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J Janatova

Publications and source records attributed to J Janatova.

30 records · Page 2Linked to original sources

Rapid optimization of immunoadsorbent characteristics.

Immunoaffinity chromatography is employed in many research areas. We have developed an assay system that overcomes some of the tediousness and uncertainty in dealing with immunoadsorbents (IA). The preparation of IA and the effect of various procedures on the dissociation of antigen-antibody complex and the regeneration of IA are rapidly screened by polyacrylamide-gel electrophoresis in the presence of sodium dodecyl sulphate. Non-covalently bound proteins are dissociated and separated during the electrophoresis from IA beads. A wide variety of associative and dissociative conditions can be tested on small amounts of IA. Information about biospecifially and non-biospecifically adsorbed proteins can also be obtained. By using relatively small volumes of media containing either an antigen or another biospecific molecule, the optimal parameters for affinity chromatography (specificity, binding capacity, efficiency of solvents in dissociation of the complex and their effect on the adsorbent), or even for ion-exchange chromatography, can be determined without first performing several time- and material-consuming chromatographic experiments.

Antigen-Antibody Complex↗

Defective binding of the third component of complement (C3) to Streptococcus pneumoniae in multiple myeloma.

Patients with multiple myeloma (MM) are at an increased risk for infections with bacteria that require opsonization with complement. Because Streptococcus pneumoniae is the most frequently encountered pathogen in these patients, we investigated the ability of serum from patients with MM to mediate the binding of C3b, the major opsonin of the complement system, to S. pneumoniae. S. pneumoniae types 3, 14, and 25 were chosen for study, since S. pneumoniae type 3 activates primarily the classical complement pathway (CCP), type 25 primarily the alternative complement pathway (ACP), and type 14 both pathways. S. pneumoniae were treated with normal serum or serum from 17 patients with MM, and the bound C3b was quantified with fluorescein-conjugated anti-C3 in a spectrophotofluorometric assay. Despite normal or elevated serum concentrations of C3, total hemolytic complement, and C-reactive protein in all of the MM sera, factor B in 16/17 such sera, and C4 in 14/17 MM sera studied, all 17 sera demonstrated a defect in C3b binding to type 3 (32.7% +/- 6% of normal). In addition, serum from 15/17 patients bound decreased amounts of C3b to types 14 (39.6% +/- 8%) and 25 (52.2% +/- 8%). Mixing normal serum with MM serum restored MM C3b binding activity to all three S. pneumoniae types, suggesting that the defect was related to a deficiency rather than an inhibitor of C3 activation. Although MM patients are unable to produce specific antibodies to bacterial antigens, the addition of anti-S. pneumoniae antibodies to MM serum did not enhance C3b binding to any of the S. pneumoniae types. However, when S. pneumoniae were opsonized in a mixture of MM serum and C3-depleted normal serum, C3b binding was restored to all three S. pneumoniae types, demonstrating that MM C3 functions normally in the presence of other normal serum factors. In the present studies, the MM C3b binding defect appeared to correlate with the incidence of S. pneumoniae infections. Serum from patients with a history of an S. pneumoniae infection bound significantly less C3 (20.5% +/- 4%) than those study patients without a history of an S. pneumoniae infection (55.8% +/- 8%) (p less than 0.0025). Thus, MM serum has a defect in the activation of C3, and this may contribute to the increased susceptibility of MM patients to S. pneumoniae infections.

Complement C3↗

Third component of human complement: localization of the internal thiolester bond.

Human complement protein C3 was inactivated by using methylamine and thereby generating a SH group from the internal thiol ester. The protein was coupled via this SH group to activated thiol-Sepharose and digested with elastase. Fragment C3d remained attached to the thiol-Sepharose and was subsequently eluted with L-cysteine. Concomitantly, the original SH group was regenerated, and it was then labeled with iodo[2-(3)H]acetic acid. Partial sequence analysis of the radiolabeled C3d fragment showed that both components of the thiol ester are located close to the amino terminus (residues 23 and 26). Specific chemical cleavage of the alpha-chain was achieved after S-cyanylation of the thiol. The two fragments obtained corresponded to the amino-terminal section (M(r) approximately 46,000) and the carboxy-terminal section (M(r) approximately 70,000). These results together indicate that fragment C3d occupies approximately positions 345-610 of the alpha-chain. The partial sequence of C3d was extended by completion of the sequence of a previously described tryptic peptide. Comparison of residues 1-49 of C3d with a peptide from alpha(2)-macroglobulin [Swenson, R. P. & Howard, J. B. (1980) J. Biol. Chem. 255, 8087-8091] shows a previously recognized identity of seven residues around the thiol ester site and a second region of identity around a known glycosylation site of alpha(2)-macroglobulin. The relationships among these proteins and protein C4 are discussed. An overall outline of the structure of C3 is presented, showing the locations of various fragments and cleavage sites. The thiol ester group places constraints on the local folding of the peptide chain; a possible conformation is suggested and discussed in relation to the mechanism of activation.

Amino Acid Sequence↗

The effects of radioiodination and fluorescent labelling on albumin.

The preparation and characterization of fluorescamine -, fluorescein isothiocyanate (FITC) -, and radioiodine-labelled bovine serum albumin is critically evaluated. Electrophoretic mobility and ion-exchange chromatography, together with measures of degree of conjugation and sulfhydryl content, are used to assess the changes due to conjugation. Fluorescamine labelling results in drastic changes in chromatographic behavior and electrophoretic mobility. FITC labelling also results in significant changes in chromatographic and electrophoretic properties. Radioiodination leads to minor changes in chromatographic properties and oxydation of sulfhydryl groups, with little or no change in electrophoretic properties. All three labels have some degree of lability and show increased levels of free label with time, even after extensive initial purification. It is concluded that the two fluorescent labels and possibly the radioiodine labelling method used here are unsuitable for certain studies of BSA, such as its adsorption at solid-liquid interfaces.

