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Molecular characterization of AIFM2/FSP1 inhibition by iFSP1-like molecules
Thamara Nishida Xavier da Silva1, Clemens Schulte1, Ariane Nunes Alves2
1Rudolf Virchow Zentrum; Center for Integrative and Translational Bioimaging, University of Würzburg, Josef-Schneider-Str. 2, 97080, Würzburg, Germany.
Abstract:
Ferroptosis is a form of cell death characterized by phospholipid peroxidation, where numerous studies have suggested that the induction of ferroptosis is a therapeutic strategy to target therapy refractory cancer entities. Ferroptosis suppressor protein 1 (FSP1), an NAD(P)H-ubiquinone reductase, is a key determinant of ferroptosis vulnerability, and its pharmacological inhibition was shown to strongly sensitize cancer cells to ferroptosis. A first generation of FSP1 inhibitors, exemplified by the small molecule iFSP1, has been reported; however, the molecular mechanisms underlying inhibition have not been characterized in detail. In this study, we explore the species-specific inhibition of iFSP1 on the human isoform to gain insights into its mechanism of action. Using a combination of cellular, biochemical, and computational methods, we establish a critical contribution of a species-specific aromatic architecture that is essential for target engagement. The results described here provide valuable insights for the rational development of second-generation FSP1 inhibitors combined with a tracer for screening the druggable pocket. In addition, we pose a cautionary notice for using iFSP1 in animal models, specifically murine models.
Insights
First-generation ferroptosis suppressor protein 1 (FSP1) inhibitors like iFSP1 show species-specific activity. Understanding this mechanism aids in developing new cancer therapies and highlights caution for iFSP1 use in murine models.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Ferroptosis, a cell death pathway involving lipid peroxidation, is a therapeutic target for refractory cancers.
- Ferroptosis suppressor protein 1 (FSP1) regulates ferroptosis sensitivity; its inhibition sensitizes cancer cells.
- First-generation FSP1 inhibitors, such as iFSP1, exist but lack detailed mechanistic understanding.
Purpose of the Study:
- To investigate the species-specific inhibition of iFSP1 on human FSP1.
- To elucidate the molecular mechanisms underlying iFSP1's action.
- To inform the development of novel FSP1 inhibitors and screening tools.
Main Methods:
- Cellular assays
- Biochemical analyses
- Computational modeling
Main Results:
- Identified a species-specific aromatic architecture crucial for iFSP1 target engagement.
- Demonstrated that this architecture is essential for iFSP1's inhibitory activity.
- Provided insights into the druggable pocket of FSP1.
Conclusions:
- The species-specific nature of iFSP1 inhibition is critical for its mechanism of action.
- Findings facilitate the rational design of next-generation FSP1 inhibitors.
- Caution is advised when using iFSP1 in murine models due to species-specific differences.

