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Repurposing FDA-Approved Drugs as Fructosamine-3-Kinase Inhibitors: A Mechanistic and Translational Approach to
Erica Alves1, Gurupadayya Bannimath1, Prabitha Prabhakaran1
1Department of Pharmaceutical Chemistry, JSS College of Pharmacy, JSS Academy of Higher Education & Research, Mysore, India.
Abstract:
Fructosamine-3-kinase (FN3K), a deglycating enzyme originally studied in the context of diabetes, has recently emerged as a pivotal modulator of redox homeostasis and therapeutic resistance in cancer. FN3K catalyzes the removal of early glycation adducts, thereby stabilizing redox-sensitive proteins such as Nuclear factor erythroid 2-related factor 2 (Nrf2), a key transcriptional regulator of antioxidant defense. This review explores the evolving role of FN3K in tumor metabolism, highlighting its expression patterns across cancer types, structural features amenable to therapeutic targeting, and mechanistic interplay with the Nrf2 pathway. Emphasis is placed on FDA-approved drugs with FN3K-modulatory potential, evaluated through computational modeling, docking simulations, and structure - activity insights. The analysis reveals a dual opportunity: to repurpose redox-active agents as FN3K inhibitors and to exploit FN3K as a biomarker for redox stratification in precision oncology. Despite promising in silico data and preclinical correlations, challenges remain - particularly in achieving target selectivity, overcoming structural limitations, and validating pharmacodynamic markers. Addressing these barriers through integrated translational strategies could unlock FN3K as a tractable node in redox-driven cancer therapy.
Insights
Fructosamine-3-kinase (FN3K) impacts cancer by regulating redox balance and drug resistance, offering new therapeutic targets. Targeting FN3K could improve cancer treatment strategies and patient stratification.
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Fructosamine-3-kinase (FN3K) is a deglycating enzyme involved in diabetes.
- FN3K modulates redox homeostasis and therapeutic resistance in cancer.
- FN3K stabilizes redox-sensitive proteins like Nuclear factor erythroid 2-related factor 2 (Nrf2).
Purpose of the Study:
- To review the role of FN3K in tumor metabolism and cancer therapy.
- To explore FN3K expression, structure, and its interplay with the Nrf2 pathway.
- To identify FDA-approved drugs with FN3K-modulatory potential for cancer treatment.
Main Methods:
- Computational modeling and docking simulations were used.
- Structure-activity relationship insights were evaluated.
- Preclinical data and in silico findings were analyzed.
Main Results:
- FN3K plays a dual role in cancer: as a potential therapeutic target and a biomarker.
- Repurposing redox-active agents as FN3K inhibitors is a viable strategy.
- FN3K can be used for redox stratification in precision oncology.
Conclusions:
- FN3K is a promising target for redox-driven cancer therapy.
- Challenges include target selectivity, structural limitations, and pharmacodynamic marker validation.
- Integrated translational strategies are needed to overcome barriers and leverage FN3K's therapeutic potential.
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