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Isolation of a sperm membrane sialoglycoprotein autoantigen from rabbit testes.

A single rabbit sperm membrane autoantigen has been isolated from rabbit testes by immunoadsorbent chromatography, agarose chromatography, and electrophoresis. This rabbit sperm autoantigen (RSA-1) is located in the sperm plasma membrane and blocks the sperm cytotoxic (immobilizing) activity of autoantisera. RSA-1 is a sialoglycoprotein, approximately 40% carbohydrate and containing 0.2 micrograms sialic acid/microgram protein. Its m.w. is estimated at 13,000 +/- 1200 by SDA-PAGE. RSA-1 can self-aggregate into higher m.w. forms. Approximately 0.6 mg of RSA-1 can be isolated from 100 rabbits testes. The isolated RSA-1 shows a 300-fold increase in specific cytotoxic (immobilizing) inhibitory activity over the starting testis pellet material.

Animals

Diagnosis of dyslipoprotein aemia by molecular sieve chromatography.

Agarose gel molecular sieve chromatography has been used as a tool in the diagnosis of dyslipoproteinaemias. The elution profile from control plasma contained three peaks, corresponding to very-low-density lipoproteins (VLDL), low-density lipoproteins (LDL), and high-density lipoproteins (HDL). These accounted for 9.5%, 23.5% and 67% of the total lipoprotein absorption at 280 nm. Elution patterns from dyslipoproteinaemic serum showed alterations, not only in peak area, but also in peak migration rate through the agarose gel. These variations were reproducible and of such magnitude as to permit the use of molecular sieve chromatography as a tool in the diagnosis of dyslipoprotein-aemias of Type I, II (a + b), III, IV and V.

Blood Protein Disorders

Purification and partial characterization of plasminogen activator from human uterine tissue.

A procedure was developed for the purification of a plasminogen activator from human uterine tissue. It involves six consecutive steps: (1) extraction of the plasminogen activator from delipidated uterine tissue with 0.3 M potassium acetate buffer, pH 4.2; (2) ammonium sulphate precipitation; (3) zinc chelate-agarose chromatography; (4) n-butyl-agarose chromatography; (5) concanavalin A-agarose chromatography; and (6) gel filtration on Sephadex G-150. The specific activity of the final plasminogen activator preparation was increased by a factor 4500 as compared with the crude extract. The purified plasminogen activator showed a strong tendency to adsorb to surfaces. This could be effectively prevented by Tween-80. The molecular weight of the plasminogen activator was 64 000 as estimated by gel filtration in 1.0 M NaCl and 69 000 as estimated by polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulphate. The plasminogen activator consisted of two chains (molecular weights 31 000 and 38 000) connected by disulphide bridges. The smallest chain contained the serine residue of the active site as deduced from the incorporation of the tritium label of [3H]diisopropylphosphofluoridate.

Binding Sites

Separation of newly-synthesized RNA by organomercurial agarose affinity chromatography.

Mouse myeloma cells, MOPC-31C, were incubated in the presence of 2-thiouridine and newly-synthesized RNA which appeared to contain 2-thioUMP as a constituent was separated from preexisting RNA by affinity chromatography using organomercurial agarose as a support. Both pH and salt concentration greatly affected the specific adsorption of the newly-synthesized RNA on the column. Under optimal conditions the rate of adsorption of the newly-synthesized RNA on the column was proportional to the logarithmic concentration of 2-thiouridine in the culture medium. Furthermore, at a given concentration of 2-thiouridine in the medium, a shorter incubation period caused a reduction of the rate of RNA adsorption on the column. The molecular size distributions of both total RNA and the adsorbed fraction, synthesized during 30 min in the presence of 2-thiouridine, were similar to that of RNA synthesized in the absence of the drug.

Cell Line

Polyacrylamide gel electrophoresis of visna virus polypeptides isolated by agarose gel chromatography.

The proteins of visna are separated into nine major peaks by agarose gel chromatography in 6 M guanidine hydrochloride (GuHCl). The polypeptides in eack peak were isolated by acid precipitation and analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE). The patterns of SDS-PAGE show that the excluded material from the GuHCl column contains an aggregate of 10 non-glycosylated polypeptides. It is shown that this aggregate represents virus substructures that are not completely solubilized by GuHCl. Two glycoproteins, gp175 and gp115, were isolated from the column eluate. The major glycoprotein gp115 was coeluted with P90, P68, and P61 in GuHCl 4. Each of the four major peaks (GuHCl 5 to 8) contains more than one nonglycosylated polypeptide. However, a small polypeptide, P12, can be isolated in a homogeneous form in the last peak, GuHCl 9. Analysis of the virus proteins (100 microgram) by SDS-PAGE shows that 20 radioactive bands can be recognized. During fractionation of the protein on agarose gel columns followed by analysis with SDS-PAGE, a number of minor polypeptides that were not detected before became clearly recognizable. Thus, the combined use of column chromatography and SDS-PAGE shows that visna virus is composed of 25 proteins.

