Search PubMedSearch

PubMed · 2738121

Affinity separation with polyaldehyde microsphere beads.

Abstract

Agarose polyaldehyde microsphere beads were prepared by encapsulating polyaldehyde microspheres of various diameters, e.g., polyacrolein or polyglutaraldehyde microspheres, within agarose beads. Amino ligands such as proteins or drugs can be bound covalently to the beads in a single step at physiological pH. The binding capacity of the beads towards various amino ligands is inversely related to the diameter of the microspheres encapsulated in the agarose matrix. Different reagents, e.g., bovine serum albumin, ethanolamine and hydroxylamine, were studied as blocking reagents of the free aldehyde groups. Blocking the remaining aldehyde groups after coupling the amino ligands to the beads is essential for increasing or retaining the reactivity of the ligands conjugated to the beads. Among the reagent studied, hydroxylamine was found to be the most suitable blocking reagent of the free aldehyde groups of beads conjugated with proteins. The extent of leakage of amino ligands bound to the agarose-polyaldehyde microsphere beads was studied as a function of the pH of aqueous solutions of the beads. At physiological pH the leakage was negligible. At acid pH, leakage of ligands containing several primary amine groups, e.g., proteins, was insignificant. However, significant leakage was detected for ligands containing a single amino group. The leakage of proteins bound to the agarose-polyaldehyde microsphere beads was found to be much less than the leakage of the same proteins bound to agarose beads through the cyanogen bromide activation method.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

S Margel. 1989-01-13. Affinity separation with polyaldehyde microsphere beads.. https://doi.org/10.1016/s0021-9673(00)91346-3

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Effects of the presence of an aldehydic abasic site on the thermal stability and rates of helix opening and closing of duplex DNA.

The presence of an abasic site in duplex DNA lowers the thermodynamic stability, as monitored by the optical melting temperature, and decreases the rate of imino proton exchange with water, by about an order of magnitude, as monitored by direct measurement of both the exchange lifetimes and the imino proton T1S. The exchange lifetimes of the imino protons with water as a function of base catalyst concentration were analyzed to determine the origin of the effect of the abasic site on imino exchange lifetimes. Analysis of the results showed that the helix opening rate is not significantly changed by the presence of an abasic site. The differences in exchange lifetimes are attributed to a faster helix closing rate in the presence of an abasic site. The faster rate of helix closing may be an important contribution to the stability of abasic sites in duplex DNA to base-catalyzed elimination reaction. It is noted that duplex DNAs containing analogues of the aldehydic abasic site apparently do not exhibit these exchange lifetime effects.

Aldehydes

Studies on epitopes on low-density lipoprotein modified by 4-hydroxynonenal. Biochemical characterization and determination.

Oxidation of human low-density lipoprotein (LDL) was found to be accompanied by the generation of various reactive aldehydes. One of them, 4-hydroxynonenal (HNE), was shown to modify LDL to a form which represents a good model of oxidized LDL (ox-LDL). In order to investigate the epitopes newly formed on HNE-modified LDL, a polyvalent antiserum to HNE-LDL [anti-(HNE-LDL)] was raised in rabbits and the non-specific components were removed with native LDL coupled to CNBr-Sepharose 4B. Competitive fluorescence immunoassay analysis showed that anti-(HNE-LDL) recognized HNE-LDL, copper-oxidized LDL, HNE-albumin and to a lower extent HNE-modified high-density lipoprotein 3 (HNE-HDL3) and ox-HDL3 but not native LDL. A certain degree of cross-reactivity of the antibody with LDLs modified by either hexanal or 2,4-heptadienal was found. No reaction was obtained with LDL labelled with malondialdehyde. From the abilities of HNE-modified poly(L-amino acids) to compete with HNE-LDL for binding to anti-(HNE-LDL), it is postulated that lysine, tyrosine, arginine and histidine are involved in the formation of HNE-derived epitopes on apolipoprotein B (apo B). Using a double-sandwich fluorescence immunoassay [capture antibody: anti-(apo B); detection antibody: anti-(HNE-LDL)] we found that the HNE-derived epitopes were expressed at a far higher degree in ox-LDL and HNE-LDL than in native LDL.

Aldehydes

Identification of heptanal and nonanal in bronchoalveolar lavage from rats exposed to low levels of ozone.

Heptanal and nonanal are identified from in vitro studies as potential biomarkers of exposure to ozone, the former resulting from ozonation of palmitoleic acid and the latter from oleic acid. An analytical method is developed based on derivatization using O-pentafluorobenzylhydroxylamine HCl and gas chromatography. These molecules also are present in the lung lavage of Sprague-Dawley rats exposed to 1.3 ppm ozone for 10 hr. These results suggest aldehydes may be useful dosimeters for ozone and indicate that unsaturated fatty acids in the lung lining fluid layer undergo ozonation in vivo.

Aldehydes