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1.
J Physiol ; 596(13): 2565-2579, 2018 07.
Article in English | MEDLINE | ID: mdl-29682760

ABSTRACT

KEY POINTS: Parkin, an E3 ubiquitin ligase encoded by the Park2 gene, has been implicated in the regulation of mitophagy, a quality control process in which defective mitochondria are degraded. The exact physiological significance of Parkin in regulating mitochondrial function and contractility in skeletal muscle remains largely unexplored. Using Park2-/- mice, we show that Parkin ablation causes a decrease in muscle specific force, a severe decrease in mitochondrial respiration, mitochondrial uncoupling and an increased susceptibility to opening of the permeability transition pore. These results demonstrate that Parkin plays a protective role in the maintenance of normal mitochondrial and contractile functions in skeletal muscles. ABSTRACT: Parkin is an E3 ubiquitin ligase encoded by the Park2 gene. Parkin has been implicated in the regulation of mitophagy, a quality control process in which defective mitochondria are sequestered in autophagosomes and delivered to lysosomes for degradation. Although Parkin has been mainly studied for its implication in neuronal degeneration in Parkinson disease, its role in other tissues remains largely unknown. In the present study, we investigated the skeletal muscles of Park2 knockout (Park2-/- ) mice to test the hypothesis that Parkin plays a physiological role in mitochondrial quality control in normal skeletal muscle, a tissue highly reliant on mitochondrial content and function. We first show that the tibialis anterior (TA) of Park2-/- mice display a slight but significant decrease in its specific force. Park2-/- muscles also show a trend for type IIB fibre hypertrophy without alteration in muscle fibre type proportion. Compared to Park2+/+ muscles, the mitochondrial function of Park2-/- skeletal muscles was significantly impaired, as indicated by the significant decrease in ADP-stimulated mitochondrial respiratory rates, uncoupling, reduced activities of respiratory chain complexes containing mitochondrial DNA (mtDNA)-encoded subunits and increased susceptibility to opening of the permeability transition pore. Muscles of Park2-/- mice also displayed a decrease in the content of the mitochondrial pro-fusion protein Mfn2 and an increase in the pro-fission protein Drp1 suggesting an increase in mitochondrial fragmentation. Finally, Park2 ablation resulted in an increase in basal autophagic flux in skeletal muscles. Overall, the results of the present study demonstrate that Parkin plays a protective role in the maintenance of normal mitochondrial and contractile functions in normal skeletal muscles.


Subject(s)
Mitochondria/pathology , Muscle Contraction , Muscle, Skeletal/pathology , Organelle Biogenesis , Oxidative Stress , Ubiquitin-Protein Ligases/physiology , Animals , Autophagy , Male , Mice , Mice, Knockout , Mitochondria/metabolism , Mitochondrial Membrane Transport Proteins , Mitochondrial Permeability Transition Pore , Muscle, Skeletal/metabolism
2.
Exp Cell Res ; 319(4): 474-86, 2013 Feb 15.
Article in English | MEDLINE | ID: mdl-23164509

ABSTRACT

As differentiated cells, hepatocytes primarily metabolize glucose for ATP production through oxidative phosphorylation of glycolytic pyruvate, whereas proliferative hepatocellular carcinoma (HCC) cells undergo a metabolic shift to aerobic glycolysis despite oxygen availability. Keratins, the intermediate filament (IF) proteins of epithelial cells, are expressed as pairs in a lineage/differentiation manner. Hepatocyte and HCC (hepatoma) cell IFs are made solely of keratins 8/18 (K8/K18), thus providing models of choice to address K8/K18 IF functions in normal and cancerous epithelial cells. Here, we demonstrate distinctive increases in glucose uptake, glucose-6-phosphate formation, lactate release, and glycogen formation in K8/K18 IF-lacking hepatocytes and/or hepatoma cells versus their respective IF-containing counterparts. We also show that the K8/K18-dependent glucose uptake/G6P formation is linked to alterations in hexokinase I/II/IV content and localization at mitochondria, with little effect on GLUT1 status. In addition, we find that the insulin-stimulated glycogen formation in normal hepatocytes involves the main PI-3 kinase-dependent signaling pathway and that the K8/K18 IF loss makes them more efficient glycogen producers. In comparison, the higher insulin-dependent glycogen formation in K8/K18 IF-lacking hepatoma cells is associated with a signaling occurring through a mTOR-dependent pathway, along with an augmentation in cell proliferative activity. Together, the results uncover a key K8/K18 regulation of glucose metabolism in normal and cancerous hepatic cells through differential modulations of mitochondrial HK status and insulin-mediated signaling.


