AIBI Modified Mesoporous Copper Sulfide Nanocomposites for Efficient Non‐Oxygen Dependent Free Radicals‐Assisted Photothermal Therapy in Uveal Melanoma

Author:

Huang Pingping12,Kong Lingdan1,Zhang Feiyu3,Chen Linxin1,Zhang Yue1,Shi Xiaoqian1,Lawson Tom4,Chou Shulei5ORCID,Liu Yong1ORCID,Wu Wencan12

Affiliation:

1. Eye Hospital School of Ophthalmology and Optometry School of Biomedical Engineering State Key Laboratory of Ophthalmology Optometry and Vision Science Wenzhou Medical University 270 Xuanyuanxi Road Wenzhou Zhejiang 325027 China

2. Oujiang Laboratory (Zhejiang Lab for Regenerative Medicine Vision and Brain Health) Wenzhou Zhejiang 325000 China

3. Department of Otolaryngology‐Head and Neck Surgery First Affiliated Hospital Guangzhou Medical University Guangzhou Guangdong 511495 China

4. School of Chemical Engineering University of New South Wales Sydney NSW 2052 Australia

5. Technology Innovation Institute for Carbon Neutralization College of Chemistry and Materials Engineering Wenzhou University Wenzhou University Town Wenzhou Zhejiang 325035 China

Abstract

AbstractUveal melanoma (UM) is an ocular cancer predominantly affecting adults, characterized by challenging diagnostic outcomes. This research endeavors to develop an innovative multifunctional nanocomposite system sensitive to near‐infrared (NIR) radiation, serving as both a non‐oxygen free‐radical generator and a photothermal agent. The designed system combines azobis isobutyl imidazoline hydrochloride (AIBI) with mesoporous copper sulfide (MCuS) nanoparticles. MCuS harnesses NIR laser energy to induce photothermal therapy, converting light energy into heat to destroy cancer cells. Simultaneously, AIBI is activated by the NIR laser to produce alkyl radicals, which induce DNA damage in remaining cancer cells. This distinctive feature equips the designed system to selectively eliminate cancers in the hypoxic tumor microenvironment. MCuS is also beneficial to scavenge the overexpressed glutathione (GSH) in the tumor microenvironment. GSH generally consumes free radicals and hiders the PDT effect. To enhance control over AIBI release in cancer cells, 1‐tetradecyl alcohol (TD), a phase‐changing material, is introduced onto the surface of MCuS nanoparticles to create the final AMPT nanoparticle system. In vitro and in vivo experiments confirm the remarkable anti‐tumor efficacy of AMPT. Notably, the study introduces an orthotopic tumor model for UM, demonstrating the feasibility of precise and effective targeted treatment within the ocular system.

Funder

National Natural Science Foundation of China

Key Research and Development Program of Zhejiang Province

Publisher

Wiley

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