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Tumor necrosis factor alpha stimulates mycobactericidal/mycobacteriostatic activity in human macrophages by a protein
1Kuzell Institute for Arthritis and Infectious Diseases, California Pacific Medical Center, San Francisco 94115.
Abstract:
Tumor necrosis factor (TNF) is a 17-kDa protein produced by endotoxin-stimulated macrophages. We have demonstrated that recombinant human TNF activates human macrophages to kill intracellular bacteria of the Mycobacterium avium complex (MAC) in a dose-related manner. TNF also primed macrophages to produce superoxide anion (O2-) following treatment with phorbol esther PMA (0.1 micrograms/ml). To investigate the intracellular pathway involved in the TNF-mediated activation of mycobacteriostatic/mycobactericidal activity in macrophages, we used two different protein kinase C (PKC) inhibitors: H7 (10(-5)-10(7) M) and staurosporine (10(-7)-10(-9) M). Mellitin (1 and 100 mM) was used as a calmodulin inhibitor. Human peripheral blood-derived macrophages cultured for 7 days were treated with H7, mellitin, or staurosporine for 1 hr prior to incubation with TNF (10(3) U/ml). Twenty-four hours after treatment with TNF the O2- release was measured spectrophotometrically following exposure to PMA. Macrophages were infected with MAC and the viable intracellular bacilli were quantitated following 4 days of treatment with TNF. All PKC inhibitors suppressed O2- production after incubation with PMA. However, treatment with either PKC or calmodulin inhibitors did not influence the intracellular killing of M. avium by TNF-stimulated macrophages. Exposure of the macrophages to cGMP inhibitor but not to cAMP inhibitor significantly impaired the response to the stimulation with TNF. In contrast, incubation of macrophages with protein kinase A (PKA) had no effect on TNF-mediated mycobacteriostatic/mycobactericidal activity. These results suggest that the TNF-mediated mycobactericidal activity in cultured macrophages probably occurs by a PKC-independent mechanism.
Insights
Tumor necrosis factor (TNF) activates macrophages to kill Mycobacterium avium complex (MAC) bacteria. This mycobactericidal activity is independent of protein kinase C (PKC) but may involve cGMP signaling pathways.
Area of Science:
- Immunology
- Cell Biology
- Microbiology
Background:
- Tumor necrosis factor (TNF) is a protein produced by macrophages.
- TNF activates macrophages to kill intracellular bacteria like Mycobacterium avium complex (MAC).
- The intracellular mechanisms underlying TNF-mediated macrophage activation are not fully understood.
Purpose of the Study:
- To investigate the intracellular pathways involved in TNF-mediated mycobactericidal activity in macrophages.
- To determine the role of protein kinase C (PKC) and calmodulin in TNF-induced macrophage activation against MAC.
- To explore the involvement of cyclic nucleotide signaling in TNF-mediated macrophage responses.
Main Methods:
- Human peripheral blood-derived macrophages were cultured and treated with TNF.
- Protein kinase C (PKC) inhibitors (H7, staurosporine) and a calmodulin inhibitor (mellitin) were used.
- Macrophage activation was assessed by measuring superoxide anion (O2-) production and intracellular killing of MAC.
Main Results:
- PKC inhibitors suppressed PMA-induced O2- production but did not affect TNF-mediated killing of MAC.
- Calmodulin inhibition also did not influence TNF-induced intracellular killing of M. avium.
- cGMP inhibition impaired TNF-mediated responses, while cAMP inhibition had no effect.
- Protein kinase A (PKA) had no impact on TNF-mediated mycobactericidal activity.
Conclusions:
- TNF-mediated mycobactericidal activity against MAC in macrophages likely operates through a protein kinase C (PKC)-independent mechanism.
- Cyclic guanosine monophosphate (cGMP) signaling may play a role in TNF-induced macrophage activation.
- These findings contribute to understanding the complex signaling pathways governing macrophage antimicrobial functions.