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Biomedical subjects

G Walter

Publications and source records attributed to G Walter.

At least 217 records · Page 12Linked to original sources

Cross-reactivity of antibodies against synthetic peptides.

Antiserum against the synthetic peptide Lys-Arg-Ser-Arg-His-Phe, corresponding to the carboxy terminus of polyoma virus medium tumor antigen (medium T antigen), immunoprecipitates a protein of 36,000 daltons from polyoma virus-infected and uninfected cell extracts treated with the sulfhydryl group reagent N-ethyl-maleimide. This protein appears to share an antigenic determinant with medium T antigen that is normally buried inside the protein or covered up by another protein or cellular structure. The two-dimensional tryptic fingerprints of the 36K protein and of medium T antigen are apparently unrelated to each other. Antiserum against the octapeptide Ac-Met-Asp-Lys-Val-Leu-Asn-Arg-Tyr, including the amino-terminal heptapeptide sequence of the simian virus 40 (SV40) large tumor (T) and small T antigens, cross-reacts with polyoma virus large T antigen, which has an identical amino-terminal heptapeptide sequence except that Lys is replaced by Arg and Asn by Ser. The problem of cross-reactivities of antipeptide sera is discussed.

Amino Acid Sequence↗

Purification of polyoma virus medium-size tumor antigen by immunoaffinity chromatography.

We have used antibodies against the synthetic peptide Lys-Arg-Ser-Arg-His-Phe, corresponding to the six COOH-terminal amino acids of the polyoma virus medium tumor (T) antigen, to purify the medium T antigen by affinity chromatography. Release of the medium T antigen from the anti-peptide antibody was achieved under mild conditions by using a large excess of the peptide in an isotonic buffer at neutral pH containing mixed detergents. This procedure yielded a 2,500-fold purification of the medium T antigen in a single step. The protein kinase activity associated with the medium T antigen was also released and was studied in this active state in solution. Sedimentation analysis showed that the bulk of the purified medium T antigen was in a monomeric form (Mr about 42,000) not associated with protein kinase activity. A small fraction of the medium T antigen was found in a rapidly sedimenting form (Mr about 200,000) that possessed protein kinase activity.

Animals↗

Immunofluorescent localization of the transforming protein of Rous sarcoma virus with antibodies against a synthetic src peptide.

Antisera were raised against a synthetic peptide (src-c) containing the six COOH-terminal amino acids of p60src, the transforming protein of Rous sarcoma virus (RSV). Antibodies specific for the src-c peptide were purified by affinity chromatography and then used to study the location of p60src in transformed cells. The distribution of p60src was compared to that of vinculin, a candidate cytoskeletal substrate of p60src, by indirect double immunofluorescence microscopy. In RSV-transformed rat, mouse, and chicken cells, an extensive codistribution of p60src with vinculin was observed. Both proteins were concentrated in the few remaining focal adhesion plaques, in transformation-induced rosette clusters at the ventral cell surface, and in cell-cell contact areas. In addition, antibodies to both proteins stained the cytoplasm diffusely. In all cells examined, the immunofluorescent staining patterns produced by antibodies to the src-c peptide were indistinguishable from those obtained by immunolabeling of p60src with sera from RSV-infected tumor-bearing rabbits. The excellent agreement of the results obtained with two completely independent antibody preparations indicates strongly that the observed immunolabeling patterns correctly define the intracellular distribution of p60src. The significance of the intracellular location of p60src to the transforming activities of the protein is discussed.

Animals↗

On the nature of crossreactions observed with antibodies directed to defined epitopes.

Antibodies directed against a synthetic peptide (src-c) containing the six carboxyl-terminal amino acids of p60src, the transforming protein of Rous sarcoma virus, recognize p60src. However, when used at sufficiently high concentrations they also react with a number of constituents of untransformed cells. These reactions can be completely inhibited by src-c peptide. Crossreactivities are to different components in cells from different species and cannot be attributed to p60c-src, the ubiquitous cellular homologue of p60src. By indirect immunofluorescence microscopy and immunochemical techniques we have identified three cytoskeletal proteins, myosin, tubulin, and vimentin, as well as an unknown intranuclear antigen, as major targets of anti-src-c antibodies in different untransformed cells. These crossreactivities probably reflect identities or similarities in the amino acid sequence of the immunogenic peptide and segments of the otherwise unrelated crossreactive proteins. These findings are discussed with respect to the interpretation of crossreactivities that are occasionally observed with anti-peptide sera and with monoclonal antibodies.

Amino Acid Sequence↗

Simian virus 40 large T antigen is phosphorylated at multiple sites clustered in two separate regions.

