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Growth and viability of macrophages continuously stimulated to produce nitric oxide

J C Zhuang1, G N Wogan

  • 1Division of Toxicology and Department of Chemistry, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

Insights

Long-term exposure to nitric oxide (NO) in cell cultures affects macrophage growth rates, with higher NO levels causing cell death. Macrophages protect against intracellular NO, with damage occurring extracellularly.

Area of Science:

  • Immunology
  • Cell Biology
  • Biochemistry

Background:

  • Deregulated nitric oxide (NO) production is linked to human diseases like cancer.
  • Understanding the long-term damaging effects of NO is crucial for disease research.

Purpose of the Study:

  • To develop a cell culture model for assessing the damaging potential of NO under long-term conditions.
  • To investigate the impact of sustained nitric oxide production on macrophage growth and viability.

Main Methods:

  • Murine macrophage-like RAW264.7 cells were continuously exposed to bacterial lipopolysaccharide (LPS) or interferon-gamma (IFN-gamma) for 21-23 days.
  • Nitric oxide (NO) production rates were measured.
  • The effects of N-methyl-L-arginine (NMA), an NO synthase inhibitor, were evaluated.
  • Cell density experiments were conducted to assess NO's impact at different concentrations.

Main Results:

  • Continuous LPS or IFN-gamma stimulation resulted in prolonged cell doubling times (2-4x longer) but sustained cell growth.
  • Stimulated cells produced NO at rates of 30-70 nmol/million cells/day.
  • Simultaneous LPS and IFN-gamma exposure led to decreased cell numbers and delayed recovery.
  • NMA partially mitigated toxicity, suggesting NO's role in cellular damage.
  • Cell density influenced NO toxicity, with higher densities showing less cell death, indicating protection from intracellular NO.

Conclusions:

  • Macrophage response to NO is dose-dependent: low rates cause slower growth, higher rates lead to death or growth arrest.
  • Macrophages exhibit protection against intracellularly generated NO.
  • The RAW264.7 cell line provides a valuable model for studying long-term NO-induced cellular damage, including genotoxicity.

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