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Biomedical subjects

C A Morrison

Publications and source records attributed to C A Morrison.

51 records · Page 3Linked to original sources

Comparison of the immunogenic effects of covalent-bonded immune complexes in mice and sheep.

Covalent antigen-antibody complexes containing the protein antigen ovo-transferrin primed both mice and sheep to give an enhanced antibody response to a subsequent single injection of soluble ovo-transferrin. Complexes prepared using horse, sheep or rabbit antibody had a priming effect in mice, although rabbit antibody-antigen complexes were the most effective. In sheep, only rabbit antibody-antigen complexes significantly enhanced antibody levels.

Adjuvants, Immunologic↗

Immunoregulatory effects of covalent antigen-antibody complexes. IV. Priming and tolerance in T-dependent responses.

Stable, covalently bonded, monomeric complexes of rabbit anti-NAP (4-azido-2-nitrophenyl) antibodies and NAP-bovine pancreatic ribonuclease (RNase), when injected into mice, prime the subsequent response to a soluble challenge of RNase. This effect is shown to be dependent on an intact Fc portion of the rabbit antibody and not simply due to foreign determinants recognized on the latter. A study of the kinetics of elimination of radioiodinated complexes from the serum indicates that the generation of a primary anti-rabbit IgG response and subsequent clearance of the complex leads to priming of the anti-RNase response. If mice are previously rendered tolerant to rabbit IgG or the complexes are ultracentrifuged, the priming to RNase is often abolished and tolerance may be induced.

Animals↗

Immunoregulatory effects of covalent antigen-antibody complexes. III. Enhancement or suppression depending on the time of administration of complex relative to a T-independent antigen.

The photosensitive affinity label NAP (4-azido-2-nitrophenyl) was used to make a stable covalent-bonded monomeric immune complex (Ag2Ab) between rabbit anti-NAP antibody and a bihaptenic compound containing NAP linked to fluorescein (NAP-aminocaproyl-lysyl-Fl). This complex injected into mice had marked effects on their subsequent response to fluorescein coupled to a thymus-independent carrier (Fl-ficoll). Depending on the time at which the complex was administered relative to challenge, it was possible to obtain either enhancing or suppressive effects. The enhancing but not the suppressive effect of complex was dependent on immune recognition of the rabbit IgG carrier. While the suppressive effect probably results from complex-mediated inactivation of T-independent B cells, it is suggested that the enhancing effect results from priming of the T-dependent B cells by Fl-Ficoll followed by their triggering into antibody production by rabbit IgG-specific helper cells.

Animals↗

Ventriculographic-echocardiographic correlation in patients with asynergy.

The ability of echocardiography to detect segmental ventricular asynergy was evaluated in 41 patients before cardiac catheterization. Of 24 normal posterior wall segments by echocardiography, 23 were also normal by ventriculography, while one was hypokinetic. Of 17 asynergic posterior wall segments by echocardiography, 15 were asynergic and two were normal by ventriculography. Posterior wall excursion for the normal group was 1.30 +/- 0.18 cm (SD), while those demonstrating hypokinesis on ventriculography showed an excursion of 1.05 +/- 0.19 cm (P less than .005), and akinetic segments showed an excursion of 0.97 +/- 0.13 cm (P less than .005). In 15 patients, septal motion as determined by echocardiography was compared with the left anterior oblique ventriculogram. Of nine normal septal motions by echocardiography, seven were also normal by left anterior ventriculography (septal excursion, 0.84 +/- 0.25 cm). Of six patients with decreased echocardiographic septal motion, four were normal and two were abnormal by ventriculography. Although normal echocardiographic septal motion correlated well with ventriculography, decreased septal excursion by echocardiography did not.

Cardiac Catheterization↗

Physical studies on the conformation of ribosomal protein S4 from Escherichia coli.

Proton magnetic resonance, circular dichroism and infrared spectroscopy were used to investigate the secondary and tertiary structure of the 16-S RNA binding protein S4 from Escherichia coli ribosomes. The proton magnetic resonance spectra of protein S4 in ribosomal reconstitution and low-salt buffers were identical and showed little dipolar broadening of the peaks, suggesting that the protein had an open extended structure. A ring-current-shifted apolar methyl resonance in the high-field region of the spectrum, together with a perturbation of the tyrosine ring proton resonance in the low-field region, indicated the existence of a specific tertiary fold in the polypeptide chain. This structure disappeared on lowering the pH below 5 or on heating above 30 degrees C, both processes being reversible. Circular dichroism measurements on protein S4 showed an alpha-helix content of 32% in reconstitution buffer compared with 26% in low-salt buffer. Heating the protein solution in reconstitution buffer above 35 degrees C reversibly disrupted this extra helix. Infrared studies on both solid films and solutions of protein S4 indicated the presence of little or no beta-structure. These results correlate well with the known RNA binding properties of protein S4.

Circular Dichroism↗

Accessibility of proteins in 50S ribosomal subunits of Escherichia coli to antibodies: an ultracentrifugation study.

The accessibility of each of the proteins on the 50S ribosomal subunit of Escherichia coli was investigated by establishing whether immunoglobulins (IgG), specific for each of the 34 proteins from the 50S subunit, were able to bind to the 50S subunit. The main criterion for accessibility was the formation of specific antibody-50S subunit complexes that could be detected by means of analytical ultracentrifugation. The proteins fell into two main groups. Immunoglobulins against proteins L1, L2, L3, L4, L5, L6, L7/L12, L8, L9, L10, L11, L14, L15, L16, L17, L18, L19, L20, L21, L22, L23, L25, L26, L27 and L30 gave large amounts of complex (20-100%) and, therefore, these proteins were considered to be accessible on the surface of the 50S ribosomal subunit. The antibodies against the remaining proteins L13, L24, L28, L29 and L31 to L34 produced small amounts of complexes (10-20%). Since their effects were unequivocably stronger than those obtained with IgG's from sera of non-immunized animals, the results indicate that these proteins are probably also accessible. Nonetheless, from the ultracentrifugation studies alone definite conclusions about the exposure of the latter group of proteins could not be drawn.

Antibody Specificity↗

The use of echocardiography in determination of reversible posterior wall asynergy.

Recent studies have indicated that nitroglycerin can be delineate potentially reversible asynergic zones depicted ventriculographically. To assess the ability of the echocardiogram to detect reversible asynergy, posterior wall motion was assessed in 19 patients both echocardiographically and ventriculographically before and after nitroglycerin. Thirteen of the 19 patients demonstrated abnormal posterior wall motion both by echocardiography and ventriculography while six were normal by both techniques. In 4 of the 13 asynergic areas, posterior wall excursion improved following nitroglycerin (from 0.99 +/- .07 to 1.30 +/- .07 cm. by echocarciography (p less than .025) with a corresponding improvement in hemiaxis shortening from 12.0 +/- 6.1 per cent to 29.0 +/- 6.7 per cent (p less than .02). In contrast, in nine patients in whom inferior segment hemiaxis shortening was unchanged following nitroglycerin, posterior wall excursion by echocardiography was similarly not improved (1.01 +/- .03 cm. before and 1.02 +/- .03 cm. after nitroglycerin). The effect of nitroglycerin on posterior wall velocity paralleled changes in posterior excursion. The six patients with initially normal posterior excursion showed no significant change by either echocardiography or ventriculography following nitroglycerin. Thus, the echocardiogram is of considerable value in detecting both the presence and potential for improvement of asynergic posterior wall segments.

Cardiomyopathies↗

Prediction of HIV vaccine.

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Acquired Immunodeficiency Syndrome↗