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ATPase complex and oxidative phosphorylation in chloramphenicol-induced megamitochondria from mouse liver
Abstract:
1. Functional properties of the ATPase complex are investigated in megamitochondria isolated from livers of weanling mice fed a diet containing 2% chloramphenicol, as an inhibitor of mitochondrial protein synthesis. 2. Whereas the specific activity of ATPase remains unchanged in chloramphenicol-induced megamitochondria, about 40% of the enyzme activity is resistant to inhibition by oligomycin, triethyltin or venturicidin. It is concluded that the ATPase complex lacks one or more components whose synthesis or accumulation is dependent on mitochondrial translation. The inhibitor-resistant ATPase portion appears tightly bound to the mitochondrial membrane. 3. Respiratory chain phosphorylation is tightly coupled in isolated megamitochondria. ATP synthesis and ATP-Pi exchange are diminished by 40%, as compared to control mitochondria, but both processes are sensitive to oligomycin, triethyltin or venturicidin. 4. The decrease in ATP synthesis and ATP-Pi exchange in megamitochondria correlates quite well with the emergence of inhibitor-resistant ATPase. 5. The following electron transport activities in the megmitochondria are reduced: NADH-cytochrome c reductase, by 60%, cytochrome oxidase, by 80%; the amount of antimycin required to gain complete inhibition of the bc1-segment is diminished by more than 50%. On the other hand succinate dehydrogenase activity is increased by 50%. 6. Chloramphenicol-induced megamitochondria appear to be a useful system for studying the role of mitochondrial translation in the assembly of mammalian mitochondria.
Insights
Chloramphenicol treatment creates megamitochondria with altered ATPase function, indicating a dependence on mitochondrial translation for certain ATPase components. This model aids in studying mitochondrial assembly.
Area of Science:
- Mitochondrial Biology
- Biochemistry
- Cellular Respiration
Background:
- Mitochondrial protein synthesis is crucial for the assembly and function of the oxidative phosphorylation system.
- Chloramphenicol inhibits mitochondrial protein synthesis, leading to the formation of megamitochondria.
Purpose of the Study:
- To investigate the functional properties of the ATPase complex in chloramphenicol-induced megamitochondria.
- To determine the role of mitochondrial translation in the assembly of mammalian mitochondria.
Main Methods:
- Isolation of megamitochondria from mouse liver after chloramphenicol administration.
- Enzymatic assays to measure ATPase activity, ATP synthesis, ATP-Pi exchange, and electron transport chain complex activities.
- Assessment of inhibitor sensitivity (oligomycin, triethyltin, venturicidin) for ATPase activity.
Main Results:
- Specific ATPase activity remained unchanged, but 40% of activity was resistant to oligomycin, triethyltin, and venturicidin.
- ATP synthesis and ATP-Pi exchange were reduced by 40% but remained sensitive to inhibitors.
- Electron transport activities (NADH-cytochrome c reductase, cytochrome oxidase) were significantly reduced, while succinate dehydrogenase activity increased.
Conclusions:
- The ATPase complex likely lacks components dependent on mitochondrial translation.
- The inhibitor-resistant ATPase is tightly bound to the mitochondrial membrane.
- Chloramphenicol-induced megamitochondria serve as a valuable model for studying mitochondrial translation's role in mitochondrial assembly.