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One-step N-Terminomics Based on Isolation of Protein N-Terminal Peptides From LysargiNase Digests by Tip-Based Strong Cation Exchange Chromatography.

We have developed a one-step isolation method for protein N-terminal peptides from LysargiNase digests by pipette tip-based strong cation exchange (SCX) chromatography. This CHAMP-N (CHromatographic AMplification of Protein N-terminal peptides) method using disposable and parallel-processable SCX tips instead of conventional HPLC SCX columns facilitates simple, sensitive, reproducible, and high-throughput N-terminomic profiling without sacrificing the high identification numbers and selectivity achieved by the HPLC-based method. By applying the CHAMP-N method to HEK293T cells, we identified novel cleavage sites for signal and transit peptides and non-canonical translation initiation sites. Finally, for proteome-wide terminomics, we present a simple and comprehensive N- and C-terminomics platform employing three different tip-based approaches, including CHAMP-N, in which protease digestion and one-step isolation by tip LC are commonly used to achieve complementary terminome coverages.

Humans

Preparation of carboxyl-terminal tryptic peptides from proteins by cleavage at arginine.

A method has been developed for selectively preparing the carboxyl-terminal tryptic peptide of proteins by cleavage at arginyl residues. The succinylated protein is digested with trypsin and the peptides produced are maleylated. Maleylated peptides are then submitted to cation-exchange chromatography in urea at low pH and ionic strength. Arginine-containing peptides are retained by the resin. The carboxyl-terminal peptide emerges unretarded and in pure form. This method has been applied to four proteins of known sequence. Yields as high as 88% have been obtained.

Amino Acids

BK virus DNA: complete nucleotide sequence of a human tumor virus.

The complete DNA sequence of the human papovavirus BK is presented. From the 4963 base-pair sequence of BK virus (MM strain), the amino acid sequence of at least five proteins can be deduced: a T antigen and a t antigen, which share amino terminal peptides; proteins VP2 and VP3, which share 232 amino acids; and protein VP1, whose coding sequence overlaps those for VP2 and VP3 by 113 nucleotides but is read in a different frame. The gene loci and the arrangement of genes are strikingly similar in BK virus and simian virus 40 (SV40). The sequence of the deduced proteins in BK virus shares 73 percent amino acid homology with those in SV40, whereas the DNA sequence of the two viruses shares 70 percent homology, suggesting close evolutionary relationship. However, the repeated DNA sequences in the noncoding regions of these viruses are different.

Antigens, Viral

Adenovirus type 2 terminal protein: purification and comparison of tryptic peptides with known adenovirus-coded proteins.

The protein covalently bound to the 5' termini of adenovirus type 2 DNA has been purified from virus labeled with [35S]methionine, using exclusion chromatography of disrupted virions to isolate the DNA-protein complex, which is then digested with DNase. The terminal protein isolated from mature virus is most effectively labeled if the cells are exposed to [35S]methionine during the "intermediate" period of 13 to 21 h postinfection, suggesting that the protein is synthesized during this interval. The tryptic peptides of the terminal protein were compared with those of several known adenovirus-coded proteins and found to be unrelated. In particular, the terminal protein is not related to the 38-50K early proteins encoded by the leftmost 4.4% of the adenovirus genome, one region essential for the transforming activity of the virus. Neither is it related to the 72K single-strand-specific DNA binding protein, the minor virion component IVa2, or the major capsid component hexon.

Adenoviruses, Human

Membrane destabilization by N-terminal peptides of viral envelope proteins.

The fusion of lipid enveloped viruses with cellular membranes is thought to be mediated by the insertion into the target membrane of the N-terminal polypeptides of viral spike glycoproteins. Since membrane destabilization is a necessary step in membrane fusion, we investigated whether synthetic peptides with amino acid sequences corresponding to the N-termini of influenza virus hemagglutinin (HA2), vesicular stomatitis virus G-protein and Sendai virus F-protein, induce the destabilization and fusion of phospholipid vesicles. Membrane destabilization by the peptides was monitored by the release of aqueous contents of large unilamellar phospholipid vesicles. Aggregation was detected by a resonance energy transfer assay. Membrane fusion was followed by means of assays for the intermixing of phospholipids and of aqueous contents. The 17-amino acid HA2 peptide (HA2.17) destabilized phosphatidylcholine (PC) vesicles even at neutral pH, but the rate and extent of destabilization increased at lower pH. This peptide did not mediate appreciable release of contents from phosphatidylserine (PS) vesicles. HA2.17 induced neither aggregation nor fusion of PC or PS vesicles. In contrast, the 7-amino acid N-terminal peptide of G-protein (G.7) destabilized PS-containing membranes and not pure PC vesicles. Although G.7 caused aggregation of and lipid mixing between PS vesicles, it did not mediate any detectable intermixing of aqueous contents. The presence of cholesterol in PC membranes did not affect the destabilization caused by the N-terminal peptide of Sendai virus F-protein (F1.7), suggesting that cholesterol is not necessary for the effective interaction of this peptide with membranes, contrary to earlier proposals. Our results support the hypothesis that the hydrophobic N-terminal region of certain viral envelope proteins insert into and destabilize target membranes.

