PubMed HealthSearch

Biomedical subjects

N P Møller

Publications and source records attributed to N P Møller.

5 recordsLinked to original sources

Identification of determinants that confer ligand specificity on the insulin receptor.

We have previously shown, using truncated soluble recombinant receptors, that substituting the 62 N-terminal amino acids of the alpha subunit from the insulin-like growth factor I receptor (IGFIR) with the corresponding 68 amino acids from the insulin receptor (IR) results in a chimeric receptor with an approximately 200-fold increase in affinity for insulin and only a 5-fold decrease in insulin-like growth factor I (IGFI) affinity (Kjeldsen, T., Andersen, A. S., Wiberg, F. C., Rasmussen, J. S., Schäffer, L., Balschmidt, P., Møller, K. B., and Møller, N. P. H. (1991) Proc. Natl. Acad. Sci. U.S.A. 88, 4404-4408). We demonstrate that these 68 N-terminal amino acids of the IR also confer insulin affinity on the intact IGFI holoreceptor both in the membrane-bound state and when solubilized by Triton X-100. Furthermore, this domain can be subdivided into two regions (amino acids 1-27 and 28-68 of the IR alpha subunit) that, when replacing the corresponding IGFIR sequences, increases the insulin affinity of truncated soluble receptor chimeras 8- and 20-fold, respectively, with only minor effects on the IGFI affinity. Within the latter of these two regions, we found that amino acids 38-68 of the IR, representing 13 amino acid differences from IGFIR, confer the same 20-fold increase in insulin affinity on the IGFIR. Finally, the amino acids from position 42 to 50 are not responsible for this increase in insulin affinity. We thus propose that at least two determinants within the 68 N-terminal amino acids of the insulin receptor are involved in defining the ligand specificity of the insulin receptor, and that one or a combination of the remaining seven amino acid differences between position 38 and 68 are involved in conferring insulin affinity on the insulin receptor.

Amino Acid Sequence

Fc-mediated immune precipitation. I. A new role of the Fc-portion of IgG.

By comparing the amounts of precipitate formed by the reaction between human serum albumin (HSA) and isomolar solutions of rabbit anti-HSA F(ab')2 fragments and of the corresponding intact rabbit anti-HSA IgG, respectively, it was found that the Fc portion of IgG was of great importance for the precipitin reaction. In the present antigen-antibody system, about half of the antigen was precipitated by this mechanism. This effect was called Fc-mediated precipitation and was most clearly expressed in the biologically important zone of low antigen excess and the zone of equivalence. It was found that the pepsin digestion did not change the ability of the F(ab')2 fragments to bind the antigen in comparison to intact IgG. Furthermore, turbidimetric analyses indicated that the Fc portion was involved in the overall mechanism of the precipitin reaction throughout the range of the precipitin curve.

Animals

Fc-mediated immune precipitation. II. Analysis of precipitating immune complexes by rate-zonal ultracentrifugation.

The formation of immune complexes was studied by analytical rate-zonal ultracentrifugation using isomolar solutions of rabbit anti-human serum albumin IgG and of the corresponding F(ab')2 fragments. The F(ab')2 fragments retained full ability to react with the antigenic determinants and to form genuine antigen-antibody complexes. Thus, the difference between the IgG and the F(ab')2 systems was supposed solely to reflect the lack of the Fc portion. The complexes formed with F(ab')2 fragments in the zone of low and moderate antigen excess were found to be distinctively mor soluble than those formed with intact IgG. The data indicated that there were two kinds of precipitating immune complexes, namely antibody-rich and antigen-rich complexes. In the antibody-excess zone and the first part of the equivalence zone the immune complexes precipitated due to their antibody richness. Antigen-rich complexes formed in the zone of low antigen excess precipitate only in the presence of antibody-rich insoluble complexes. It is believed that this type of precipitation was due to an Fc-Fc interaction. This new function of the Fc portion of IgG was designated Fc-mediated immune precipitation.

Animals

The properties of immune complex-forming systems. A new theoretical approach.

A new mathematical model for antigen-antibody interactions has been developed. The new model is based on the assumption that the formation of complexes between a bivalent antibody and a multivalent antigen is determined thermodynamically by the concentrations and valences of antigen as well as antibody, together with one association constant which is common to all mutual interactions. Formulae have been derived for calculation of the distributions of compositionally different antigen-antibody complexes either from knowledge of equilibrium concentrations of free antigen and antibody, or from knowledge of total amounts of antigen and antibody in the system. A computer program for these calculation is described. The model is found to yield precise predictions of the formation of soluble immune complexes, as studied by zonal centrifugation. It is found through use of the model that 'complex formation' as such differs in binding characteristics from adsorption, especially for high concentrations of antigens and antibodies. 'Complex formation' implies that association constants estimated through a Sips plot method will vary with antibody concentration, and that certain curvatures of the lines in a Sips plot reflect inherent properties of complex-forming systems.

Antigen-Antibody Complex