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Targeting M2 Macrophages with a Novel NADPH Oxidase Inhibitor
Sébastien Dilly1, Miguel Romero2,3, Stéphanie Solier4
1Gustave Roussy Cancer Center, CNRS UMR 8200, F-94805 Villejuif, France.
Abstract:
ROS in cancer cells play a key role in pathways regulating cell death, stemness maintenance, and metabolic reprogramming, all of which have been implicated in resistance to chemo/ immunotherapy. Adjusting ROS levels to reverse the resistance of cancer cells without impairing normal cell functions is a new therapeutic avenue. In this paper, we describe new inhibitors of NADPH oxidase (NOX), a key enzyme in many cells of the tumor microenvironment. The first inhibitor, called Nanoshutter-1, NS1, decreased the level of tumor-promoting "M2" macrophages differentiated from human blood monocytes. NS1 disrupted the active NADPH oxidase-2 (NOX2) complex at the membrane and in the mitochondria of the macrophages, as shown by confocal microscopy. As one of the characteristics of tumor invasion is hypoxia, we tested whether NS1 would affect vascular reactivity by reducing ROS or NO levels in wire and pressure myograph experiments on isolated blood vessels. The results show that NS1 vasodilated blood vessels and would likely reduce hypoxia. Finally, as both NOX2 and NOX4 are key proteins in tumors and their microenvironment, we investigated whether NS1 would probe these proteins differently. Models of NOX2 and NOX4 were generated by homology modeling, showing structural differences at their C-terminal NADPH site, in particular in their last Phe. Thus, the NADPH site presents an unexploited chemical space for addressing ligand specificity, which we exploited to design a novel NOX2-specific inhibitor targeting variable NOX2 residues. With the proper smart vehicle to target specific cells of the microenvironment as TAMs, NOX2-specific inhibitors could open the way to new precision therapies.
Insights
New inhibitors targeting NADPH oxidase (NOX) enzymes offer a novel therapeutic strategy to overcome cancer treatment resistance. These compounds, like Nanoshutter-1 (NS1), reduce reactive oxygen species (ROS) in tumor-promoting cells and blood vessels, potentially reversing resistance and reducing hypoxia.
Area of Science:
- Biochemistry
- Oncology
- Pharmacology
Background:
- Reactive oxygen species (ROS) are crucial in cancer cell pathways, influencing cell death, stemness, and metabolism, contributing to chemo/immunotherapy resistance.
- Modulating ROS levels presents a therapeutic strategy to reverse cancer cell resistance without harming normal cells.
- NADPH oxidase (NOX) enzymes are key regulators of ROS in the tumor microenvironment and are implicated in cancer progression.
Purpose of the Study:
- To describe novel NADPH oxidase (NOX) inhibitors for cancer therapy.
- To investigate the effects of Nanoshutter-1 (NS1) on tumor-promoting M2 macrophages and vascular reactivity.
- To explore the potential for developing NOX2-specific inhibitors for precision medicine.
Main Methods:
- Confocal microscopy to visualize NOX2 complex disruption in macrophages.
- Wire and pressure myography to assess NS1's effect on vascular reactivity and ROS/NO levels.
- Homology modeling to analyze structural differences between NOX2 and NOX4 for inhibitor design.
Main Results:
- NS1 decreased M2 macrophage levels and disrupted the NOX2 complex in these cells.
- NS1 induced vasodilation, suggesting a reduction in hypoxia.
- Structural analysis revealed differences in the NOX C-terminal NADPH site, enabling the design of a NOX2-specific inhibitor.
Conclusions:
- NS1 demonstrates potential in targeting tumor-promoting macrophages and improving vascular function.
- Targeting NOX enzymes, particularly with specific inhibitors like those designed for NOX2, represents a promising avenue for novel cancer therapies.
- Precision targeting of NOX2 within the tumor microenvironment could lead to advanced therapeutic strategies.
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