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Published on: July 20, 2019
Nicotinamide Mononucleotide Administration Triggers Macrophages Reprogramming and Alleviates Inflammation During
Cécile Cros1, Marielle Margier2, Hélène Cannelle1
1Nuvamid SA, Lausanne, Switzerland.
Abstract:
Peritonitis and subsequent sepsis lead to high morbidity and mortality in response to uncontrolled systemic inflammation primarily mediated by macrophages. Nicotinamide adenine dinucleotide (NAD+) is an important regulator of oxidative stress and immunoinflammatory responses. However, the effects of NAD+ replenishment during inflammatory activation are still poorly defined. Hence, we investigated whether the administration of β-nicotinamide mononucleotide (β-NMN), a natural biosynthetic precursor of NAD+, could modulate the macrophage phenotype and thereby ameliorate the dysregulated inflammatory response during sepsis. For this purpose, C57BL6 mice were subjected to the cecal ligation and puncture (CLP) model to provoke sepsis or were injected with thioglycolate to induce sterile peritonitis with recruitment and differentiation of macrophages into the inflamed peritoneal cavity. β-NMN was administered for 4 days after CLP and for 3 days post thioglycolate treatment where peritoneal macrophages were subsequently analyzed. In the CLP model, administration of β-NMN decreased bacterial load in blood and reduced clinical signs of distress and mortality during sepsis. These results were supported by transcriptomic analysis of hearts and lungs 24 h post CLP-induction, which revealed that β-NMN downregulated genes controlling the immuno-inflammatory response and upregulated genes involved in bioenergetic metabolism, mitochondria, and autophagy. In the thioglycolate model, a significant increase in the proportion of CD206 macrophages, marker of anti-inflammatory M2 phenotype, was detected on peritoneal exudate macrophages from β-NMN-administered mice. Transcriptomic signature of these macrophages after bacterial stimulation confirmed that β-NMN administration limited the pro-inflammatory M1 phenotype and induced the expression of specific markers of M2 type macrophages. Furthermore, our data show that β-NMN treatment significantly impacts NAD + metabolism. This shift in the macrophage phenotype and metabolism was accompanied by a reduction in phagolysosome acidification and secretion of inflammatory mediators in macrophages from β-NMN-treated mice suggesting a reduced pro-inflammatory activation. In conclusion, administration of β-NMN prevented clinical deterioration and improved survival during sepsis. These effects relied on shifts in the metabolism of organs that face up an increased energy requirement caused by bacterial infection and in innate immunity response, including reprogramming of macrophages from a highly inflammatory phenotype to an anti-inflammatory/pro-resolving profile.
Insights
Beta-nicotinamide mononucleotide (β-NMN) administration improved survival in a sepsis model by reprogramming macrophages to an anti-inflammatory state. This NAD+ precursor modulated immune responses and metabolic pathways, reducing inflammation and mortality.
Area of Science:
- Immunology
- Metabolic pathways
- Sepsis research
Background:
- Sepsis and peritonitis cause high mortality due to uncontrolled inflammation mediated by macrophages.
- Nicotinamide adenine dinucleotide (NAD+) regulates oxidative stress and immune responses, but its role in inflammation is unclear.
- Investigating NAD+ replenishment via β-nicotinamide mononucleotide (β-NMN) offers potential therapeutic strategies.
Purpose of the Study:
- To investigate if β-NMN administration can modulate macrophage phenotype and ameliorate sepsis-induced inflammation.
- To assess the impact of β-NMN on macrophage polarization and inflammatory mediator secretion.
- To evaluate the therapeutic potential of β-NMN in preclinical models of sepsis and peritonitis.
Main Methods:
- Cecal ligation and puncture (CLP) model for sepsis and thioglycolate injection for sterile peritonitis in C57BL6 mice.
- Administration of β-NMN post-insult, followed by analysis of peritoneal macrophages and organ transcriptomics.
- Flow cytometry, transcriptomic analysis, and assessment of inflammatory markers and bacterial load.
Main Results:
- β-NMN administration decreased bacterial load and mortality in the CLP sepsis model.
- Transcriptomic analysis revealed β-NMN downregulated inflammatory genes and upregulated metabolic/mitochondrial genes in organs.
- In sterile peritonitis, β-NMN increased anti-inflammatory M2 macrophages and reduced pro-inflammatory M1 markers, decreasing inflammatory mediator secretion.
Conclusions:
- β-NMN administration improves survival and prevents clinical deterioration during sepsis.
- Effects are linked to metabolic shifts in organs and reprogramming of innate immune cells, particularly macrophages.
- β-NMN shifts macrophages from a pro-inflammatory to an anti-inflammatory/pro-resolving phenotype, offering a novel therapeutic approach.

