Search PubMed⌕ Search

Biomedical subjects

S Masushige

Publications and source records attributed to S Masushige.

43 records · Page 3Linked to original sources

Identification and characterization of mannosyl retinyl phosphate occurring in rat liver and intestine invivo.

A study was conducted to determine whether mannosyl retinyl phosphate occurred in rat liver and intestine in vivo, and, if so, to partially purify it and investigate its properties. After injection of [(3)H]retinol and [(14)C]mannose, a chloroform-methanol 2:1 extract of rat liver and small intestinal mucosa yielded two (3)H/(14)C-labeled peaks on DEAE-cellulose column chromatography: peak I eluted with 10 mM and peak II eluted with 29 mM ammonium acetate. Peak II, subjected to silicic acid column chromatography, gave principally two (3)H/(14)C-labeled fractions, one eluted with chloroform-methanol 2:1 and the other with chloroform-methanol 1:1. The latter showed, on thin-layer chromatography in a chloroform-methanol-water 60:25:4 system, an R(f) of 0.25 (with coincidence of the (3)H and (14)C radioactivity), which is identical to the R(f) of authentic mannosyl retinyl phosphate. The chloroform-methanol 1:1 peak, on mild acid hydrolysis, yielded [(3)H]retinol (identified by two thin-layer chromatography systems), [(14)C]mannose, and [(14)C]-mannose phosphate (identified by paper chromatography). On mild alkali hydrolysis, the peak yielded [(3)H]retinol and [(14)C]mannose phosphate. The substance eluted in the chloroform-methanol 1:1 peak from silicic acid was therefore concluded to be mannosyl retinyl phosphate. When chromatographed on silicic acid, peak I from the DEAE-cellulose column primarily showed a fraction eluted with chloroform-methanol 2:1. When chromatographed on thin-layer plates in the above solvent, this fraction showed an R(f) of 0.3, with coincidence of (3)H and (14)C radioactivity; it was resistant to mild acid hydrolysis, mild and strong alkali hydrolysis, and glucuronidase action. Mannosyl retinyl phosphate occurs, therefore, in vivo in liver and intestinal mucosa, and it is accompanied by a closely similar, though slightly less polar, compound that remains unidentified.

Animals↗

Transfer of mannose from mannosyl retinyl phosphate to protein.

Upon incubation of [14C]mannose-labeled mannosyl retinyl phosphate with a membrane fraction from rat liver, mannose was transferred to an endogenous acceptor precipitable withchloroform/methanol to the extent of about 7%. The reaction proceeded linearly with time for 120 min at a pH optimum of about 7.0. The acceptor thus labeled with mannose could be solubilized by sodium dodecyl sulfate/mercaptoethanol. More than half of this acceptor appeared in the void volume of a Sephadex G-100 column. When it was digested with Pronase, a substantial proportion of it appeared between the void and bed volumes of a Sephadex G-100 column, thus indicating that it was a glycopeptide. In high-voltage paper electrophoresis, this glycopeptide moved to the cathode at low pH and to the anode at highpH. When digested with highly purified jack bean alpha-mannosidase, the glycopeptide released almost 50% of its radioactivity as mannose. That this transfer of mannose to glycoprotein from mannosyl retinyl phosphate does not take place via dolichyl mannosyl phosphate was shown by the fact that it is Mn2+ and Mg2+ independent, it is not inhibited by the presence of a 10-fold molar excess of nonradioactive GDP-mannose, and neither 14C-labeled dolichyl mannosyl phosphate nor 14-C labeled lipid pyrophosphoryl oligosaccharide could be detected during the incubation.

Animals↗

The anomeric configuration of the D-mannosyl retinyl phosphate formed in rat liver microsomes.

Alkaline hydrolysis at 65 degrees converted D-mannosyl retinyl phosphate primarily into D-mannose 2-phosphate which was identified by its behavior on paper chromatography in two solvent systems, as well as by its resistance to acid hydrolysis under conditions that converted authentic alpha-D-mannosyl phosphate to mannose. When the D-mannosyl retinyl phosphate was hydrolyzed in alkali at 100 degrees, the main product was beta-D-mannosyl phosphate and not the alpha anomer (as shown by chromatography with authentic samples on thin layers of silica gel). No evidence for enzymatic hydrolysis of D-mannosyl retinyl phosphate by alpha-mannosidase was obtainable. It is concluded that the compound under investigation is beta-D-mannosyl retinyl phosphate.

Animals↗