Subject(s)
Carcinoma, Hepatocellular/metabolism , Glucose/metabolism , Hepatocytes/metabolism , Hexokinase/metabolism , Insulin/metabolism , Keratin-18/physiology , Keratin-8/physiology , Liver Neoplasms/metabolism , Animals , Carcinoma, Hepatocellular/pathology , Cell Proliferation/drug effects , Cells, Cultured , Glucose Transport Proteins, Facilitative/metabolism , Hepatocytes/drug effects , Hepatocytes/enzymology , Hepatocytes/pathology , Humans , Insulin/pharmacology , Keratin-18/metabolism , Keratin-8/metabolism , Liver Neoplasms/pathology , Mice , Signal Transduction/drug effects , Signal Transduction/physiology
3.
Free Radic Biol Med ; 45(4): 413-24, 2008 Aug 15.
Article in English | MEDLINE | ID: mdl-18486629

ABSTRACT

Keratins (Ks), the intermediate filament (IF) proteins of epithelia, constitute at least 20 cytoskeletal proteins subdivided into type I (K9-20) and type II (K1-K8) and expressed as type I/type II pairs in a cell differentiation manner. Hepatocyte IFs are made only of K8/K18, the hallmark of simple epithelial cells. We have shown previously that a K8/K18 loss leads to a modulation of apoptosis in Fas-stimulated mouse hepatocytes. Here we report that K8-knockout mouse hepatocytes and K8-knockdown H4-II-E-C3 (shK8b1) rat hepatoma cells were much more resistant than their K8/K18-containing counterparts, wild-type hepatocytes, and H4ev hepatoma cells, in response to excess H2O2 or tert-butyl hydroperoxide, a ROS generator. While excess H2O2 altered glutathione (GSH) and ROS levels in H4ev versus shK8b1 cells, the differential death response was largely GSH level independent. Assessment of key cell death features revealed that hepatic cells exposed to H2O2 die through a mitochondrial involvement. Similarly, administration of the GSH depletor L-buthionine-sulfoximine to generate mitochondrial ROS-sensitized H4-II-E-C3 cells but not shK8b1 cells to death. Treatment with protein kinase C (PKC) inhibitors yielded a resistance of H2O2-treated H4-II-E-C3 cells comparable to that of nontreated shK8b1 cells, which in turn were not affected by the treatment. In addition, this differential death response was associated with altered PKCdelta activation and surface-membrane/mitochondria distribution in H2O2-treated shK8b1 cells. Together, these results point to a key regulatory function for K8/K18 in ROS-induced mitochondria-mediated death through PKCdelta involvement in hepatic cells.


Subject(s)
Keratins/metabolism , Liver/metabolism , Mitochondria, Liver/metabolism , Protein Kinase C/metabolism , Reactive Oxygen Species/metabolism , Signal Transduction , Animals , Base Sequence , DNA Primers , Fluorescent Antibody Technique , Glutathione/metabolism , Liver/cytology , Mice , Mice, Knockout
4.
Exp Cell Res ; 313(10): 2265-81, 2007 Jun 10.
Article in English | MEDLINE | ID: mdl-17498695

ABSTRACT

New roles have emerged recently for intermediate filaments (IFs), namely in modulating cell adhesion and growth, and providing resistance to various forms of stress and to apoptosis. In this context, we first summarize findings on the IF association with the cell response to mechanical stress and growth stimulation, in light of growth-related signaling events that are relevant to death-receptor engagement. We then address the molecular mechanisms by which IFs can provide cell resistance to apoptosis initiated by death-receptor stimulation and to necrosis triggered by excessive oxidative stress. In the same way, we examine IF involvement, along with cytolinker participation, in sequential caspase-mediated protein cleavages that are part of the overall cell death execution, particularly those that generate new functional IF protein fragments and uncover neoantigen markers. Finally, we report on the usefulness of these markers as diagnostic tools for disease-related aspects of apoptosis in humans. Clearly, the data accumulated in recent years provide new and significant insights into the multiple functions of IFs, particularly their dual roles in cell response to apoptotic insults.


Subject(s)
Apoptosis/physiology , Intermediate Filament Proteins/metabolism , Intermediate Filaments/metabolism , Animals , Biomarkers, Tumor/analysis , Biomarkers, Tumor/immunology , Biomarkers, Tumor/metabolism , Caspases/metabolism , Cell Enlargement , Cell Survival/physiology , Humans , Intermediate Filament Proteins/immunology , Intermediate Filaments/immunology , Peptides/immunology , Peptides/metabolism , Receptors, Death Domain/metabolism
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