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New tools for protein sequence analysis.

Analysis of protein sequence is an important tool in studies of both native and recombinant proteins. Novel techniques and instrumentation which facilitate determination of protein primary structure have recently been developed.

Amino Acid Sequence

A novel manual method for protein-sequence analysis.

A novel manual method for protein-sequence analysis is described. Three peptides, the hexapeptide (Leu-TRP-Met-Arg-Phe-Ala), insulin A chain and glucagon were used to test this technique. Peptides (1 or 2 nmol) were hydrolysed with acid and their qualitative amino acid compositions were confirmed by reacting with 4-NN-dimethylaminoazobenzene-4'-sulphonylchloride and 4-NN-dimethylaminoazobenzene 4'-isothiocyanate. Sequence determination of 20-200 nmol of peptide was then performed by the combined use of phenyl isothiocyanate and 4-NN-dimethylaminoazobenzene 4'-isothiocyanate, a new procedure that is analogous to the dansyl-Edman method with the replacement of dansyl chloride by 4-NN-dimethylaminoazobenzene 4'-isothiocyanate as the N-terminal residue determination reagent. On t.l.c. this new N-terminal reagent gave brightly coloured 4-NN-dimethylaminoazobenzene-4-thiohydantoins of amino acids and showed the following advantages: (1) the detection sensitivity is in the pmol range; (2) u.v. observation is not required; (3) there is no destruction of acid-labile amino acids; (4) two-dimensional t.l.c. separation is adequate to identify 24 amino acids, except leucine and isoleucine (this pair of amino acids can be resolved by using 4-NN-dimethylaminoazobenzene-4'-sulphonyl chloride); (5) the determination of a new N-terminal residue (from coupling to t.l.c. identification) takes only 3 h; (6) the colour difference beteen isothiocyanate, thiocarbamoyl and thiohydantoin derivatives facilitates the identifications.

Amino Acid Sequence

Identification of phosphotyrosine residues during protein sequence analysis.

Synthetic tyrosine-phosphorylated peptides were subjected to protein sequence analysis using a gas-phase sequencer and on-line phenylthiohydantoin (PTH) amino acid analysis. Our data show that phosphotyrosine is stable to the gas-phase sequencing chemistry and can be detected as its PTH-derivative during routine sequence analysis without the need of prior tyrosine radiolabeling.

Amino Acid Sequence

ANTHEPROT: a package for protein sequence analysis using a microcomputer.

A simple microcomputer package is described to make the theoretical analysis of protein sequences. Several methods designed to compare two sequences, to model proteolytic reactions and to predict the secondary structure, the hydrophobic/hydrophilic regions and the potential antigenic sites of proteins have been included in an Apple II microcomputer software. The package comprises 21 programs as well as the secondary structure database of Kabsch and Sander (1983).

Algorithms

Protein sequence analysis studies on the low molecular weight hydrophobic proteins associated with bovine pulmonary surfactant.

Lipid extracts of bovine pulmonary surfactant, which exhibit biophysical and biological activity, contain two hydrophobic proteins which have been designated surfactant protein-B (SP-B) and SP-C. Amino terminal amino acid sequence analysis of whole lipid extracts and partially purified protein fractions gave rise to three sequences, two major and one minor. The first sequence, identified as a member of the SP-B family, extended for 60 amino acids beginning with an amino terminal phe. The second polypeptide, identified as a member of the SP-C family, sequenced for 35 amino acids and had a leu amino terminus. The third minor sequence corresponded to amino acids 2-9 of SP-C (N-leu) and was designated SP-C (N-ile). Sequence analysis of cyanogen bromide peptides derived from methyl isocyanate-blocked lipid extract material produced two peptides which extended the amino acid sequence of SP-B to residue 79, which appears to be a glycine.

Amino Acid Sequence

Amino acid sequence of Fel dI, the major allergen of the domestic cat: protein sequence analysis and cDNA cloning.

The complete primary structure of Fel dI (International Union of Immunological Societies nomenclature), the major allergen produced by the domestic cat, Felis domesticus, was determined by protein sequence analysis and cDNA cloning. Protein sequencing of Fel dI from an immunoaffinity-purified extract of house dust revealed that the allergen is composed of two polypeptide chains. Degenerate oligonucleotides derived from the protein sequence were used in polymerase chain reaction amplification of cat salivary gland cDNA to demonstrate that the two chains are encoded by different genes. Chain 1 of Fel dI shares amino acid homology with rabbit uteroglobin, while chain 2 is a glycoprotein with N-linked oligosaccharides.

Allergens

Solid-phase protein sequence analysis.

The solutions to many protein analytical problems require flexible chemistries at a high sensitivity. Solid-phase sequence analysis is one way to eliminate limitations inherent in current methods.

