Engineering a nanoantibiotic system displaying dual mechanism of action

Author:

Xing Huihua1ORCID,de Campos Luana Janaína1ORCID,Pereira Aramis Jose1,Fiora Maria Mercedes234,Aguiar-Alves Fabio5,Tagliazucchi Mario34ORCID,Conda-Sheridan Martin1ORCID

Affiliation:

1. Department of Pharmaceutical Sciences, College of Pharmacy, University of Nebraska Medical Center, Omaha, NE 68198

2. Instituto Nacional de Tecnología Industrial, Micro y Nanotecnologías, San Martín, Buenos Aires B1650WAB, Argentina

3. Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Departamento de Química Inorgánica Analítica y Química Física, Pabellón 2, Ciudad Universitaria, Ciudad Autónoma de Buenos Aires C1428, Argentina

4. Universidad de Buenos Aires-Consejo Nacional de Investigaciones Cientificas y Tecnicas, Facultad de Ciencias Exactas y Naturales, Instituto de Quimica de los Materiales, Ambiente y Energia, Pabellon 2, Ciudad Universitaria, Ciudad Autonoma de Buenos Aires C1428

5. Department of Pharmaceutical Sciences, Lloyd L. Gregory School of Pharmacy, Palm Beach Atlantic University, FL 33401

Abstract

In recent decades, peptide amphiphiles (PAs) have established themselves as promising self-assembling bioinspired materials in a wide range of medical fields. Herein, we report a dual-therapeutic system constituted by an antimicrobial PA and a cylindrical protease inhibitor (LJC) to achieve broad antimicrobial spectrum and to enhance therapeutic efficacy. We studied two strategies: PA–LJC nanostructures ( Encapsulation ) and PA nanostructures + free LJC ( Combination ). Computational modeling using a molecular theory for amphiphile self-assembly captures and explains the morphology of PA–LJC nanostructures and the location of encapsulated LJC in agreement with transmission electron microscopy and two-dimensional (2D) NMR observations. The morphology and release profile of PA–LJC assemblies are strongly correlated to the PA:LJC ratio: high LJC loading induces an initial burst release. We then evaluated the antimicrobial activity of our nanosystems toward gram-positive and gram-negative bacteria. We found that the Combination broadens the spectrum of LJC, reduces the therapeutic concentrations of both agents, and is not impacted by the inoculum effect. Further, the Encapsulation provides additional benefits including bypassing water solubility limitations of LJC and modulating the release of this molecule. The different properties of PA–LJC nanostructures results in different killing profiles, and reduced cytotoxicity and hemolytic activity. Meanwhile, details in membrane alterations caused by each strategy were revealed by various microscopy and fluorescent techniques. Last, in vivo studies in larvae treated by the Encapsulation strategy showed better antimicrobial efficacy than polymyxin B. Collectively, this study established a multifunctional platform using a versatile PA to act as an antibiotic, membrane-penetrating assistant, and slow-release delivery vehicle.

Funder

US-Egypt Joint Board on Scientific and Technological Cooperation

National Science Foundation

Consejo Nacional de Investigaciones Científicas y Técnicas

Publisher

Proceedings of the National Academy of Sciences

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