Amino Acid Sequence

Quantitative determination of N-terminal amino acids of peptides and proteins with cobalt(III) chelates.

Quantitative N-terminal peptide-bond hydrolysis with the cis-beta-hydroxyaquo(triethylenetetramine) cobal (III) ion, i.e. beta-[Co(trien)(OH)(OH2)]2+, is reported. The method has been demonstrated with 20 small peptides, a hexapeptide, bradykinin, insulin A chain (oxidized), glucagon and insulin. The procedure involves no acidic hydrolysis step and thus no destruction of labile amino acids.

Amino Acids

Automated carboxy-terminal sequence analysis of peptides and proteins using diphenyl phosphoroisothiocyanatidate.

Proteins and peptides can be sequenced from the carboxy-terminus with isothiocyanate reagents to produce amino acid thiohydantoin derivatives. Previous studies in our laboratory have focused on the automation of the thiocyanate chemistry using acetic anhydride and trimethylsilylisothiocyanate (TMS-ITC) to derivatize the C-terminal amino acid to a thiohydantoin and sodium trimethylsilanolate for specific hydrolysis of the derivatized C-terminal amino acid (Bailey, J.M., Shenoy, N.R., Ronk, M., & Shively, J.E., 1992, Protein Sci. 1, 68-80). A major limitation of this approach was the need to activate the C-terminus with acetic anhydride. We now describe the use of a new reagent, diphenyl phosphoroisothiocyanatidate (DPP-ITC) and pyridine, which combines the activation and derivatization steps to produce peptidylthiohydantoins. Previous work by Kenner et al. (Kenner, G.W., Khorana, H.G., & Stedman, R.J., 1953, Chem. Soc. J., 673-678) with this reagent demonstrated slow kinetics. Several days were required for complete reaction. We show here that the inclusion of pyridine was found to promote the formation of C-terminal thiohydantoins by DPP-ITC resulting in complete conversion of the C-terminal amino acid to a thiohydantoin in less than 1 h. Reagents such as imidazole, triazine, and tetrazole were also found to promote the reaction with DPP-ITC as effectively as pyridine. General base catalysts, such as triethylamine, do not promote the reaction, but are required to convert the C-terminal carboxylic acid to a salt prior to the reaction with DPP-ITC and pyridine. By introducing the DPP-ITC reagent and pyridine in separate steps in an automated sequencer, we observed improved sequencing yields for amino acids normally found difficult to derivatize with acetic anhydride/TMS-ITC. This was particularly true for aspartic acid, which now can be sequenced in yields comparable to most of the other amino acids. Automated programs are described for the C-terminal sequencing of peptides covalently attached to carboxylic acid-modified polyethylene and proteins (200 pmol to 5 nmol) noncovalently applied to Zitex (porous Teflon). The generality of our automated C-terminal sequencing methodology was examined by sequencing model peptides containing all 20 of the common amino acids. All of the amino acids tested were found to sequence in good yield except for proline, which was found not to be capable of derivatization. In spite of this limitation, the methodology should be a valuable tool for the C-terminal sequence analysis of peptides and proteins.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence

Conserved primary sequences of the DNA terminal proteins of five different human adenovirus groups.