The phosphorylation sites of simian virus 40 large T antigen were determined within the primary structure of the molecule. Exhaustive digestion of (32)P-labeled large T antigen with trypsin generated six major phosphopeptides which could be separated in a newly developed isobutyric acid-containing chromatography system. By partial tryptic digestion, large T antigen was cleaved into an amino-terminal fragment of 17,000 daltons and overlapping fragments from the carboxy-terminal region ranging in size between 71,000 and 13,000 daltons. The location of the phosphopeptides was then determined by fingerprint analyses of individual fragments. Their physical properties were analyzed by sizing on polyacrylamide gels and by sequential digestion and peptide mapping; their amino acid composition was determined by differential labeling with various amino acids. The amino-terminal 17,000-dalton fragment gave rise to only one phosphopeptide (phosphopeptide 3) that contained half of the phosphate label incorporated into large T antigen. It contained phosphoserine and phosphothreonine sites, all of which were clustered within a small segment between Cys(105) and Lys(127). This segment contained five serines and two threonines. Among these, Ser(106), Ser(123), and Thr(124) were identified as phosphorylated residues; in addition, either one or both of Ser(111) and Ser(112) were phosphorylated. The neighboring residues, Ser(123) and Thr(124), were found in three different phosphorylation states in that either Ser(123) or Thr(124) or both were phosphorylated. Phosphopeptides 1, 2, 4, 5, and 6 were all derived from a single fragment extending 26,000 daltons upstream from the carboxy terminus of large T antigen. Phosphopeptide 6 was identical with the previously determined phosphothreonine peptide phosphorylated at Thr(701). Phosphopeptides 1, 2, 4, and 5 contained only serine-bound phosphate. Phosphopeptides 1, 2, and 4 represented overlapping peptides, all of which were phosphorylated at Ser(639) located next to a cluster of six acidic residues. In phosphopeptide 5, a large peptide ranging from Asn(653) to Arg(691), at least two of seven serines were phosphorylated. Thus, large T antigen contains at least eight phosphorylation sites. Their clustering within two separate regions might correlate with structural and functional domains of this protein.

Adenosine Diphosphate Ribose↗

Antiserum specific for the carboxy terminus of the transforming protein of Rous sarcoma virus.

An antiserum specific for the carboxy terminus of p60src, the transforming protein of Rous sarcoma virus, was produced by immunization of rabbits with a conjugate of bovine serum albumin and the synthetic peptide NH2-Tyr-Val-Leu-Glu-Val-Ala-Glu-COOH. The carboxy-terminal six amino acids of this peptide correspond in sequence to that deduced for the carboxy terminus of the p60src of the Schmidt-Ruppin strain of Rous sarcoma virus of subgroup A. The p60src proteins of the several strains of Rous sarcoma virus and the cellular homolog of the viral transforming protein, p60c-src, comprise a polymorphic family of polypeptides. The anticarboxy-terminal serum reacted readily with the p60src proteins of three different strains of Rous sarcoma virus. In contrast, no precipitation of cellular p60c-src could be detected with this serum. This suggests that the viral p60src proteins have identical carboxy termini and that the carboxy terminus of cellular p60c-src may be different from that of viral p60src. The anticarboxy-terminal serum reacted poorly with the subpopulation of viral p60src which is present in a complex with two cellular phosphoproteins. Apparently, the presence of the two cellular proteins interferes with the recognition of p60src by the anticarboxy-terminal serum. It seems likely, therefore, that these two cellular proteins bind to the carboxy-terminal domain of p60src.

Amino Acid Sequence↗

Antibodies specific for the polyoma virus middle-size tumor antigen.

We have obtained antibodies specific for the polyoma virus middle-size tumor antigen (middle T antigen) by immunizing rabbits with a synthetic peptide, Lys-Arg-Ser-Arg-His-Phe, corresponding to the six carboxy-terminal amino acids of the middle T antigen predicted from the nucleotide sequence of polyoma DNA. The antipeptide serum precipitates the polyoma middle T antigen but not the small or large tumor antigens, and precipitation is inhibited in the presence of the peptide. Two cellular proteins, 30,000 and 26,000 daltons, are also precipitated specifically by the antipeptide serum and may have amino acid sequences related to the peptide. Two other cellular proteins, 33,000 and 25,000 daltons, are precipitated only in the presence of the peptide and may associate with it in cell extracts. Antisera directed against synthetic peptides are likely to be important in various ways, including the production of antibodies directed against particular determinants and the recognition of unknown proteins whose genes have been analyzed.

Animals↗

Phosphorylation of threonine in the proline-rich carboxy-terminal region of simian virus 40 large T antigen.

The position of phosphothreonine in the predicted primary structure of simian virus 40 large T antigen was determined by different methods. After digestion of large T antigen with trypsin and subsequent two-dimensional peptide mapping, a single peptide containing phosphothreonine could be separated from the bulk of phosphoserine-containing peptides. Its amino acid composition was determined by differential labeling with various amino acids in vivo. The high yield of proline (4.5 mol) within the phosphothreonine peptide indicated that it was derived from the carboxy terminus of large T antigen and had in its unphosphorylated form the sequence Lys-Pro-Pro-Thr-Pro-Pro-Pro-Glu-Pro-Glu-Thr-COOH. A phosphopeptide generated by chymotrypsin could be converted into the tryptic phosphothreonine peptide, indicating that the latter was part of the chymotryptic peptide. The origin of the phosphothreonine-containing peptides was independently confirmed by using an antiserum directed against the carboxy terminus of large T antigen. This serum reacted specifically with the proline-rich, phosphothreonine-containing peptides. Further analysis by partial acid hydrolysis indicated that the internal threonine was phosphorylated. The unusual amino acid composition on both sides of the phosphothreonine and the possible function of this phosphorylation site are discussed.

Amino Acid Sequence↗

[Isolation of Babesia microti (França 1912) from free-living nymphs of Ixodes ricinus (Linnaeus 1758) (author's transl)].

375 unfed nymphs of Ixodes ricinus were collected in a natural focus of Babesia microti near Hannover and were tested for an infection with B. microti using golden hamsters (Mesocricetus auratus). 2 strains (Hannover II and Hannover III) were isolated. The incidence of infected nymphs in April 1980 demonstrates the ability of B. microti to hibernate in I. ricinus under natural conditions.

Animals↗