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Updated: Aug 28, 2026

Biofilm Removal Using Carbon Dioxide Aerosols without Nitrogen Purge
Published on: November 6, 2016
Bio-adhesive cationic carbon dots enable photodynamic reactive oxygen species generation for cariogenic biofilm
Huan Chen1, Jia Liu2, Xiao Han2
1Department of Prosthetic Dentistry, School and Hospital of Stomatology, Jilin University, Changchun, 130021, PR China.
Abstract:
Bacterial infections remain a major threat to human health and are often difficult to eradicate once bacteria establish structured communities. In the oral cavity, this challenge is exemplified by dental caries, a highly prevalent chronic infectious disease driven by cariogenic biofilms dominated by Streptococcus mutans (S. mutans). To develop an efficient antimicrobial strategy for cariogenic biofilms, we synthesized D-lysine-derived cationic carbon dots (Lys-CDs) through a facile hydrothermal method and investigated their photodynamic antibacterial activity. The resulting Lys-CDs are water-dispersible and exhibit favorable cytocompatibility under the tested conditions. Their positive surface charge enhanced association with biofilm-associated bacterial communities. Under blue-light irradiation (450 nm), Lys-CDs generate abundant reactive oxygen species (ROS), inducing membrane destabilization and causing substantial structural alterations of mature biofilms. In mature S. mutans biofilms, Lys-CDs + light achieved over 99% bacterial killing, reduced biofilm thickness by about 70%, and increased ROS production. Mechanistic assays and transcriptomic profiling collectively suggested a ROS-driven multi-hit mode involving membrane permeabilization, oxidative stress amplification, and broad suppression of pathways associated with energy metabolism, envelope biogenesis, and stress regulation. In a rat caries model, topical Lys-CDs + light effectively inhibited caries progression. Collectively, this work provides experimental evidence supporting that biophilic cationic Lys-CDs can acts as a simple photodynamic strategy for cariogenic biofilms control and attenuate caries development under the investigated experimental conditions.

