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Updated: Aug 18, 2025

Photodegradable Hydrogel Interfaces for Bacteria Screening, Selection, and Isolation
Published on: November 4, 2021
A Self-Forming Hydrogel from a Bactericidal Copolymer: Synthesis, Characterization, Biological Evaluations and
Silvana Alfei1, Alessia Zorzoli2, Danilo Marimpietri2
1Department of Pharmacy, University of Genoa, Viale Cembrano, 16148 Genoa, Italy.
Abstract:
Objects touched by patients and healthcare workers in hospitals may harbor pathogens, including multi-drug resistant (MDR) staphylococci, enterococci (VRE), Escherichia coli, Acinetobacter, and Pseudomonas species. Medical devices contaminated by these pathogens may also act as a source of severe and difficult-to-treat human infections, thus becoming a critical public health concern requiring urgent resolutions. To this end, we recently reported the bactericidal effects of a cationic copolymer (CP1). Here, aiming at developing a bactericidal formulation possibly to be used either for surfaces disinfection or to treat skin infections, CP1 was formulated as a hydrogel (CP1_1.1-Hgel). Importantly, even if not cross-linked, CP1 formed the gel upon simple dispersion in water, without requiring gelling agents or other additives which could be skin-incompatible or interfere with CP1 bactericidal effects in possible future topical applications. CP1_1.1-Hgel was characterized by attenuated-total-reflectance Fourier transform infrared (ATR-FTIR) and UV-Vis spectroscopy, as well as optic and scanning electron microscopy (OM and SEM) to investigate its chemical structure and morphology. Its stability was assessed by monitoring its inversion properties over time at room temperature, while its mechanical characteristics were assessed by rheological experiments. Dose-dependent cytotoxicity studies performed on human fibroblasts for 24 h with gel samples obtained by diluting CP_1.1-Hgel at properly selected concentrations established that the 3D network formation did not significantly affect the cytotoxic profile of CP1. Also, microbiologic investigations carried out on two-fold serial dilutions of CP1-gel confirmed the minimum inhibitory concentrations (MICs) previously reported for the not formulated CP1.Selectivity indices values up to 12 were estimated by the values of LD50 and MICs determined here on gel samples.
Insights
A new hydrogel formulation of a cationic copolymer (CP1) effectively kills hospital pathogens without added agents. This formulation maintains bactericidal activity and shows low cytotoxicity, offering potential for surface disinfection and skin infection treatment.
Area of Science:
- Materials Science
- Microbiology
- Public Health
Background:
- Hospital surfaces and medical devices can harbor dangerous multi-drug resistant (MDR) pathogens.
- Contaminated items pose a significant risk for severe, difficult-to-treat infections and are a public health concern.
- Previous research demonstrated the bactericidal properties of a cationic copolymer (CP1).
Purpose of the Study:
- To develop a bactericidal hydrogel formulation (CP1_1.1-Hgel) from CP1.
- To evaluate its suitability for surface disinfection and topical treatment of skin infections.
- To assess the formulation's stability, mechanical properties, cytotoxicity, and antimicrobial efficacy.
Main Methods:
- CP1 was formulated into a hydrogel (CP1_1.1-Hgel) by simple dispersion in water.
- Characterization included spectroscopy (ATR-FTIR, UV-Vis) and microscopy (OM, SEM).
- Stability, mechanical properties (rheology), cytotoxicity (human fibroblasts), and antimicrobial activity (minimum inhibitory concentrations - MICs) were evaluated.
Main Results:
- CP1_1.1-Hgel formed a stable hydrogel without gelling agents, maintaining CP1's inherent bactericidal activity.
- Cytotoxicity studies showed no significant increase in toxicity compared to unformulated CP1.
- Selectivity indices up to 12 were estimated, indicating a favorable safety profile.
Conclusions:
- The CP1-based hydrogel is a promising, stable formulation with potent antimicrobial activity.
- Its low cytotoxicity and ease of formulation support its potential application in healthcare settings.
- This hydrogel offers a viable solution for combating hospital-acquired infections and treating skin infections.
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