The 31 human adenoviruses (Ad) from five groups (A-E) whose DNAs are <20% homologous by molecular hybridization. Ad5 (group C) DNA contains a 55,000-dalton protein probably covalently bound to each 5' terminus. This covalently bound protein may be analogous to polypeptides found in other viral and nonviral systems that are covalently bound to genomic DNAs or RNAs and that are thought to function in DNA or RNA replication. Because of the importance of proteins linked to nucleic acids, we have investigated whether DNAs from all five groups of human adenoviruses have terminal proteins, as well as the peptide relationships among the different terminal proteins. We show here that DNAs from Ad12, 7, 2, 19, and 4, representing Ad groups A-E, respectively, all contain covalently bound proteins of about 55,000 daltons. To investigate the peptide relatedness among the terminal proteins, we prepared microgram quantities of covalently bound protein from Ads in groups A-E and compared their chymotryptic and tryptic (125)I-labeled peptide maps. We find that the covalently bound protein maps of the five Ad groups are highly related and possibly identical. On the other hand, the tryptic and chymotryptic peptide maps of the major virion protein II and the core proteins V and VII of groups B, C, and E Ads show considerable heterology. Assuming that the covalently bound protein is virally coded, the conserved primary sequence of these proteins suggests a major functional role for the protein in Ad replication. Because the genetic origin of the Ad covalently bound proteins is not established, our data are also consistent with the possibility that the protein is coded by a cellular gene.

Adenoviruses, Human

Purification and properties of acylamino acid-releasing enzyme from rat liver.

An enzyme that releases acylamino acid from amino terminal acylated peptides and proteins has been isolated from rat liver in a highly purified form bya six-step procedure comprising extraction from liver homogenate, ammonium-sulfate fractionation, heat treatment, chromatography on columns of DEAE-cellulose and hydroxylapatite and gel filtration on a Sepharose 6B column. About 1,500-fold purification was achieved from the liver homogenate. The purified enzyme preparation showed a single band on polyacrylamide gel disc electrophoresis. The enzyme specifically released acylamino acids from several amino terminal acylated peptides and proteins with different rates of hydrolysis depending on the acyl groups, terminal amino acid sequences and tertiary structure of the acyl protein substrates. The present enzyme may be useful for the removal of the N-terminal acylamino acid from some N-terminal blocked peptides and proteins in amino acid sequence analysis. The molecular weight of the purified enzyme was estimated to be 360,000-420,000 by gel filtration and sucrose density gradient ultracentifugation. Disc electrophoresis of the acylamino acid-releasing enzyme on SDS-polyacrylamide gel suggested that the enzyme consisted of five or six identical subunits having a subunit weight of about 75,000. The N-terminal residue of the subunit, which consisted of a single polypeptide chain, was glycine. Other properties of the enzyme, including isoelectric point, the effects of metal ions and several chemical reagents on the enzyme activity, pH optimum, and amino acid composition were also examined.

Acylation

The primary structure of a human lambda II chain.

The human myeloma protein Boh (gamma 2, lambda) was isolated and completely reduced and aminoethylated. The light chain was obtained by chromatography on Sephadex G-100 in 4 M guanidine HC1. The amino-terminal sequence on the blocked light chain could be determined by automatic sequence degradation after PCAase treatment. Twenty-one peptides were isolated from a tryptic digest and 12 peptides from a chymotryptic digest. The sequence determination on these peptides was performed by automatic sequencing methods. The light chain of Boh protein belongs to the lambda II subgroup. Unique substitutions have been found at position 8 (Arg) and position 62 (Tyr). Furthermore, the Boh light chain has six cysteine residues, the additional (sixth) cysteine being adjacent to the invariable intrachain-S-S linking cysteine at position 91. Sequence comparison of lambda II proteins reveals a high degree of homology emphasizing the biologic significance of the hypervariable region sequences;

Amino Acid Sequence

Foot-and-mouth disease virus immunogenic capsid protein VPT: N-terminal sequences and immunogenic peptides obtained by CNBr and tryptic cleavages.

The immunogenic capsid protein (VPT), circa 30 kiladaltons (kd), of foot-and-mouth disease virus was examined for (i) its ability to induce neutralizing antibody in guinea pigs after chemical modifications and CNBr or tryptic cleavages and (ii) N-terminal amino sequence homology across three virus types. The immunogenicity of VPT was inactivated by glutaraldehyde treatment, carboxymethylation and maleylation or citraconylation. However, de-citraconylation restored part of the lost activity. Cleavage of type A12 VPT with CNBr produced an immunogenic peptide of circa 13 kd. A slightly larger (ca. 16 kd) immunogenic doublet, VPTab, was obtained by tyrptic cleavage of VPT in the virion. Sequence homologies of circa 85% were found between the first 26 amino acids at the N-terminus of VP chains from virus types A12 strain 119 (A12), C3 Resende (C3R) and O1 Brugge (O1B).

