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R Pohlmann

Publications and source records attributed to R Pohlmann.

43 records · Page 3Linked to original sources

Biosynthesis and transport of cathepsin D in cultured human fibroblasts.

For study of the time order of glycosylation, formation of complex oligosaccharides and proteolytic maturation as well as the site of proteolytic maturation of cathepsin D, fibroblasts were subjected to pulse-chase labeling, and cathepsin D was isolated from either total cell extracts or subcellular fractions by immune precipitation and analyzed for its molecular forms and sensitivity to endo-beta-N-acetylglucosaminidase H. After a 10-min pulse, cathepsin D was detected in its glycosylated precursor form, indicating an early, probably a cotranslational, N-glycosylation of cathepsin D. Conversion of the high-mannose oligosaccharide side chains into forms resistant to endo-beta-N-acetylglucosaminidase H started after approximately 40 min, indicating that transport of cathepsin D from the endoplasmic reticulum to the trans-Golgi apparatus requires approximately 40 min. Processing of the 53-kdalton precursor polypeptide of cathepsin D to a 47-kdalton intermediate followed about 20 min after the formation of complex oligosaccharides, and, another 30 min later, 31-kdalton mature forms of cathepsin D were detected. Processing of cathepsin D was first observed in light membranes as a partial conversion of the 53-kdalton precursor into the 47-kdalton intermediate. Both the precursor and the intermediate are transferred into the high density-class lysosomes. After 8 h, the processing to the mature 31-kdalton form of cathepsin D is mostly completed.

Biological Transport

Synthesis of phosphorylated recognition marker in lysosomal enzymes is located in the cis part of Golgi apparatus.

Rat liver membranes were subjected to centrifugation in a sucrose density gradient in which the Golgi apparatus was separated into several subfractions. Two enzymes involved in the synthesis of the phosphorylated recognition marker in lysosomal enzymes, UDP-N-acetylglucosamine:lysosomal enzyme precursor N-acetylglucosamine-1-phosphotransferase and alpha-N-acetylglucosaminyl phosphodiesterase fractionated with alpha-1,2-mannosidase, a marker enzyme of cis Golgi membranes and differently from galactosyltransferase, a marker enzyme of trans Golgi membranes.

Animals

Subcellular location of two enzymes involved in the synthesis of phosphorylated recognition markers in lysosomal enzymes.

Phosphorylated recognition markers in lysosomal enzyme appear to be synthesized by transfer of alpha-N-acetylglucosamine 1-phosphate groups to C6 hydroxyl of mannose residues in glycosylated enzyme precursors and a subsequent hydrolysis from the diester groups of the N-acetylglucosamine residues. The transfer and the diesterase activities were studied in subcellular fractions of rat liver. Both activities fractionated like the Golgi marker galactosyltransferase.

Animals

Sanfilippo syndrome type C: assay for acetyl-CoA: alpha-glucosaminide N-acetyltransferase in leukocytes for detection of homozygous and heterozygous individuals.

As assay for the detection in leukocytes of homozygous and heterozygous carriers of Sanfilippo syndrome type C is described. In one family with two patients suffering from Sanfilippo C syndrome, the affected individuals had no residual activity to acetyl-CoA: alpha-glucosaminide N-acetyltransferase. The determination of the acetyl-CoA: alpha-glucosaminide N-acetyltransferase/ beta-glucuronidase ratio allows the discrimination between obligate heterozygotes and normal individuals and may be used for carrier detection.

Acetyl Coenzyme A

Localisation of acetyl-CoA: alpha-glucosaminide N-acetyltransferase in microsomes and lysosomes of rat liver.

Subcellular fractions of rat liver were obtained by differential centrifugation. The fractions enriched in lysosomes or microsomes were further fractionated in discontinuous sucrose density gradients or continuous iso-osmotic gradients made of modified colloidal silica. The fractions were analyzed for marker enzymes of the different subcellular organelles and for acetyl-CoA: alpha-glucosaminide N-acetyltransferase. The acetyl-CoA: alpha-glucosaminide N-acetyltransferase activity showed a bimodal distribution. About one fourth of the activity was associated with lysosomes, whereas the greater part of the activity was recovered in the microsomal fraction. Plasma membrane-enriched fractions contained only trace amounts of acetyl-CoA: alpha-glucosaminide N-acetyltransferase. The lysosomal and microsomal acetyl-CoA: alpha-glucosaminide N-acetyltransferases are membrane-bound and can be solubilized with Triton X-100. The pH dependence and sensitivity to various ions was similar for the lysosomal and microsomal enzyme.

Acetyltransferases