Chromatography, Agarose

Separation of transcriptively active and inactive chromatin. Agarose gel chromatography.

Sheared chromatin fractionated by currently accepted methods of agarose gel exclusion chromatography, undergoes a limited and non-specific aggregation resulting from the high ionic strength and divalent cation concentration of the column elution buffer. Such aggregation causes the artifactual appearance of radioactively labeled, newly synthesized RNA within the column exclusion volume, erroneously suggesting an enrichment for actively transcribed chromatin. Claims for the efficacy of agarose gel exclusion as a method for separating template-active and -inactive chromatin are based largely on assays for active chromatin which rely on localization of specific molecular complexes of chromatin and nascent RNA. Under the conditions employed, the present studies invalidate this assay and thus cast considerable doubt on the agarose gel exclusion method itself.

Animals

Human plasma protein C: isolation, characterization, and mechanism of activation by alpha-thrombin.

Protein C is a vitamin K-dependent protein, which exists in bovine plasma as a precursor of a serine protease. In this study, protein C was isolated to homogeneity from human plasma by barium citrate adsorption and elution, ammonium sulfate fractionation, DEAE-Sephadex chromatography, dextran sulfate agarose chromatography, and preparative polyacrylamide gel electrophoresis. Human protein C (M(r) = 62,000) contains 23% carbohydrate and is composed of a light chain (M(r) = 21,000) and a heavy chain (M(r) = 41,000) held together by a disulfide bond(s). The light chain has an amino-terminal sequence of Ala-Asn-Ser-Phe-Leu- and the heavy chain has an aminoterminal sequence of Asp-Pro-Glu-Asp-Gln. The residues that are identical to bovine protein C are underlined. Incubation of human protein C with human alpha-thrombin at an enzyme to substrate weight ratio of 1:50 resulted in the formation of activated protein C, an enzyme with serine amidase activity. In the activation reaction, the apparent molecular weight of the heavy chain decreased from 41,000 to 40,000 as determined by gel electrophoresis in the presence of sodium dodecyl sulfate. No apparent change in the molecular weight of the light chain was observed in the activation process. The heavy chain of human activated protein C also contains the active-site serine residue as evidenced by its ability to react with radiolabeled diisopropyl fluorophosphate. Human activated protein C markedly prolongs the kaolin-cephalin clotting time of human plasma, but not that of bovine plasma. The amidolytic and anticoagulant activities of human activated protein C were completely obviated by prior incubation of the enzyme with diisopropyl fluorophosphate. These results indicate that human protein C, like its bovine counterpart, exists in plasma as a zymogen and is converted to a serine protease by limited proteolysis with attendant anticoagulant activity.

Blood Coagulation

Separation of human leukocyte interferon components by concanavalin A-agarose affinity chromatography and their characterization.

Human leukocyte interferon (HL-IF), produced by mixed leukocytes infected with Newcastle disease virus, was resolved into three distinct fractions when chromatographed on concanavalin A-agarose. The major portion (70--75%) of interferon appeared in the breakthrough (BT fraction). The bound interferon (25--30%) was displaced from the column as two peaks: the first was eluted with 0.01 M methyl alpha-D-mannoside, yielding 15-20% of the interferon activity (alpha-MM fraction), and the second by including ethylene glycol (70%) in the eluant, yielding the remaining 5--15% of the interferon (EG fraction). No interferon was retained when HL-IF produced in the presence of glycosylation inhibitors (tunicamycin or 2-deoxy-D-glucose) was chromatographed on concanavalin A-agarose, suggesting that the fraction of interferon retained by this lectin is glycosylated. The three fractions of interferon (BT, alpha-MM, and EG) were characterized by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, cross-species antiviral activity, and neutralization by specific antisera. The BT fraction contains exclusively the 16 000 molecular weight component of human leukocyte interferon. The majority of the alpha-MM fraction (90%) is the 21 000 molecular weight component. However, the EG fraction contains the 16 000 and 21 000--23 000 molecular weight components in essentially equal proportions. On the basis of cross-species antiviral activity and neutralization by specific antisera, the BT and alpha-MM fractions are leukocyte-type interferon and the EG fraction seems to be primarily of fibroblast type.

Chromatography, Affinity

Studies on deoxyribonucleases from Haemophilus influenzae on DNA agarose affinity chromatography. Two-step purification of ATP-dependent deoxyribonuclease.