Amino Acid Sequence

Purification and amino-terminal protein sequence analysis of the mumps virus fusion protein.

The fusion (F) protein of mumps virus was purified by immunoaffinity chromatography using an anti-F monoclonal antibody. The F protein was reduced and alkylated, and the F1 and F2 chains were isolated by high-pressure size exclusion chromatography. Twenty-three amino acid residues from the amino terminus of each chain were identified following automated Edman degradation. The amino-terminal sequence of the F1 chain was homologous to previously reported F1 sequences from three other paramyxoviruses (simian virus 5, Newcastle disease virus, and Sendai virus). Secondary structure predictions suggest an alpha-helical conformation for the mumps virus F1 amino-terminal sequence. A helical wheel model of the paramyxovirus F1 NH2 terminus is presented which defines conserved and variable arcs of the helix and provides a spatial representation of this critical functional domain of the paramyxovirus fusion protein.

Amino Acid Sequence

GENEUS, a computer system for DNA and protein sequence analysis containing an information retrieval system for the EMBL data library.

We describe a comprehensive computer system, GENEUS, for extensive DNA, RNA and protein sequence analysis. The analysis system is developed for the DEC VAX/VMS computer and uses the EMBL Nucleic Acid Sequence Data Library. Help information is available on-line on terminal screen. To speed up system handling, a qualifier oriented user communication is employed. All results are stored on files making them accessible to the computer editor. An information retrieval system for the EMBL Nucleotide Sequence Data Library is also described. A defined data-base interface allows connection to other analysis programs.+

Amino Acid Sequence

Characterization of ribosomal frameshift events by protein sequence analysis.

In cell-free protein synthesis studies with RNA from phage MS2 as template, normal Escherichia coli tRNASer3 promotes two base translocation at GCA alanine codons with a resultant shift of ribosomes to the minus one reading frame. Similarly, normal tRNAThr3 promotes two base translocation at CCG proline codons. These conclusions were reached by amino acid sequencing of tryptic peptides or cyanogen bromide fragments that contained the reading frame shift site. It is proposed that these frameshift events occur by a two-base pair interaction between the anticodons of these exceptional tRNAs and the noncognate codons.

Alanine

Alkylation of cysteine with acrylamide for protein sequence analysis.

Alkylation of cysteine in proteins with acrylamide under mildly alkaline conditions yields a thioether derivative, Cys-S-beta-propionamide (Cys-S-Pam), which is stable during automated Edman degradation. Its phenylthiohydantoin derivative, PTH-Cys-S-Pam, is easily separated from other PTH-amino acids by HPLC and is thus useful for cysteine identification during protein sequencing. PTH-Cys-S-Pam was first noticed during sequencing polypeptides blotted onto polyvinylidene difluoride membranes from polyacrylamide gels, in which cysteine had reacted with residual unpolymerized acrylamide. Cysteine in proteins is easily alkylated by reaction of proteins in aqueous solution with acrylamide. Methods are also presented for alkylation of cysteine in proteins adsorbed on fiberglass disks in the reaction cartridge of a protein sequencer. Finally, PTH-Cys-S-Pam was synthesized chemically. The synthetic compound is unstable in neutral solution, but can be stabilized by acidification. It has the same HPLC retention time as the product formed from cysteine when sequencing proteins alkylated with acrylamide.

Acrylamide

The elucidation of protein function by sequence motif analysis.

Protein sequence motifs are acquiring increasing prominence in the area of sequence analysis. This review describes the current methods of their construction and their use in the determination of protein function, and offers guidelines on interpreting data obtained. An appendix is attached which refers to 200 motifs of various kinds.

Amino Acid Sequence

Internal protein sequence analysis: enzymatic digestion for less than 10 micrograms of protein bound to polyvinylidene difluoride or nitrocellulose membranes.

A procedure for the generation and isolation of internal peptide fragments for less than 10 micrograms of protein bound to either polyvinylidene difluoride (PVDF) or nitrocellulose membranes after electrophoretic transfer from sodium dodecyl sulfate-polyacrylamide gels (SDS-PAGE) is presented. This technique has produced internal sequence data for 120 peptides, with an average initial yield of 20 pmol. Membrane-bound proteins were enzymatically digested with either trypsin or endoproteinase Lys-C in the presence of 1% hydrogenated Triton X-100/10% acetonitrile/100 mM Tris-HCl, pH 8.0, for 24 h at 37 degrees C. The eluted peptides were then directly isolated by microbore HPLC for subsequent sequence analysis. One percent hydrogenated Triton X-100 did not inhibit enzymatic activity, distort HPLC resolution of peptides, or contain uv-absorbing contaminants that could interfere with peptide identification. Reproducible peptide maps and consistent recoveries are presented for standard proteins (3.5-8.0 micrograms) bound to either membrane, with higher recoveries for PVDF-bound proteins. Ninety percent of the proteins analyzed by this technique have produced results; representative peptide maps and sequence data are presented. This technique has a wide range of applications, particularly for proteins with blocked amino termini or those that can only be purified by SDS-PAGE or 2D isoelectric focusing SDS-PAGE.

