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Karin Schreiner

Publications and source records attributed to Karin Schreiner.

3 recordsLinked to original sources

Enantioseparation of glycyl-dipeptides by CEC using particle-loaded monoliths prepared by ring-opening metathesis polymerization (ROMP).

Novel particle-loaded monolithic capillary electrochromatography (CEC) phases for chiral separations were prepared via ring-opening metathesis polymerization (ROMP) within the confines of fused silica columns with 200 microm i.d. using norborn-2-ene (NBE), 1,4,4a,5,8,8a-hexahydro-1,4,5,8,exo,endo-dimethanonaphthalene (DMN-H6) as monomers, 2-propanol and toluene as porogens, RuCl2(PCy3)2(CHPh) as initiator and silica-based particles containing the chiral selector. By suspending silica particles bearing the chiral selector in the polymerization mixture, particle-based monoliths are easily prepared. This approach has several advantages compared to particle-based separation media: (i) the concept of particle-based monoliths is broadly applicable, as any silica-based chiral phase can be used; (ii) they are inexpensive to prepare; and (iii) the manufacturing process is very simple, no sophisticated packing procedures or the preparation of end frits are required. To show the usefulness of this concept for chiral CEC, the chiral separation performance of particle-loaded CEC monoliths bearing teicoplanin aglycone, chemically bonded to 3 microm silica gel, was investigated for a set of glycyl-dipeptides. Particle-loaded ROMP CEC monoliths showed good separation performance for glycyl-dipeptides.

Capillary Electrochromatography↗

Fast chiral separation by ligand-exchange HPLC using a dynamically coated monolithic column.

The preparation and application of dynamically coated ligand-exchange chromatography phases for enantioseparation is described. The phases were prepared by pumping a solution of N-decyl-L-4-hydroxyproline, N-hexadecyl-L-4-hydroxyproline, or N-2-hydroxydodecyl-L-4-hydroxyproline through a commercially available monolithic RP-18 column. These coatings are stable against desorption for months at ambient temperature when aqueous mobile phases are used. The columns were applied to the chiral separation of amino acids, glycyl dipeptides and diastereomeric dipeptides, and tripeptides. The chiral selector can be removed or changed easily by washing the column with ACN or methanol. Ultrafast separations in the range of seconds were achieved using high flow rates.

Amino Acids↗

Low-density lipoproteins induce the polar secretion of PAI-1 by endothelial cells in culture.

Patients with hypercholesterolemia and with coronary atherosclerosis have increased plasma levels of plasminogen activator inhibitor (PAI)-1. PAI-1 and low-density lipoproteins (LDL) are also present in the walls of atherosclerotic vessels, where they participate in the development and remodeling of the atherosclerotic plaques. We investigated the influence of LDL on the apical (luminal) and basolateral (subendothelial) secretion of PAI-1 by human umbilical vein endothelial cells in a two-compartment cell-culture model. Confluent cells were incubated with LDL either in the apical compartment or in the basal compartment. Cells incubated with culture medium served as controls. A significantly higher concentration of PAI-1 was found in both the apical (P = 0.025) and the basal compartment (P = 0.025) if cells were incubated with LDL on the basolateral side. In contrast, incubation of the cells with LDL apically resulted in an increased PAI-1 concentration only in the apical compartment (P = 0.028) and not in the basal compartment. Our findings indicate that the LDL particles that reach the subendothelial space can induce an increased release of PAI-1 by endothelial cells into the vessel lumen and also contribute to the release of PAI-1 into the subendothelial space and thus to the process of atherosclerotic plaque remodeling.

Arteriosclerosis↗