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Dynamic nitric oxide/drug codelivery system based on polyrotaxane architecture for effective treatment of Candida
Guowei Li1, Kai Lv2, Xiangjun Pan3
1Department of Nuclear Medicine and PET/CT-MRI Center, The First Affiliated Hospital of Jinan University, Guangzhou, 510630, China; Key Laboratory of Biomaterials of Guangdong Higher Education Institutes, Department of Biomedical Engineering, Jinan University, Guangzhou 510632, China.
Abstract:
The low permeability of antifungal agents to fungal biofilms, which allows the continued survival of the fungus inside, is a key issue that makes fungal infections difficult to cure. Inspired by the unique dynamic molecule motion properties of the polyrotaxane (PR) nanomedicine, herein, a dynamic delivery system Clo@mPRP/NONOate was fabricated by co-loading nitric oxide (NO) and the antifungal drug clotrimazole (Clo) onto the α-cyclodextrin (α-CD) PR modified mesoporous polydopamine (mPDA) nanoparticles, in which pentaethylenehexamine (PEHA) was grafted to α-CDs. The cationic α-CDs endowed this dynamic NO/Clo codelivery system with the ability to effectively attach to fungal biofilms through electrostatic interaction, while the introduction of PRs with flexible molecule motion (slide and rotation of CDs) enhanced the permeability of nanoparticles to biofilms. Meanwhile, NO could effectively inhibit the formation of fungal hyphae, showing an dissipating effect on mature biofilms, and could be further combined with Clo to completely eradicate fungi inside the biofilms. In addition, the dynamic system Clo@mPRP/NONOate could efficiently and synergistically eliminate planktonic Candida albicans (C. albicans) in a safe and no toxic side effect manner, and effectively cured C. albicans-induced vaginal infection in mice. Therefore, this dynamic NO/Clo codelivery system provided an effective solution to the clinical treatment of C. albicans-induced vaginal infection, and the application prospect could even be extended to other microbial infectious diseases. STATEMENT OF SIGNIFICANCE: A dynamic codelivery system based on cationized cyclodextrin polyrotaxane combining nitric oxide and antifungal drugs clotrimazole was prepared to deal with the issue of clinical fungal biofilm infection. This dynamic codelivery system could be attached to the Candida albicans biofilms and penetrate into biofilm via flexible molecular mobility to effectively eradicate the fungi. This dynamic codelivery system could synergistically and efficiently eliminate planktonic-state Candida albicans, but did not show significant cytotoxicity to normal somatic cells.
Insights
A novel dynamic nanomedicine system co-delivers nitric oxide and clotrimazole, effectively penetrating fungal biofilms to eradicate Candida albicans. This innovative approach offers a safe and efficient treatment for fungal infections, including vaginal infections in mice.
Area of Science:
- Biomaterials Science
- Nanomedicine
- Infectious Diseases
Background:
- Fungal biofilm infections are challenging to treat due to poor antifungal drug penetration.
- Polyrotaxane (PR) nanomedicine exhibits unique dynamic molecular motion properties.
- Developing effective delivery systems for antifungal agents is crucial.
Purpose of the Study:
- To fabricate a dynamic drug delivery system for enhanced antifungal efficacy against fungal biofilms.
- To co-load nitric oxide (NO) and clotrimazole (Clo) onto a modified polyrotaxane nanocarrier.
- To investigate the system's ability to penetrate biofilms and eradicate Candida albicans.
Main Methods:
- Fabrication of a dynamic delivery system (Clo@mPRP/NONOate) using modified mesoporous polydopamine nanoparticles with polyrotaxane and co-loaded NO and Clo.
- Grafting pentaethylenehexamine (PEHA) to α-cyclodextrins (α-CDs) to create cationic α-CDs for biofilm attachment.
- Utilizing the flexible molecular motion of PRs to enhance nanoparticle permeability into biofilms.
Main Results:
- The cationic system effectively attached to fungal biofilms via electrostatic interaction.
- The dynamic PR structure enhanced nanoparticle penetration into biofilms.
- Co-delivery of NO and Clo synergistically eradicated planktonic Candida albicans and eliminated fungi within biofilms.
- The system demonstrated effective treatment of a mouse model of vaginal candidiasis with no significant toxicity.
Conclusions:
- The dynamic NO/Clo codelivery system provides an effective solution for treating Candida albicans biofilm infections.
- This nanomedicine approach shows promise for clinical treatment of vaginal candidiasis and potentially other microbial infections.
- The system's ability to penetrate biofilms and deliver synergistic antifungal action is a significant advancement.
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