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Growth and viability of macrophages continuously stimulated to produce nitric oxide
1Division of Toxicology and Department of Chemistry, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
Deregulated production of nitric oxide (NO) has been implicated in the development of certain human diseases, including cancer. We sought to assess the damaging potential of NO produced under long-term conditions through the development of a suitable model cell culture system. In this study, we report that when murine macrophage-like RAW264.7 cells were exposed continuously to bacterial lipopolysaccharide (LPS) or mouse recombinant interferon-gamma (IFN-gamma) over periods of 21-23 days, they continued to grow, but with doubling times 2 to 4 times, respectively, longer than the doubling time of unstimulated cells. Stimulated cells produced NO at rates of 30 to 70 nmol per million cells per day throughout the stimulation period. Within 24 hr after removal of stimulant, cells resumed exponential growth. Simultaneous exposure to LPS and IFN-gamma resulted in decreased cell number, which persisted for 2 days after removal of the stimulants. Exponential growth was attained only after an additional 4 days. Addition of N-methyl-L-arginine (NMA), an NO synthase inhibitor, to the medium inhibited NO production by 90% of all stimulated cells, partially reduced doubling time of cells stimulated with LPS or IFN-gamma, and partially increased viability and growth rates in those exposed to both LPS and IFN-gamma. However, when incubated with LPS and IFN-gamma at low densities both in the presence and in the absence of NMA, cells grew at a rate slower than that of unstimulated cells, with no cell death, and they resumed exponential growth 24 hr after removal of stimulants. Results from cell density experiments suggest that macrophages are protected from intracellularly generated NO; much of the NO damaging activity occurred outside of the producer cells. Collectively, results presented in this study suggest that the type of cellular toxicity observed in macrophages is markedly influenced by rate of exposure to NO: at low rates of exposure, cells exhibit slower growth; at higher rates, cells begin to die; at even higher rates, cells undergo growth arrest or die. The ability of RAW264.7 cells to produce NO over many cell generations makes the cell line a useful system for the study of other aspects of cellular damage, including genotoxicity, resulting from exposure to NO under long-term conditions.
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.