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Characterization of alpha-1-antitrypsin by isoelectric focusing on an ultrathin polyacrylamide gel layer. An economic high-resolution system for determining PiM subtypes.

Through the use of ultrathin layer polyacrylamide gel isoelectric focusing it is possible to obtain a resolution of the bands of alpha 1AT so as to be able to easily recognize all six PiM subtypes. The optimal resolution of the PiM subtypes is obtained without deforming the pattern of the Pi phenotypes. In addition to high resolution, ultrathin layer polyacrylamide gel isoelectric focusing permits a notable reduction of fees to 1/5 of the usual.

Adult

Synthesis of highly diversified carrier ampholytes. Evaluation of the resolving power of isoelectric focusing in the Pi system (alpha-1-antitrypsin genetic polymorphism).

The use of condensing reagents such as epoxypropanol, diepoxyoctane, acrylamide and N,N'-methylenebisacrylamide in the synthesis of carrier ampholytes increased the diversity of amphoteric components. The quality of these synthetic carrier ampholytes has been tested in the separation of variants of alpha-1-anti-trypsin, a genetic polymorphism called the Pi system. A resolving power of the order of 0.005 pH unit was obtained.

Ampholyte Mixtures

Isoelectric focusing of cells using zwitterionic buffers.

A simple method of isoelectric focusing of cells is described. The pH gradient, superimposed on a density gradient, is developed by generating opposing concentration gradients of two zwitterionic buffers. The method can be used as a cell separation technique or as a means of characterizing the cell type on the basis of the focusing pH. Focusing is rapid and thus the method is of special advantage in its application to cells.

Ampholyte Mixtures

Characterization of synthetic carrier ampholytes for isoelectric focusing.

The synthesis of carrier ampholytes suitable for isoelectric focusing is described. The mixture of hexamethylenetetramine (HMTA), triethylenetetramine (TETA), tetraethylenepentamine (TEPA) and pentaethylenehexamine (PEHA) ampholytes closely resembles commercial Ampholine, and covers the pH range 3-9.5. We have been able to detect focused ampholytes in a gel slab, taking advantage of their different refractive indices, and to assess their relative amounts along the pH gradient. PEHA ampholytes contain up to 20% of chromophoric structures, with two UV peaks at 368 and 315 nm, in a pH-dependent equilibrium, associated with a very weak nitrogen function having a pK of 1.1. This could be the pK6 of the last amino group in PEHA. However, NMR spectra failed to reveal any nitrogen heterocyclic structure formed during the synthesis. This mixture of ampholytes exhibits good conductivity, produces smooth pH gradients and allows sharp protein separations in the pH range 3-9.5. Their synthesis is very easy and their cost is extremely low. Their availability sould make feasible large-scale preparative isoelectric focusing, and attract more interest to continuous-flow techniques, where large amounts of ampholytes are required.

Chemical Phenomena

Evidence against the occurrence of artifacts due to carrier ampholyte-protein binding during isoelectric focusing.

The formation of irreversible complexes between carrier ampholyte components and proteins was investigated by gel filtration of mixtures of proteins and radioactively labelled ampholytes. Experiments were performed both with purified proteins (albumin, ferritin, beta-glucuronidase) and with a complex mixture of proteins (serum); in no case was binding of ampholytes to proteins detected. Thus the results argue against the occurrence in isoelectric focusing of proteins of artifacts due to such complex formation.

Albumins

[Counter-flow isotachophoresis on cellulose acetate membranes. Role of electroendosmosis].

A variant of counter-flow isotachophoresis of proteins on cellulose acetate membranes is proposed. The liquid counter-flow is created by electroendosmosis in the membrane. Proteins are concentrated at the Kolrausch boundary during isotachophoresis in the presence of ampholytes. The method permits one to make microanalysis of proteinic mixtures in diluted solutions, and it can be used in combination with immunodiffusion and immunoelectrophoretic methods of antigenic protein detection.

Antigens

Artifacts in isoelectric focusing of the microsomal enzymes cytochrome P-450 and NADPH-cytochrome P-450 reductase.

Highly-purified rat liver microsomal cytochrome P-450 and NADPH-cytochrome P-450 reductase (NADPH-ferricytochrome oxidoreductase, EC 1.6.2.4) preparations gave rise to a large number of bands under a variety of isoelectric focusing conditions, as observed after staining for either zymogen or protein. The binding patterns were not independent of sample concentration and position of application, and eluted bands did not refocus as expected. The artifactual heterogeneity is attributed to strong protein-protein interactions and perhaps to complexation of proteins with carrier ampholytes. These findings suggest caution in using isoelectric focusing to resolve mixtures of membrane proteins.

