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N-phenylmaleimides affect adipogenesis and present antitumor activity through reduction of FASN expression
Daiane Rosolen1, Iara Fabrícia Kretzer1, Evelyn Winter1
1Departamento de Ciências Farmacêuticas, Centro de Ciências da Saúde, Universidade Federal de Santa Catarina, Florianópolis, SC, Brazil.
Abstract:
In light of the evidence that in contrast to most healthy tissues, several neoplasms overexpress fatty acid synthase (FASN) upon their dependence on increased lipogenesis; targeting of this protein is being considered as a valuable strategy in anticancer drug development. This can be particularly relevant for aggressive tumors such as melanoma in which FASN overexpression has been associated with increased depth of invasion and worse prognosis. We have previously shown that a sub-class of cyclic imides, the N-phenylmaleimides, presented antitumor activity against L1210 leukemia and B16F10 melanoma with evidences of interference in the energetic metabolism. Here, we aimed to investigate if some selected N-phenylmaleimides (M1 and M5) interfere with fatty acids metabolism and its relation with cancer. For that, a model of pre-adipocytes differentiation (3T3-L1 cells) and also human melanoma cells (SK-Mel-147) were used. As results, when 3T3-L1 cells were exposed to non-cytotoxic concentrations of M1 and M5 in the presence of an adipogenic cocktail, intracellular lipid content decreased by 26-36%, marking the inhibition of adipocyte differentiation. High selectivity indexes were obtained for both compounds for tumoral cells. Cell cycle phases analysis revealed a remarkable proportion of cells with DNA fragmentation after their exposure to M1 and M5. This was correlated to both apoptosis and necrosis, showed by Annexin-V/PI assay. Furthermore, M1 and M5 reduced FASN expression by 19-39%, respectively. In conclusion, M1 and M5 presented antiadipogenic and antitumoral activities. The antitumoral activity that was associated to apoptosis and necrosis is a possible consequence of the FASN reduction, which in turn, might result in a fuel decrease to cell proliferation. As it happens with antiangiogenic activity, reduction of fatty acid synthesis might be a potential target for cancer treatment in a strategy of hunger-strike, which valorizes these N-phenylmaleimides as candidates for drug development.
Insights
New N-phenylmaleimides (M1 and M5) inhibit fatty acid synthase (FASN), reducing lipid production and showing anti-cancer effects against melanoma cells by inducing apoptosis and necrosis.
Area of Science:
- Biochemistry
- Oncology
- Pharmacology
Background:
- Fatty acid synthase (FASN) is overexpressed in many cancers, driving lipogenesis and tumor growth.
- Targeting FASN is a promising anticancer strategy, especially for aggressive tumors like melanoma.
- N-phenylmaleimides have shown antitumor activity and interference with cellular energy metabolism.
Purpose of the Study:
- To investigate if N-phenylmaleimides M1 and M5 interfere with fatty acid metabolism.
- To evaluate the antiadipogenic and antitumoral effects of M1 and M5.
- To explore the relationship between FASN inhibition and cancer cell death.
Main Methods:
- Used 3T3-L1 pre-adipocytes to assess adipocyte differentiation and lipid content.
- Utilized human melanoma cells (SK-Mel-147) to evaluate antitumoral activity.
- Analyzed cell cycle, apoptosis/necrosis (Annexin-V/PI assay), and FASN expression.
Main Results:
- M1 and M5 inhibited adipocyte differentiation, decreasing intracellular lipid content by 26-36%.
- Both compounds demonstrated high selectivity for tumor cells and induced DNA fragmentation, apoptosis, and necrosis.
- M1 and M5 reduced FASN expression by 19% and 39%, respectively.
Conclusions:
- N-phenylmaleimides M1 and M5 possess antiadipogenic and antitumoral properties.
- The observed antitumoral activity is linked to FASN reduction, potentially starving cancer cells of fuel.
- These compounds represent potential drug candidates for cancer therapy by targeting fatty acid synthesis.
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