Search PubMed⌕ Search

Biomedical subjects

C R Middaugh

Publications and source records attributed to C R Middaugh.

At least 91 records · Page 5Linked to original sources

The temperature-dependent stoichiometry of mixed cryoimmunoglobulins.

The interaction of three monoclonal rheumatoid factor IgM molecules with IgG antigens has been studied utilizing immunoglobulins isolated from three mixed cryoglobulins. Static light scattering measurements show that the stoichiometry of these immune complexes changes in a temperature-dependent manner from IgM(IgG)0-2 at temperatures greater than 37 degrees C to IgM(IgG)5 complexes at temperatures below 15 degrees C. These results were confirmed by the analysis of the composition of polyethyleneglycol-precipitated complexes. For one mixed cryoglobulin (Glo), temperature-dependent changes in stoichiometry were also verified by chemical cross-linking studies. Binding constants were determined by Scatchard analysis of light scattering data and by fluorescence polarization measurements. Values on the order of 10(5) M-1 were obtained for three monoclonal rheumatoid factor IgM molecules. Glo was further investigated by dynamic light scattering and partial specific volume measurements. Both dynamic light scattering and partial specific volume measurements provided evidence for surprising shape changes of the IgM X IgG complex as a function of temperature and IgG stoichiometry. Collectively, the data support the simple hypothesis that cryoprecipitation of mixed cryoglobulins occurs as a consequence of increases in the size (stoichiometry) of the complexes that are formed at low temperatures.

Cryoglobulinemia↗

A single amino acid substitution in an ectopic alpha subunit of a human carcinoma choriogonadotropin.

Human choriogonadotropin [hCG] has two dissimilar noncovalently associated subunits, designated alpha and beta. An ectopically secreted hCG alpha subunit that fails to associate with the beta subunit and displays an anomalously high molecular weight on molecular sieve chromatography but not on sodium dodecyl sulfate-polyacrylamide gel electrophoresis has been sequenced. A single substitution of Glu56 by Ala56 has been found in the altered subunit. No evidence for conformational differences between normal and ectopic alpha could be found using circular dichroism or intrinsic fluorescence as measures of secondary and tertiary structure, respectively. Hydrophobicity profiles as determined by the method of Kyte and Doolittle (Kyte, J., and Doolittle, R. F. (1982) J. Mol. Biol. 157, 105-132) predicted, however, that the hydrophilic segment, Thr54-Ser55-Glu56-Ser57-Thr58, becomes an extension of the preceding hydrophobic segment when Glu56 is substituted with Ala. This solitary hemoglobin S-like mutation may lead to an altered tertiary structure, self dimerization, or an alteration in glycosylation that could be responsible for the ectopic alpha subunit's failure to associate with the beta subunit.

Alanine↗

Role of conformational changes in the elution of proteins from reversed-phase HPLC columns.

To test the hypothesis that conformational alterations might be involved in the elution of proteins from reversed-phase HPLC columns, the conformations of proteins bound onto a C-8 alkyl-bonded silica surface have been examined in the presence of increasing concentrations of the commonly employed eluent, 1-propanol. Using a combination of photoacoustic, diffuse reflectance deconvolution Fourier transform infrared and front face fluorescence spectroscopic techniques (to minimize interference from light scattering), the existence of surface-associated protein conformational changes induced by propanol is unequivocally demonstrated. The linear relationship found between the amount of propanol needed to elute proteins from C-8 columns and the midpoint of spectrally observed structural transitions is consistent with a role for conformational changes in the elution process.

1-Propanol↗

The effect of interchain disulfide bond cleavage on the cold induced precipitation of cryoimmunoglobulins.

Selective cleavage of the interchain disulfide bonds present in the two IgG1-kappa monoclonal cryoglobulins Ger and Muk results in a partial loss of cryoprecipitability of the parent proteins at 0 degree C. The progressive loss of cryoprecipitability which occurs as a function of increasing reductant concentration parallels the successive cleavage of interheavy-light and interheavy-heavy chain disulfides. Circular dichroism shows that reduction and alkylation of hinge region disulfides induces small conformational changes in the IgG molecules that could alter cryoprecipitability. The N-terminal amino acid sequence of the Fc component derived by restricted proteolysis with trypsin of protein Muk was found to be completely homologous with N-terminal Fc sequences of noncryoglobulin IgG reference proteins, indicating identical hinge regions. Reduction and alkylation of two monoclonal IgM cryoglobulins also reduces cryoprecipitability. After reduction and alkylation of either the monoclonal IgM rheumatoid factor or the polyclonal IgG component of two mixed cryoglobulins recombination results in decreased cryoprecipitation of the intact cryoglobulin complex. In all cases inhibition of cryoprecipitation is greater when iodoacetic acid rather than iodoacetamide is employed as the S-alkylating group. These results do not support a direct role for the hinge region in the precipitation of cryoimmunoglobulins.

Alkylation↗

Aggregation state of the gonadotropin receptor.

