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PMID: 8858953 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Specific delay in the degradation of mitochondrial ATP synthase subunit c in late infantile neuronal ceroid lipofuscinosis is derived from cellular proteolytic dysfunction rather than structural alteration of subunit c.

Journal of neurochemistry ·Vol. 67 ·No. 4 ·1996-10-00 ·Pages 1677-87

Ezaki J, Wolfe LS, Kominami E

Abstract

Previously we indicated that a specific delay in subunit c degradation causes the accumulation of mitochondrial ATP synthase subunit c in lysosomes from the cells of patients with the late infantile form of neuronal ceroid lipofuscinosis (NCL). To explore the mechanism of lysosomal storage of subunit c in patient cells, we investigated the mechanism of the lysosomal accumulation of subunit c both in cultured normal fibroblasts and in in vitro cell-free incubation experiments. Addition of pepstatin to normal fibroblasts causes the marked lysosomal accumulation of subunit c and less accumulation of Mn(2+)-superoxide dismutase (SOD). In contrast, E-64-d stimulates greater lysosomal storage of Mn(2+)-SOD than of subunit c. Incubation of mitochondrial-lysosomal fractions from control and diseased cells at acidic pH leads to a much more rapid degradation of subunit c in control cells than in diseased cells, whereas other mitochondrial proteins, including Mn(2+)-SOD, beta subunit of ATP synthase, and subunit i.v. of cytochrome oxidase, are degraded at similar rates in both control and patient cells. The proteolysis of subunit c in normal cell extracts is inhibited markedly by pepstatin and weakly by E-64-c, as in the cultured cell experiments. However, there are no differences in the lysosomal protease levels, including the levels of the pepstatin-sensitive aspartic protease cathepsin D between control and patient cells. The stable subunit c in mitochondrial-lysosomal fractions from patient cells is degraded on incubation with mitochondrial-lysosomal fractions from control cells. Exchange experiments using radiolabeled substrates and nonlabeled proteolytic sources from control and patient cells showed that proteolytic dysfunction, rather than structural alterations such as the posttranslational modification of subunit c, is responsible for the specific delay in the degradation of subunit c in the late infantile form of NCL.

MeSH Terms
Cathepsin B/metabolism Cell Fractionation Cell-Free System Cells, Cultured Electron Transport Complex IV/isolation & purification,metabolism Fibroblasts/enzymology Humans Infant Kinetics Lysosomes/enzymology Macromolecular Substances Mitochondria/drug effects,enzymology Neuronal Ceroid-Lipofuscinoses/metabolism Pepstatins/pharmacology Protease Inhibitors/pharmacology Proton-Translocating ATPases/isolation & purification,metabolism Reference Values Skin/enzymology
Chemicals
Macromolecular Substances Pepstatins Protease Inhibitors Streptomyces pepsin inhibitor Electron Transport Complex IV Cathepsin B Proton-Translocating ATPases pepstatin
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Ezaki J
Department of Biochemistry, Juntendo University School of Medicine, Tokyo, Japan.
Wolfe L S
Kominami E
Article Info
Journal
Journal of neurochemistry
Abbr.
J Neurochem
ISSN
0022-3042
Published
1996-10-00
Pages
1677-87
Language
English
Region
England
NLM ID
2985190R
Subset
IM
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