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Multidrug Resistance Reversed by Maleimide Interactions. A Biological and Synthetic Overview for an Emerging Field
Edson D Hernández-Velázquez1, Angelica J Granados-López2, Jesús Adrián López2
1Campus Guanajuato, División de Ciencias Naturales y Exactas, Departamento de Química, Universidad de Guanajuato, Noria Alta S/N, 36050, Guanajuato, Gto., México.
Abstract:
Multidrug Resistance (MDR) can be considered one of the most frightening adaptation types in bacteria, fungi, protozoa, and eukaryotic cells. It allows the organisms to survive the attack of many drugs used in the daily basis. This forces the development of new and more complex, highly specific drugs to fight diseases. Given the high usage of medicaments, poor variation in active chemical cores, and self-medication, the appearance of MDR is more frequent each time, and has been established as a serious medical and social problem. Over the years it has been possible the identification of several genes and proteins responsible for MDR and with that the development of blockers of them to reach MDR reversion and try to avoid a global problem. These mechanisms also have been observed in cancer cells, and several calcium channel blockers have been successful in MDR reversion, and the maleimide can be found included in them. In this review, we explore particularly the tree main proteins involved in cancer chemoresistance, MRP1 (encoded by ABCC1), BCRP (encoded by ABCG2) and P-gp (encoded by ABCB1). The participation of P-gp is remarkably important, and several aspects of its regulations are discussed. Additionally, we address the history, mechanisms, reversion efforts, and we specifically focused on the maleimide synthesis as MDR-reversers in co-administration, as well as on how their biological applications are imperative to expand the available information and explore a very plausible MDR reversion source.
Insights
Multidrug Resistance (MDR) is a major health threat. This review explores maleimide synthesis as a potential strategy to reverse MDR by targeting key proteins like P-gp, MRP1, and BCRP.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Multidrug Resistance (MDR) is a significant challenge in treating various diseases, including cancer.
- MDR arises from cellular mechanisms allowing organisms to survive multiple drugs, necessitating new therapeutic strategies.
- Key proteins like P-glycoprotein (P-gp), MRP1, and BCRP are central to MDR in cancer cells.
Purpose of the Study:
- To review the mechanisms of MDR, focusing on P-gp, MRP1, and BCRP.
- To explore the potential of maleimide synthesis as a strategy for MDR reversion.
- To discuss the biological applications and imperative of maleimide-based MDR reversal.
Main Methods:
- Review of existing literature on MDR mechanisms and reversion strategies.
- Focus on the role of specific efflux pump proteins (ABCB1, ABCC1, ABCG2).
- Analysis of maleimide synthesis and its application in co-administration for MDR reversion.
Main Results:
- Identification of P-gp, MRP1, and BCRP as crucial proteins in cancer chemoresistance.
- Discussion of P-gp regulation and its significant role in MDR.
- Exploration of maleimide derivatives as potential MDR reversers.
Conclusions:
- Maleimide synthesis presents a plausible and imperative source for MDR reversion strategies.
- Co-administration of maleimides with existing therapies may overcome chemoresistance.
- Further research into maleimide's biological applications is crucial for expanding MDR treatment options.
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