Collodion

A method for the unambiguous identification of tryptophan in automated protein sequence analysis.

Some widely used standard protocols for the separation of phenylthiohydantoin amino acid derivatives by reverse-phase gradient HPLC do not provide separation of the phenylthiohydantoin derivative of tryptophan (PTH-Trp) from diphenylurea (DPU), a by-product generated during Edman degradation of proteins in variable amounts. Furthermore, PTH-Trp is usually recovered in low yield under typical experimental conditions used with automated sequencing equipment. These factors may compromise the unambiguous assignment of tryptophan residues in automated protein sequence analysis, especially when sequencing is performed at high sensitivity. We devised a reverse-phase HPLC method which allows the separation of DPU and PTH-Trp and therefore the correct assignment of PTH-Trp. The method is based on a modification of the HPLC gradient used to elute and separate all PTH amino acids of interest. With Applied Biosystems Model 477A protein sequencers with on-line PTH amino acid identification, the correct assignment of tryptophan was consistent and reproducible even when sequencing at very high sensitivity (5 pmol).

Amino Acid Sequence

Sequence analysis of proteins separated by polyacrylamide gel electrophoresis: towards an integrated protein database.

Improved technologies or the synergistic use of complementary methods enhance the efficiency of research and permit the exploration of new approaches for the investigation of complex problems. High sensitivity protein sequence analysis and polyacrylamide gel electrophoresis are such complementary methods. Here we summarize the current status of high sensitivity sequence analysis of proteins separated in polyacrylamide gels and discuss strategies by which this technology can enhance biological research by generating new approaches for the solution of complex, multifacetted problems. Finally, we outline imminent technological advances in the area of high sensitivity protein sequence analysis and argue that further technological developments will ultimately lead to the generation of an integrated protein database (containing structural and functional as well as physiological information in an easily accessible form) of all the proteins separated by high resolution two-dimensional gel electrophoresis.

Amino Acid Sequence

A putative Ca2+-binding protein: structure of the light subunit of porcine calpain elucidated by molecular cloning and protein sequence analysis.

cDNA clones specific for the light subunit of porcine calpain I have been isolated from a porcine kidney cDNA library. The complete primary structure of the light subunit has been revealed by nucleotide sequence analysis of the cDNA clones isolated and amino acid sequence analysis of peptides isolated from the purified mature protein. We found that the light subunit contains two distinct domains. Domain I, the amino-terminal half, has two unusually long, paired polyglycyl sequences and may serve as a binding site to the heavy subunit. Domain II, the carboxyl-terminal half, is a region highly homologous to the putative Ca2+-binding domain of the heavy subunit of chicken calpain elucidated recently. This region has four potential Ca2+-binding sites, each having the "E-F hand" structure. Our results suggest that the Ca2+-mediated proteolytic activity of calpain is controlled through the cooperative and/or sequential actions of multiple Ca2+-binding sites present in both two-subunit molecules, heavy and light subunits of calpain.

Amino Acid Sequence

Characterization of a benzyladenine binding-site peptide isolated from a wheat cytokinin-binding protein: sequence analysis and identification of a single affinity-labeled histidine residue by mass spectrometry.

A wheat embryo cytokinin-binding protein was covalently modified with the radiolabeled photoaffinity ligand 2-azido-N6-[14C]benzyladenine. A single labeled peptide was obtained after proteolytic digestion and isolation by reversed-phase and anion-exchange HPLC. Sequencing by classical Edman degradation identified 11 of the 12 residues but failed to identify the labeled amino acid. Analysis by laser photodissociation Fourier-transform mass spectrometry of 10 pmol of the peptide independently confirmed the Edman data and also demonstrated that the histidine residue nearest the C terminus (underlined) was modified by the reagent in the sequence Ala-Phe-Leu-Gln-Pro-Ser-His-His-Asp-Ala-Asp-Glu.

Adenine

Chemical characterization by protein sequence analysis of the bovine estrogen receptor.

Tryptic peptides generated from bovine estrogen receptor have been fractionated and purified using microbore column high performance liquid chromatography. Sequence analysis performed on six of these peptides, derived from diverse structural regions of the receptor protein, yielded 73 unique assignments corresponding to approximately 12% of the molecule. The amino acid sequences of these peptides displayed a high degree of similarity with corresponding sequences from estrogen receptors of mammalian origin, but were only moderately conserved in receptors from non-mammalian species. The sequenced residues of one tryptic peptide, positioned in the estrogen binding domain, were fully conserved in all estrogen receptors.

Amino Acid Sequence