4):755–766.[PMC free article] [PubMed] [Google Scholar]
  • Obokata J, Mikami K, Hayashida N, Nakamura M, Sugiura M. Molecular heterogeneity of photosystem I. psaD, psaE, psaF, psaH, and psaL are all present in isoforms in Nicotiana spp. Plant Physiol. 1993 Aug;102(4):1259–1267.[PMC free article] [PubMed] [Google Scholar]
  • OMURA T. Studies on laccases of lacquer trees. IV. Purification and properties of a blue protein obtained from latex of Rhus vernicifera. J Biochem. 1961 Nov;50:394–399. [PubMed] [Google Scholar]
  • Pace CN, Vajdos F, Fee L, Grimsley G, Gray T. How to measure and predict the molar absorption coefficient of a protein. Protein Sci. 1995 Nov;4(11):2411–2423.[PMC free article] [PubMed] [Google Scholar]
  • Paul KG, Stigbrand T. Umecyanin, a novel intensely blue copper protein from horseradish root. Biochim Biophys Acta. 1970 Nov 17;221(2):255–263. [PubMed] [Google Scholar]
  • Peisach J, Levine WG, Blumberg WE. Structural properties of stellacyanin, a copper mucoprotein from Rhus vernicifera, the Japanese lac tree. J Biol Chem. 1967 Jun 25;242(12):2847–2858. [PubMed] [Google Scholar]
  • Rother C, Jansen T, Tyagi A, Tittgen J, Herrmann RG. Plastocyanin is encoded by an uninterrupted nuclear gene in spinach. Curr Genet. 1986;11(3):171–176. [PubMed] [Google Scholar]
  • Sanger F, Nicklen S, Coulson AR. DNA sequencing with chain-terminating inhibitors. Proc Natl Acad Sci U S A. 1977 Dec;74(12):5463–5467.[PMC free article] [PubMed] [Google Scholar]
  • Showalter AM. Structure and function of plant cell wall proteins. Plant Cell. 1993 Jan;5(1):9–23.[PMC free article] [PubMed] [Google Scholar]
  • Solomon EI, Lowery MD. Electronic structure contributions to function in bioinorganic chemistry. Science. 1993 Mar 12;259(5101):1575–1581. [PubMed] [Google Scholar]
  • Studier FW, Rosenberg AH, Dunn JJ, Dubendorff JW. Use of T7 RNA polymerase to direct expression of cloned genes. Methods Enzymol. 1990;185:60–89. [PubMed] [Google Scholar]
  • Tollin G, Meyer TE, Cheddar G, Getzoff ED, Cusanovich MA. Transient kinetics of reduction of blue copper proteins by free flavin and flavodoxin semiquinones. Biochemistry. 1986 Jun 3;25(11):3363–3370. [PubMed] [Google Scholar]
  • Ubbink M, van Kleef MA, Kleinjan DJ, Hoitink CW, Huitema F, Beintema JJ, Duine JA, Canters GW. Cloning, sequencing and expression studies of the genes encoding amicyanin and the beta-subunit of methylamine dehydrogenase from Thiobacillus versutus. Eur J Biochem. 1991 Dec 18;202(3):1003–1012. [PubMed] [Google Scholar]
  • Van Gysel A, Van Montagu M, Inzé D. A negatively light-regulated gene from Arabidopsis thaliana encodes a protein showing high similarity to blue copper-binding proteins. Gene. 1993 Dec 22;136(1-2):79–85. [PubMed] [Google Scholar]
  • von Heijne G. A new method for predicting signal sequence cleavage sites. Nucleic Acids Res. 1986 Jun 11;14(11):4683–4690.[PMC free article] [PubMed] [Google Scholar]
  • Yamamoto K, Uozumi T, Beppu T. The blue copper protein gene of Alcaligenes faecalis S-6 directs secretion of blue copper protein from Escherichia coli cells. J Bacteriol. 1987 Dec;169(12):5648–5652.[PMC free article] [PubMed] [Google Scholar]
Department of Chemistry and Biochemistry, UCLA 90095, USA.
A. M. Nersissian: ude.alcu.mehc@vsj
Department of Chemistry and Biochemistry, UCLA 90095, USA.
A. M. Nersissian: ude.alcu.mehc@vsj

Abstract

The cDNA encoding the 182 amino acid long precursor stellacyanin from Cucumis sativus was isolated and characterized. The protein precursor consists of four sequence domains: I, a 23 amino acid hydrophobic N-terminal signal peptide with features characteristic of secretory proteins; II, a 109 amino acid copper-binding domain; III, a 26 amino acid hydroxyproline- and serine-rich peptide characteristic of motifs found in the extension family, extracellular structural glycoproteins found in plant cell walls; and IV, a 22 amino acid hydrophobic extension. Maturation of the protein involves posttranslational processing of domains I and IV. The copper-binding domain (domain II), which shares high sequence identity with other stellacyanins, has been expressed without its carbohydrate attachment sites, refolded from the Escherichia coli inclusion bodies, purified, and characterized by electronic absorption, EPR, ESEEM, and RR spectroscopy. Its spectroscopic properties are nearly identical to those of stellacyanin from the Japanese lacquer tree Rhus vernicifera, the most extensively studied and best characterized stellacyanin, indicating that this domain folds correctly, even in the absence of its carbohydrate moiety. The presence of a hydroxyproline- and serine-rich domain III suggests that stellacyanin may have a function other than that of a diffusible electron transfer protein, conceivably participating in redox reactions localized at the plant cell wall, which are known to occur in response to wounding or infection of the plant.

Abstract
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