Compartmentalization into Outer and Inner Shells of Hollow Nanospheres for Antibiosis Based on Chemistry and Physical Damages

Author:

Sheng Chengju12ORCID,Ding Yanjun1,Guo Mingming1ORCID

Affiliation:

1. School of Chemistry and Chemical Engineering Southwest University Chongqing 400715 P. R. China

2. Department of Materials Science and Engineering Monash Institute of Medical Engineering Monash University Clayton VIC 3800 Australia

Abstract

AbstractThere is a substantially ascending demand for nonantibiotic strategies to overcome the resistance of bacterial infections. Here, the discovery of a distinctive antibacterial structure is reported. The novel structure of nanoparticle strategy is proposed for appreciable bacteria killing by the smart design of the delayed addition of crosslinkers into the reaction mixture. [2‐(methacryloyloxy)ethyl]trimethylammonium chloride solution (MTCl), a water‐soluble ionic liquid (IL), has narrow‐size material distribution, good whiteness, and high weather resistance. The quaternary ammonium salt is utilized to efficiently permeate cell membranes through electrostatic interaction, accordingly, boasting a beneficiary of antibacterial properties. More importantly, it allows bacteria to attach the nanomaterials easily, especially the double‐shelled nanosphere. In light of the introduction of 9‐amino(9‐deoxy)ep‐quinine (QNNH2) on its inner shell, it blocks the nucleic acid and glucose metabolism in bacteria, which is betterment of the antibacterial activity of double‐shelled structure nanoparticle compared to other structure of nanomaterials. This physical/chemical/biological triple antibacterial process eliminates the need for traditional antibiotics, and the fabrication strategies and material properties described here provide insights into the design of antibacterial nanomaterials based on chemical and physical effects.

Funder

Southwest University

Publisher

Wiley

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