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Updated: May 7, 2026

Microfabricated Platforms for Mechanically Dynamic Cell Culture
Published on: December 26, 2010
Quaternized microcrystalline cellulose as a surface-engineered polysaccharide carrier for regulating ICG aggregates
Yi Zhang1, Zhipeng Qiu2, Bo Liu3
1School of Food Science and Engineering, Guangdong Province Key Laboratory for Green Processing of Natural Products and Product Safety, Engineering Research Center of Starch and Vegetable Protein Processing Ministry of Education, South China University of Technology, Guangzhou, 510640, China.
Abstract:
Sustainable polysaccharide-based carriers offer a promising route to overcome the instability and aggregation issues of indocyanine green (ICG), a clinically approved phototherapy dye. In this study, a scalable approach is presented to construct quaternized microcrystalline cellulose (QMCC) carriers with tunable surface charge for stabilized and high-capacity ICG loading. By modulating the degree of quaternary ammonium substitution, QMCC effectively modulated ICG aggregation behavior, promoting the formation of broadened and red-shifted near-infrared absorption bands with enhanced photostability. Among them, QMCC2-ICG exhibited a balanced electrostatic and steric environment through the π-π stacking interaction, favoring the formation of hybrid aggregates with broad-spectrum absorption profiles and superior optical stability. This enabled high ICG loading (388.3 mg/g), elevated photothermal conversion efficiency (55.0 %), and robust singlet oxygen generation. 4 T1 in vitro experiments demonstrated improved cell phototoxicity, ROS-mediated cytotoxicity, and tumor cell migration inhibition. In vivo, QMCC2-ICG also showed excellent hemocompatibility and enabled strong photoacoustic imaging and tumor ablation in 4 T1-bearing mice. Histological and molecular assays confirmed apoptosis induction, proliferation inhibition, and biosafety. This work presents a sustainable polysaccharide platform that enables aggregation-state control and excited-state tuning for improved multimodal phototherapy, highlighting the role of surface charge and morphology in driving green therapeutic material design.
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