In a first part of this report, purification and characterization of several nucleased from lysates of Haemophilus influenzae are described. The enzymes bind to DNA with agarose columns and are removed by elution with phosphate buffer. Among the considered enzymes, the exonucleases 1 and 3, and endonuclease, a DNA polymerase and a restriction enzyme were recovered mixed by raising the phosphate concentration from 0.1 to 0.3 M, while the ATP-dependent DNAase recovered well purified, by raising the phosphate concentration to 0.45 M. After a rechromatography, on a second DNA with agarose column, of the peak of the ATP-dependent DNAase, the specific activity tested with 3H-labeled DNA was 125 units/mg of protein, representing a 300-fold purification of the original crude extract. In a second part, we have investigated the inactivation, at various pH, of transforming DNA of Haemophilus influenzae wild strain Rd with the different eluted fractions of the column, in order to determine the importance of contamination with other enzymatic activities, and also in order to confirm the nature of theisolated enzymes with a biological method. Finally, with enzymatic extracts of mutant strain Rd com minus 56, a strain which integrates shorter than normal pieces of DNA and which is suspected to possess and "activated specific endonuclease" able to recognize even small conformational modifications in paired structures, we tried to detect this activity on artificially constructed heteroduplex regions in DNA.

Adenosine Triphosphate

[Acetate kinase chromatography on agarose derivatives].

Acetate kinase from E. coli K-12 was studied chromatographically on omega-aminoalkyl polysacharide sorbents. The dependence of the protein sorption-desorption on ionic strength and the effect of pH on the acetate kinase sorption were studied. The increase in the ionic strength caused a decrease in the amount of protein sorbed on the hexamethylenediamine- and chlorotriasinehexamethylenediamine sepharoses. On hexamethylenediamine-, octamethylenediamine- and dimethylhexamethylenediamine agaroses acetate kinase was adsorbed within the pH range of 6.5-9.0, whereas on the chlorotriasinehexamethylenediamine sepharose--at pH 6.5-8.0. The active protein was eluted at ionic strength of 0.14-0.17 M. Acetate kinase was not adsorbed on the carboxypropyonylaminohexyl sepharose within the pH range studied, i.e. 5.0-9.0 and was not adsorbed on hexamethylenediamine agarose at pH 4.0 and on chlorotriasinehexamethylenediamine sepharose--at pH 9.0. The mechanism of the enzyme-adsorbent interaction is discussed.

Acetates

A RNA-dependent RNA polymerase activity: implications for chromatin transcription experiments.

Mercurated nucleoside triphosphates have been used for transcription of chicken oviduct chromatin with E. coli RNA polymerase. The newly synthesized RNA was purified from preexisting RNA by SH-agarose chromatography and analyzed for the content of specific mRNA sequences. The apparent preferential production of ovalbumin mRNA sequences was not inhibited by actinomycin D, although total RNA synthesis was reduced by more than 90%. Furthermore, when globin mRNA alone, or added to oviduct chromatin, was incubated in the transcription assay, a significant fraction of this mRNA was retained on SH-agarose. The copurification of chromatin associated RNA with in vitro synthesized mercurated RNA was mainly due to a RNA-dependent synthesis of complementary sequences by the bacterial enzyme. Although denaturation of the transcripts prior to SH-agarose chromatography leads to a reduced contamination with endogenous ovalbumin specific RNA, we are unable to show that the messenger-specific RNA sequences purified with the newly mercurated RNA results from a DNA-dependent reaction.

Animals

Purification of the Epstein-Barr virus-determined nuclear antigen from Epstein-Barr virus-transformed human lymphoid cell lines.

The Epstein-Barr virus-determined nuclear antigen (EBNA) was purified from extracts of the human lymphoid cell lines Raji, Namalwa, and B95-8/MLD by two different methods. In the first approach, the apparently native antigen was purified 1,200-fold by a four-step procedure involving DNA-cellulose chromatography, blue dexptran-agarose chromatography, hydroxyapatite chromatography, and gel filtration, employing complement fixation as the assay procedure. Such EBNA preparations specifically inhibited the anticomplement immunofluorescence test for EBNA and bound to methanol/acetic acid-fixed metaphase chromosomes. The purified antigen, which has a molecular weight of 170,000 to 200,000, yielded a single protein band of molecular weight about 48,000 by sodium dodecyl sulfate (SDS)-polyacrylamide gel electrophoresis. These data indicate that native EBNA has a tetrameric structure. In the second purification method, EBNA-containing cell extracts containing radioactively labeled proteins were incubated with anti-EBNA-positive sera, and antigen-antibody complexes were adsorbed to matrix-bound staphylococcal protein A. The bound proteins were then released with an SDS-containing buffer, and denatured EBNA was separated from antibody chains by SDS-polyacrylamide gel electrophoresis and visualized by fluorography. The denatured EBNA obtained in radiochemically pure form by this procedure has a molecular weight of about 48,000, so both methods yield an EBNA monomer of the same size.

Antigens, Viral