Manipulation of environmental oxygen modifies reactive oxygen and nitrogen species generation during myogenesis
Rachel McCormick1, Timothy Pearson1, Aphrodite Vasilaki1
1MRC-Arthritis Research UK Centre for Integrated Research into Musculoskeletal Ageing, Department of Musculoskeletal Biology, Institute of Ageing and Chronic Disease, University of Liverpool, Liverpool L7 8TX, UK.
Abstract:
Regulated changes in reactive oxygen and nitrogen species (RONS) activities are important in maintaining the normal sequence and development of myogenesis. Both excessive formation and reduction in RONS have been shown to affect muscle differentiation in a negative way. Cultured cells are typically grown in 20% O2 but this is not an appropriate physiological concentration for a number of cell types, including skeletal muscle. The aim was to examine the generation of RONS in cultured skeletal muscle cells under a physiological oxygen concentration condition (6% O2) and determine the effect on muscle myogenesis. Primary mouse satellite cells were grown in 20% or 6% O2 environments and RONS activity was measured at different stages of myogenesis by real-time fluorescent microscopy using fluorescent probes with different specificities i.e. dihydroethidium (DHE), 4-amino-5-methylamino-2',7'-difluorofluorescein diacetate (DAF-FM DA) and 5-(and-6)-chloromethyl-2',7' -dichlorodihydrofluorescein diacetate (CM-DCFH-DA). Data demonstrate that satellite cell proliferation increased when cells were grown in 6% O2 compared with 20% O2. Myoblasts grown in 20% O2 showed an increase in DCF fluorescence and DHE oxidation compared with myoblasts grown at 6% O2. Myotubes grown in 20% O2 also showed an increase in DCF and DAF-FM fluorescence and DHE oxidation compared with myotubes grown in 6% O2. The catalase and MnSOD contents were also increased in myoblasts and myotubes that were maintained in 20% O2 compared with myoblasts and myotubes grown in 6% O2. These data indicate that intracellular RONS activities in myoblasts and myotubes at rest are influenced by changes in environmental oxygen concentration and that the increased ROS may influence myogenesis in a negative manner.
Insights
Physiological oxygen levels (6% O2) promote skeletal muscle cell proliferation and reduce reactive oxygen and nitrogen species (RONS) compared to standard 20% O2. Higher RONS levels negatively impact muscle development.
Area of Science:
- Cell Biology
- Muscle Physiology
- Biochemistry
Background:
- Reactive oxygen and nitrogen species (RONS) play a crucial role in myogenesis.
- Both excessive and deficient RONS levels can impair muscle differentiation.
- Standard cell culture oxygen concentrations (20% O2) are not physiologically relevant for skeletal muscle cells.
Purpose of the Study:
- To investigate RONS generation in skeletal muscle cells cultured under physiological oxygen (6% O2).
- To determine the impact of physiological oxygen on myogenesis and RONS activity.
Main Methods:
- Primary mouse satellite cells were cultured in 6% O2 and 20% O2 environments.
- RONS activity was measured using fluorescent probes (DHE, DAF-FM DA, CM-DCFH-DA) via real-time microscopy.
- Catalase and MnSOD enzyme content was analyzed.
Main Results:
- Satellite cell proliferation was higher in 6% O2 compared to 20% O2.
- Increased RONS activity (DCF, DHE, DAF-FM fluorescence) was observed in myoblasts and myotubes cultured at 20% O2 versus 6% O2.
- Elevated catalase and MnSOD levels were found in cells cultured at 20% O2.
Conclusions:
- Environmental oxygen concentration significantly influences intracellular RONS levels in skeletal muscle cells.
- Elevated RONS under standard culture conditions (20% O2) may negatively affect myogenesis.
- Culturing skeletal muscle cells at physiological oxygen (6% O2) supports proliferation and reduces potentially harmful RONS levels.
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