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D R Winge

Publications and source records attributed to D R Winge.

106 records · Page 6Linked to original sources

Rat liver Cu,Zn-superoxide dismutase. Subcellular location in lysosomes.

Rat liver Cu,Zn-superoxide dismutase, previously reported to be localized in the mitochondria intermembrane space in addition to the cytosol, is now found to be lysosomal. The enzyme has been shown to segregate coincidently with lysosomal enzymes and not mitochondrial enzymes from a subcellular granule fraction by three independent methods: 1) digitonin treatment, 2) hypotonic treatment, which selectively releases lysosomal enzymes into the supernatant prior to the release of mitochondrial enzymes, and 3) separation of mitochondria and lysosomes by isopycnic density centrifugation after in vivo loading of lysosomes with Triton WR-1339. The Cu,Zn-superoxide dismutase in lysosomes appears to be derived from cytosolic Cu,Zn-superoxide dismutase, since microinjection of the enzyme into HeLa cells results in a partial redistribution from cytosol to lysosomes. In the rat, the amount of superoxide dismutase in the lysosomes varies with the nutritional state of the animal. Fasted animals have about 8% and fed animals about 2% of the total cellular superoxide dismutase in the lysosomes. This increase in lysosomal Cu,Zn-superoxide dismutase upon fasting is consistent with what is known to occur with other soluble cytosolic proteins during autophagy. Cu,Zn-superoxide dismutase is probably not located in mitochondria, as the enzyme found associated with this organelle on isopycnic density gradients may be attributed to lysosomal contamination. However, the possibility that a small amount (less than 0.1% of total cellular) is located in the mitochondria cannot be excluded.

Animals↗

Domain nature of metallothionein.

Metallothionein purified from the livers of rats injected with CdCl3 was cleaved by proteolysis into a 32-residue polypeptide that contained 4 bound Cd ions. Appearance of this fragment designated alpha requires prior treatment of metallothionein with EDTA to remove the Zn ions and destabilize the 3-metal cysteine cluster in the other domain. The half-molecule domain was not efficiently produced by proteolysis of native metallothionein. The Cd4-alpha fragment is asymmetric in shape, as is the parent molecule. NH2-terminal sequence analysis revealed that the alpha fragment starts at Lys 30. Since the same amino acids are released from the COOH terminus of intact thionein and the alpha fragment by carboxypeptidase Y, the alpha domain generated by digestion with subtilisin therefore comprises residues 30 through 61. The amino acid composition of the alpha polypeptide is consistent with the structure of the 4-metal cysteine cluster proposed by Otvos and Armitage ((1980) Proc. Natl. Acad. Sci. U. S. A. 77, 7094-7098). Metallothionein appears to consist of a 3-metal cysteine domain in the NH2-terminal half of the thionein molecule and the 4-metal cysteine domain in the COOH-terminal half.

Amino Acid Sequence↗

Long-term turnover of cadmium metallothionein in liver and kidney following a single low dose of cadmium in rats.

Rats were injected subcutaneously on two consecutive days with CdCl2, and sampled animals, killed at monthly intervals from 1 to 6 months thereafter, exhibited the presence of Cd,Zn-thionein in both the liver and kidney. At 6 months, hepatic thionein was present as the two major polymorphic forms previously demonstrated in short term Cd-injection studies. [35S]cysteine incorporation studies showed that both polymorphic forms of thionein underwent continual turnover at similar rates throughout th study. The slow hepatic and renal turnover of Cd, therefore, was not due to a highly stable form of Cd-thionein, but apparently due to an inefficient mechanism for excretion of Cd from these tissues. The Cd/Zn ratio of hepatic thionein remained relatively constant, suggesting that continual thionein induction results in a long-term hepatic trapping of Zn by thionein, but the ratio of renal thionein showed a marked increase during the course of the study.

Animals↗

Calcium, magnesium and the conformation of parvalbumin during muscular activity.

The conformation of perch parvalbumin in the Ca-, Mg- and metal-free state was studied by intrinsic fluorescence, trypsin susceptibility, thiol titration and circular dichroism. The data reveal that Ca-parvalbumin has a more compact structure than the metal-free protein, with a high alpha-helical content and a buried thiol. No difference in conformation could be detected between Mg- and Ca-parvalvumin, indicating that the Ca-Mg exchange that may take place during muscular activity is accompanied by little or no structural changes. Furthermore, recently published kinetic parameters can now be interpreted as meaning that, during the contraction-relaxation cycle, parvalbumin often stays in the Mg-form instead of switching to the Ca-form which is predominant in vitro.

Calcium↗