Animals

Isoelectric focusing of heparin. Evidence for complexing with carrier ampholytes.

The basis for heparin fractionation into 21 components by isoelectric focusing has been shown to be a strong interaction between the polysaccharide and different amphoteric species in the Ampholine mixture. This was demonstrated by altering the heparin/Ampholine ratio, by loading the sample either before focusing or to a prefocused gel slab and by re-running single heparin bands. The complexes exhibiting apparent pI values in the pH range 3.2--4.5 appear to be particularly stable, probably because an optimal amount of amino groups (4 to 5) in the Ampholine molecules are protonated. When stained with Toluidine blue, the heparin/Ampholine complexes precipitated in the gel exhibited different degrees of metachromasia, reflecting competition of the dye and individual components of Ampholine with respect to binding sites of heparin: at least three colours, violet, blue and indigo, are distinguishable. Ampholine, when added to a heparin . Toluidine blue complex in solution displaces the dye from the polysaccharide.

Animals

Isoelectric focusing in layers of granulated gels. II. Preparative isoelectric focusing.

A method for preparative isoelectric focusing of 0.1-10 g amounts of proteins is described. For anticonvective stabilization of the pH gradient, layers of granulated gels (E.G. Sephadex or Bio-Gel) of variable length, width and thickness were used either on glass plates or in troughs. Load capacity, defined as the amount of protein per ml gel suspension, was determined to be 5-10 mg per ml for total protein, irrespective of the pH range of the carrier ampholytes. For single proteins load capacities of 0.25-1 mg per ml were found for pH 3-10 carrier ampholytes, and 2-4 mg per ml for narrow pH range ampholytes. Experiments on a quartz plate followed by densitometric evaluation in situ at 280 nm have demonstrated that it is possible to proceed from analytical thin-layer isoelectric focusing to preparative separations without loss of resolution, just by changing the dimension of the gel layer and increasing the protein load. Improved resolution which facilitates isolation of isoelectrically homegenious components could be achieved on a 40 cm long separation distance. The geometry of a layer is favourable to heat dissipation and this permits the use of high voltage gradients. Recovery of the focused proteins is high an elution simple. The efficiency of the method is illustrated by examples showing separations of single proteins and protein mixtures.

Gels

Enhanced solubility of 2,8 dihydroxyadenine (DOA) in human urine.

Water solubility of the adenine catabolite 2,8 dihydroxyadenine (DOA) frequently forms the basis for predicting potential DOA crystal formation in human urine following infusion of adenine-fortified blood. Measurements relevant to solubility, ionic dissociation, and supersaturability of DOA in aqueous buffers and human urine at 37 C establish striking quantitative differences in the physico-chemical behavior of DOA in the two media. The basal solubility of DOA is 1.53 +/- 0.04 mg/1 (approximately 9 X 10(-6) M) in water (pH 6.5). DOA is an ampholyte characterized by aqueous thermodynamic macrodissociation constants of pKa1 = 2.6, pKa2 = 8.1, and pKa3 = 11.52. This compound displays pH-dependent solubility, although significant solubility increases beyond basal values do not occur within the physiologic pH range for human urine. Supersaturated aqueous solutions (three to sixteen times basal solubility) can be achieved but are unstable. In contrast, human urine at 37 C exhibits enhanced capacity for solubilizing DOA. In vitro basal solubility is 2.68 +/- 0.84 mg/1 at pH 5.0 and 4.97 +/- 1.49 mg/1 at pH 7.8. The apparent pK 2for DOA in urine of 7.9 to 8.1 is dependent upon urine osmolality. Urine can be supersaturated with Doa in vitro to approximately ten times its basal solubility by adding DOA solubilized in weak base, or by evaporation of a urine-DOA mixture. DOA remains supersaturated in urine for at least 16 hours despite gentle agitation. Little variation in in vitro DOA apparent supersaturation was found among urine samples from four normal individuals (40.38 +/- 3.33 mg/1). A patient receiving oral adenine exhibited urinary DOA solubility in considerable excess (96.0 mg/1) of that predicted from water and from in vitro urine solubility studies. Thus, water solubility of DOA is poorly predictive of in vitro and in vivo DOA solubility in human urine. On the basis of these data, estimates of the load of adenine-fortified blood expected to result in urinary DOA crystal formation may be revised upward.

Adenine