Chemical Phenomena↗

Third component of human complement: appearance of a sulfhydryl group following chemical or enzymatic inactivation.

Treatment of human C3 with hydroxylamine or hydrazine at physiological pH and ionic strength totally abrogates the intrinsic ability of this protein to sustain classical pathway induced hemolysis of sheep red blood cells. Concomitant with the loss of this function the appearance of a single sulfhydryl group can be followed by titration with the sulfhydryl-specific reagents p-(chloromercuri)benzoate, [1-14C]iodoacetamide, 2,2'-dipyridyl disulfide, and 5,5'-dithiobis(2-nitrobenzoic acid). These reagents have also been used to follow the appearance of a free sulfhydryl group on conversion of C3 to C3b with bovine trypsin. Autoradiography of the electrophoretogram of separated alpha-, alpha'-, and beta-polypeptide chains of inactivated, [1-14C]carboxamidomethylated C3 samples has shown that the reactive sulfhydryl group is present in the alpha chain of C3 and in the alpha' chain of C3b, respectively. Digestion of the radiolabeled protein with porcine elastase has localized this sulfhydryl group to a 28 000-dalton fragment of the alpha chain with immunochemical and functional reactivities of the C3d domain. Autoradiographic analysis of a hydrolysate prepared from radioalkylated C3 and subjected to high-voltage paper electrophoresis has shown the labeled amino acid to be [1-14C]-S-(carboxymethyl)cysteine. The susceptibility of native C3 to rapid and irreversible inactivation by nitrogen nucleophiles with the parallel appearance of a cysteinyl residue may indicate the presence of an internal thiol ester. The relationship of the proposed thiol ester to the ability of nascent C3b to acylate cell surface components and carbohydrate polymers is discussed within the context of a transesterification reaction.

Chloromercuribenzoates↗

Evidence for presence of an internal thiolester bond in third component of human complement.

Treatment of the third component of human complement (C3) with methylamine results in a loss of hemolytic function and the appearance of a thiol group. Studies with [14C]methylamine have indicatd a stoichiometric and covalent reaction with the native protein. Hydrazine-inactivated C3 and C3b prepared with bovine trypsin were unreactive with [14C]-methylamine. Alkylation experiments with [1-14C]iodoacetamide have further established a 1:1 correspondence between methylamine incorporation and expression of the reactive thiol. Autoradiographic analyses of [14C]methylamine-treated C3 and methylamine-inactivated [1-14C]carboxyamidomethylated C3 after NaDodSO4/polyacrylamide gel electrophoresis have shown a specific incorporation of each radiolabel into the alpha polypeptide chain. [14C]Methylamine-treated C3 was immobilized on Sepharose 4B by reaction of the protein thiol with a mixed disulfide. Digestion with bovine trypsin in 4 M urea released 96% of the bound absorbance (at 280 nm) units; the radiolabel remained associated with the Sepharose beads. Peptide material labeled with 14C was eluted with dithiothreitol, carboxymethylated with [3H]iodoacetic acid, and chromatographed on Sephadex G-75. On Edman degradation S-[3H]carboxymethylcysteine was released at step 9 and gamma-glutamyl[14C]-methylamide was released at step 12. We interpret these data to indicate the presence of an internal thiolester bond in native C3. In addition, evidence is presented for an identical reactive site in alpha 2-macroglobulin.

Amino Acids↗

An analysis of the heterogeneity of albumin.

A simple and rapid procedure for characterization of serum albumin samples and for the isolation of fractions from fresh serum or commercial sources has been developed, based on DEAE Sepharose CL-6B ion exchange chromatography. Characterization of the fractions included sulfhydryl analysis, gel electrophoresis, and immunoelectrophoresis. Both analytical and preparative procedures were used. It has been shown that the relative content of the fractions varies from individual to individual. It has also been shown that certain fractions found in commercial preparations are artifacts which should be removed before performing serious studies with serum albumin.

Animals↗

Activation and control of complement, inflammation, and infection associated with the use of biomedical polymers.

It is generally acknowledged that artificial biomaterials are much less immunologically active than transplants or tissue derived biomaterials. However, activation of both the coagulation cascade and the complement system is a common occurrence when human blood is exposed to biomaterial surfaces during extracorporeal procedures, such as renal hemodialysis or cardiopulmonary bypass. Both individual and collective activation of these cascades often produce local and systemic effects. A number of complement activation products function as the mediators of inflammation. They serve as ligands for specific receptors on polymorphonuclear leukocytes, monocytes, macrophages, mast cells, and other cells. Such an interaction leads to induction of cellular responses in adhered cells, including release of oxidative products, lysosomal enzymes, or both, which often contribute to a number of pathologic conditions. Most pathogens invading the human body are attacked by the immune system directly following entry, especially when they are in contact with blood. However, bacteria and parasites have developed a large number of specific strategies to overcome immune defense among others by avoiding either recognition or eradication by complement. In this aspect, of concern are several microorganisms responsible for formation of antibiotic resistant biofilms on biomaterial surfaces, namely Staphylococcus epidermidis, Staphylococcus aureus, and Pseudomonas aeruginosa.

Biocompatible Materials↗