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.

Redox Biology
|February 1, 2016
PubMed

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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