The aggregation state of the gonadotropin receptor has been examined by coupling fluorescence energy transfer donor and acceptor fluorophores to hCG and LH. Energy transfer is observed at low (4 degrees C) but not at high (37 degrees C) temperature. Energy transfer could also be detected with receptor solubilized in the presence of hormone at the lower temperature only. Solubilization of receptor in the absence of hormone and subsequent addition of hormone conjugates revealed no energy transfer. These results are consistent with stabilization of receptor complexes at low temperatures, but presumptive hormone induced receptor dissociation under physiological conditions.

Chemical Phenomena↗

Effects of an extremely low frequency electromagnetic field on the cell division rate and plasma membrane of Paramecium tetraurelia.

The eukaryotic protozoan, Paramecium, was examined as a model for effects of pulsated electromagnetic fields (PEMF) on cells. A 72-Hz PEMF similar to fields employed clinically increased cell division rates in Paramecium by 8.5%. Two calcium transport mutants of these organisms showed differential responses to the same field. Verapamil, a calcium channel blocker, abolished any effect of PEMFs on cell division rates. A fluorescent probe that is thought to sense changes in membrane potential also manifested an altered response in the PEMF-exposed cells whereas a fluorescent lipid bilayer fluidity probe produced evidence of decreased membrane fluidity in the exposed cells. An effect of PEMFs on ion transport mediated by either a direct or indirect effect on the cell membrane is suggested by these studies.

Animals↗

Entropic DNA.

The presence of mobile genetic elements without apparent biological function within genomes requires explanation. It is argued that consideration of DNA as an open thermodynamic system leads to the simple hypothesis that mobile genetic material increases the internal entropy thereby lowering the free energy of the DNA relative to DNA of the same size. This phenomenon enhances the survival of such sequences by simple structural stabilization. The consequences of this idea are discussed in terms of the proposed Bekenstein limit to the entropy to energy ratio of thermodynamic systems and biological entropy/information flow.

Animals↗

Protein conformation and reversed-phase high-performance liquid chromatography.

The structure of a series of proteins has been investigated by circular dichroism, fluorescence and visible spectroscopy as well as by differential scanning calorimetry under reversed-phase high-performance liquid chromatography elution conditions. These studies show that 1-propanol, a typical eluent, induces a reversible conformational change in proteins to an apparently ordered, helical form. This structural transition occurs in the range of propanol concentrations that produces elution of a particular protein. The possible relationship between this conformational change and protein elution is considered.

1-Propanol↗

A simple experimental model for hydrophobic interactions in proteins.

The compound N-cyclohexyl-2-pyrrolidone contains a substantial apolar region as well as a peptide bond-like moiety. This solvent, therefore, provides a useful model for protein interiors. Under certain conditions of temperature and salt concentration, cyclohexylpyrrolidone forms a two-phase system with water. This permits partition coefficients and subsequent free energies of transfer of amino acid side chains from cyclohexylpyrrolidone to water to be simply determined. Free energies of transfer measured in this manner for 21 amino acids are found to be substantially less than those obtained from the commonly used ethanol/water solubility model. This suggests less of a contribution of hydrophobic interactions to the stabilization of protein structure than is conventionally assumed.

Amino Acids↗

Near-infrared photoacoustic spectroscopy of proteins.

A major problem encountered with the use of electronic spectroscopy in the analysis of biological materials in the ultraviolet, visible, and infrared region involves the limited range of the physical state of samples that can be examined. In an attempt to expand this range, photoacoustic spectra of both solid- and solution-state proteins have been obtained in the near-infrared region. Solid proteins generate detailed spectra in the region 1.0-2.6 micron, resulting primarily from hydrogenic overtone and combinational modes. Harmonics and combinations of amide group frequencies which display significant spectral complexity are observed between 1.4 and 1.7 micron, although they appear to manifest only limited conformational sensitivity. Solution spectra in D2O are of much lower resolution. Assignments of peaks for both solution- and solid-state proteins are presented and the advantages and disadvantages of the use of near-infrared photoacoustic spectroscopy with proteins are discussed.

Amino Acids↗

Chemical crosslinking of cell membranes.

The complexity of cell membranes makes the resolution of their macromolecular topology one of the more challenging problems in modern molecular and cellular biochemistry. Despite the difficulties inherent in any such analysis, a surprisingly simple yet powerful approach exists that has consistently yielded valuable results. This method is chemical crosslinking, in which cell membranes are treated with crosslinking reagents (usually bifunctional) which produce covalent linkages between membrane components. The resultant complexes are usually then separated and identified by electrophoresis. This review is intended to provide a guide to the investigator who is unfamiliar with this approach. The overall strategy of crosslinking is discussed including selection of reagents, conditions to optimize crosslinking and the cleavage of crosslinked complexes to regenerate the original target for identification purposes. The crosslinking of biological membranes is then reviewed with special emphasis on recent advances including macromolecular photoaffinity labeling, kinetic analysis to probe symmetry properties and potential artifacts that may complicate interpretation of results. Examples of specific applications of crosslinking to membranes are presented in tabular form. The final portion of the review discusses the synthesis and properties of the most widely employed crosslinking reagents. Available reagents are summarized in a series of comprehensive tables. It is hoped that our discussion will provide the uninitiated investigator with sufficient information to ascertain the applicability of chemical crosslinking to particular areas of interest.

