Engineering Ultra‐Small Cerium‐Based Metal–Organic Frameworks Nanozymes for Efficient Antioxidative Treatment of Dry Eye Disease

Author:

Chen Zhongxing12ORCID,Li Zheng123,Tang Nana4,Huang Yida5,Li Siheng3,Xu Wenjin3,Wang Qing16,Chen Xin12,Zhao Nan127,Zeng Zhenhai12,Xiao Yichen12,Chen Xinyi123,Li Jiawei123,Zhou Xingtao12,Li Guisheng8ORCID,Yang Mei12,Huang Jinhai12

Affiliation:

1. Eye Institute and Department of Ophthalmology Eye & ENT Hospital Key Laboratory of Myopia Chinese Academy of Medical Sciences Fudan University Shanghai 200030 P. R. China

2. Shanghai Research Center of Ophthalmology and Optometry Shanghai 200030 P. R. China

3. School of Ophthalmology and Optometry and Eye Hospital Wenzhou Medical University Wenzhou Zhejiang 325027 P. R. China

4. Department of Ophthalmology Lu'an People's Hospital of Anhui Province Lu'an Hospital Affiliated to Anhui Medical University Lu'an Anhui 237000 P. R. China

5. The Affiliated Eye Hospital Naniing Medical University Nanjing 200025 P. R. China

6. Department of Ophthalmology The Second Affiliated Hospital of Nanchang University Jiangxi 330000 P. R. China

7. School of Chemical Engineering Northeast Electric Power University Jilin 132000 P. R. China

8. School of Materials and Chemistry University of Shanghai for Science and Technology Shanghai 200093 P. R. China

Abstract

AbstractDry eye disease (DED) is a widespread ophthalmic illness that inflicts massive economic and medical burdens on society. Although oxidative stress is closely associated with the onset of DED, barely any quantities of antioxidants are clinically available owing to low efficiency, toxicity, and poor bioavailability. Cerium‐based nanozymes possess promising enzyme‐mimetic activities in scavenging reactive oxygen species (ROS). Moreover, the ultra‐small metal–organic frameworks (MOFs) have the potential for more efficient drug delivery, ROS elimination, and therapeutic efficacy. However, the development of ultra‐small cerium‐based MOFs (Ce‐MOFs) is limited to a small minority due to challenges in the synthetic process and stability. By simply adjusting raw ingredients concentrations, three types of Ce‐MOFs with distinct particle sizes are synthesized: Ce‐MOF 1 (213 nm), Ce‐MOF 2 (36 nm), and Ce‐MOF 3 (2 nm). In comparison, the obtained ultra‐small Ce‐MOF 3 exhibited superior ROS scavenging and antioxidant capacity, decreased cytotoxicity, and excellent ocular penetration. Therapeutically, Ce‐MOF 3 is demonstrated to be highly efficient in alleviating DED by suppressing oxidative stress and inflammation, boosting corneal epithelial repair, and facilitating tear secretion recovery. The novel ultra‐small Ce‐MOF 3 may serve as a promising alternative treatment for DED and other ROS‐related disorders when combined with ocular biocompatibility.

Funder

National Natural Science Foundation of China

Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutions of Higher Learning

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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