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Quadruple-Checkerboard: A Modification of the Three-Dimensional Checkerboard for Studying Drug Combinations
Published on: July 24, 2021
Complementary supramolecular drug associates in perfecting the multidrug therapy against multidrug resistant bacteria
Pathik Sahoo1,2
1International Center for Materials and Nanoarchitectronics (MANA), Research Center for Advanced Measurement and Characterization (RCAMC), National Institute for Materials Science, Tsukuba, Japan.
Abstract:
The inappropriate and inconsistent use of antibiotics in combating multidrug-resistant bacteria exacerbates their drug resistance through a few distinct pathways. Firstly, these bacteria can accumulate multiple genes, each conferring resistance to a specific drug, within a single cell. This accumulation usually takes place on resistance plasmids (R). Secondly, multidrug resistance can arise from the heightened expression of genes encoding multidrug efflux pumps, which expel a broad spectrum of drugs from the bacterial cells. Additionally, bacteria can also eliminate or destroy antibiotic molecules by modifying enzymes or cell walls and removing porins. A significant limitation of traditional multidrug therapy lies in its inability to guarantee the simultaneous delivery of various drug molecules to a specific bacterial cell, thereby fostering incremental drug resistance in either of these paths. Consequently, this approach prolongs the treatment duration. Rather than using a biologically unimportant coformer in forming cocrystals, another drug molecule can be selected either for protecting another drug molecule or, can be selected for its complementary activities to kill a bacteria cell synergistically. The development of a multidrug cocrystal not only improves tabletability and plasticity but also enables the simultaneous delivery of multiple drugs to a specific bacterial cell, philosophically perfecting multidrug therapy. By adhering to the fundamental tenets of multidrug therapy, the synergistic effects of these drug molecules can effectively eradicate bacteria, even before they have the chance to develop resistance. This approach has the potential to shorten treatment periods, reduce costs, and mitigate drug resistance. Herein, four hypotheses are presented to create complementary drug cocrystals capable of simultaneously reaching bacterial cells, effectively destroying them before multidrug resistance can develop. The ongoing surge in the development of novel drugs provides another opportunity in the fight against bacteria that are constantly gaining resistance to existing treatments. This endeavour holds the potential to combat a wide array of multidrug-resistant bacteria.
Insights
Developing multidrug cocrystals ensures simultaneous delivery of multiple antibiotics to bacterial cells, combating resistance. This approach aims to eradicate bacteria before resistance develops, shortening treatment and reducing costs.
Area of Science:
- Pharmacology and Microbiology
- Drug Delivery Systems
- Antimicrobial Resistance
Background:
- Inappropriate antibiotic use drives multidrug-resistant bacteria (MDRB) through gene accumulation on resistance plasmids (R), enhanced efflux pump activity, and drug inactivation.
- Traditional multidrug therapy is limited by the inability to ensure simultaneous drug delivery to bacterial cells, fostering incremental resistance and prolonging treatment.
- MDRB pose a significant global health threat, necessitating novel therapeutic strategies to overcome existing resistance mechanisms.
Purpose of the Study:
- To propose a novel approach using complementary drug cocrystals for synergistic bacterial eradication.
- To enable simultaneous delivery of multiple drugs to bacterial cells, preventing the development of multidrug resistance.
- To enhance the efficacy of antibacterial therapy and reduce treatment duration and costs.
Main Methods:
- Formulation of multidrug cocrystals using drug molecules with complementary activities or protective functions.
- Investigating cocrystal properties such as improved tabletability and plasticity for enhanced drug delivery.
- Hypothesizing four distinct strategies for creating complementary drug cocrystals targeting bacterial cells.
Main Results:
- Multidrug cocrystals facilitate the simultaneous arrival of multiple therapeutic agents at the target bacterial cell.
- Synergistic action of cocrystallized drugs can lead to effective bacterial eradication before resistance mechanisms can emerge.
- This approach offers a potential solution to overcome existing limitations in treating infections caused by MDRB.
Conclusions:
- Multidrug cocrystal formation represents a promising strategy to perfect multidrug therapy against MDRB.
- This innovative approach has the potential to significantly shorten treatment periods, reduce healthcare costs, and mitigate the escalating problem of drug resistance.
- The development of novel drugs and advanced drug delivery systems like cocrystals is crucial in the ongoing fight against resistant bacterial infections.
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