Affinity Labels↗

The solubility of bovine lens crystallins.

Apparent thermodynamic parameters for the process of solubilization of the five major classes of bovine lens crystallins have been determined by the polyethylene glycol solubility method. Although each purified crystallin fraction displays significant structural heterogeneity as analyzed by high performance liquid chromatography, they behave as homogeneous proteins by the criteria of solubility. Using experimentally determined values for the apparent enthalpy and entropy of solution and the effects of a variety of low molecular weight solutes on crystallin solubility, the five classes can be arranged in order of the polarity of their solid phase intermolecular contacts as follows: gamma, high molecular weight beta greater than low molecular weight beta greater than high molecular weight alpha greater than alpha. Since alpha-crystallin is the major component of the insoluble material in bovine cataract, we suggest that cataract formation may be related to the intrinsic solubility and polarity of the lens crystallins.

Animals↗

Molecular basis for the temperature-dependent insolubility of cryoglobulins. XII. Anomalous mobility of monoclonal cryoimmunoglobulin heavy chains accompanying polyacrylamide gel electrophoresis in sodium dodecyl sulfate.

When subjected to polyacrylamide gel electrophoresis in sodium dodecyl sulfate (SDS), the fully reduced and alkylated heavy chains isolated from three monoclonal IgG1 cryoimmunoglobulins exhibited various degrees of retardation in mobility when compared to noncryoglobulin references. The anomalous electrophoretic mobility was not correlated with the thermal magnitude of cryoprecipitation of the individual proteins. High sensitivity analytical gel filtration in 5 M guanidine-HCl failed to distinguish heavy chains of the cryoimmunoglobulins from noncryoglobulin references, suggesting that the proteins possess equivalent molecular weights. Other possible causes for the anomalous mobility such as atypical amino acid and carbohydrate composition, charge and quantitative SDS binding do not appear to be likely. It remains possible that the shape and/or charge of the SDS-protein complexes are unique. Examination of the gel electrophoretic mobility in SDS of fully reduced and alkylated Fab components suggests that the Fd portion of these proteins may be abnormal. The gel electrophoresis anomaly is the only atypical structural feature thus detected which is shared by these three monoclonal cryoimmunoglobulins.

Amino Acids↗

Does random collisional cross-linking occur?

In fluid membranes, mobile molecules are thought to collide at high frequencies. Concern has been expressed as to whether these colliding molecules are cross-linking during the chemical cross-linking of membrane molecules, thereby creating problems in interpreting such experiments. Hemoglobin was used as a model to test this possibility. Oligomers larger than the tetramer could be cross-linked depending on factors such as hemoglobin concentration, duration of the cross-linking reaction and the type of reagent. Under certain conditions, however, such as a hemoglobin concentration less than 150 microM or a duration of cross-linking shorter than 15 min, larger oligomers were not detectable. Analysis of these data suggests that the probability of random collisional cross-links under normal conditions is insignificant.

Chemical Phenomena↗

Polyphasic linkage between protein solubility and ligand binding in the hemoglobin-polyethylene glycol system.

Dilute hemoglobin A, hemoglobin S, and horse hemoglobins can be made to precipitate by addition of polyethylene glycol (PEG). PEG itself has no effect on the oxygen affinity of the soluble hemoglobin. In the resulting two-phase system the amount of precipitation is dependent on the oxygen saturation and, conversely, thw two-phase mixtures exhibit altered oxygen affinity such as is seen with gelled hemoglobin S. A decreased oxygen affinity results when the deoxy form is the less soluble as in the case of hemoglobin A or S. When the oxy form is the less soluble, as in the case of horse hemoglobin, an affinity increase results. These reciprocal shifts in solubility and oxygen affinity are seen as thermodynamically linked processes, independent of solid phase structure. However, the structure, as seen by electron microscopy, reveals that deoxyhemoglobin S gelled in the absence of PEG is identical with deoxyhemoglobin S solid phase formed in the presence of PEG.

Animals↗

Thermodynamic basis for the abnormal solubility of monoclonal cryoimmunoglobulins.

The thermodynamics of both normal and abnormal (disease-associated) protein solubility has been examined. It is shown that the atypical behavior of monoclonal cryoimmunoglobulins can be explained by the formation of one or a few additional electrostatic contacts or, less frequently, a larger number of van der Waals interactions in the protein-rich solid phase relative to normal immunoglobulin. It is hypothesized that cryoimmunoglobulins represent the outer edge of the solubility distribution of total serum immunoglobulin.

Animals↗