Amino Acid Sequence

[High-voltage electrophoresis and its application in combination with other methods for protein structure studies].

The method of high-voltage paper electrophoresis may be applied not only for peptide separation, but also in modifications and combinations with other methods, so, by means of aminoethylation and maleylation it is possible to broaden or narrow the range of trypsin action. This, in its turn, makes it possible to isolate preparatively lysin- and arginine-containing peptides, oxidation with performic acid enables the thyol-containing fragments to be isolated and application of carboxypeptidase A-C-terminal peptide of protein. When studying the primary structure of proteins the method has already found its widest application but with an increase in the number of methods of protein specific modification its potentiabilities will be even wider.

Carboxypeptidases

Automated carboxy-terminal sequence analysis of peptides.

Proteins and peptides can be sequenced from the carboxy-terminus with isothiocyanate reagents to produce amino acid thiohydantoin derivatives. Previous studies in our laboratory have focused on solution phase conditions for formation of the peptidylthiohydantoins with trimethylsilylisothiocyanate (TMS-ITC) and for hydrolysis of these peptidylthiohydantoins into an amino acid thiohydantoin derivative and a new shortened peptide capable of continued degradation (Bailey, J. M. & Shively, J. E., 1990, Biochemistry 29, 3145-3156). The current study is a continuation of this work and describes the construction of an instrument for automated C-terminal sequencing, the application of the thiocyanate chemistry to peptides covalently coupled to a novel polyethylene solid support (Shenoy, N. R., Bailey, J. M., & Shively, J. E., 1992, Protein Sci. I, 58-67), the use of sodium trimethylsilanolate as a novel reagent for the specific cleavage of the derivatized C-terminal amino acid, and the development of methodology to sequence through the difficult amino acid, aspartate. Automated programs are described for the C-terminal sequencing of peptides covalently attached to carboxylic acid-modified polyethylene. The chemistry involves activation with acetic anhydride, derivatization with TMS-ITC, and cleavage of the derivatized C-terminal amino acid with sodium trimethylsilanolate. The thiohydantoin amino acid is identified by on-line high performance liquid chromatography using a Phenomenex Ultracarb 5 ODS(30) column and a triethylamine/phosphoric acid buffer system containing pentanesulfonic acid. The generality of our automated C-terminal sequencing methodology was examined by sequencing model peptides containing all 20 of the common amino acids. All of the amino acids were found to sequence in high yield (90% or greater) except for asparagine and aspartate, which could be only partially removed, and proline, which was found not be capable of derivatization. In spite of these current limitations, the methodology should be a valuable new tool for the C-terminal sequence analysis of peptides.

Amino Acid Sequence

Isopeptide linkage between nonhistone and histone 2A polypeptides of chromosomal conjugate-protein A24.

Chromosomal protein A24 has a unique structure inasmuch as it contains histone 2A and a nonhistone polypeptide the sequence of which has been partially determined. Comparative analysis of the ninhydrin-insensitive amino-terminal tryptic peptides of protein A24 and histone 2A and a quantitative analysis of their carboxyl-terminal amino acid indicated that protein A24 has two amino termini and one carboxyl terminus. The amino acid sequence analysis of tryptic peptide 17' of protein A24: (see text) showed it contains tryptic peptide 17 of histone 2A, Lys-Thr-Glu-Ser-His-His-Lys. Lysine 119, the amino terminus of this peptide, which is derived from the histone 2A portion of protein A24, is linked by an isopeptide bond to the carboxyl group of a glycine residue. Accordingly, the branched structure of protein A24 proposed is: (see text).

Amino Acid Sequence

Use of thiocyanic acid to form 2-thiohydantoins at the carboxyl terminus of proteins.

The chemistry of the formation of 2-thiohydantoins on the carboxyl terminal of peptides or proteins was investigated. It was found that thiocyanic acid was much more reactive for the formation of 2-thiohydantoins than were the thiocyanate salts. The physical reasons for this observation are explained. The kinetics of the reaction of a number of proteins, and some of their fragments, with thiocyanic acid were also determined. Simple and safe procedures for the preparation of anhydrous thiocyanic acid solutions were devised. The prospective application of these procedures to sequencing from the carboxyl terminal of a polypeptide is discussed.

Amines