1. Academic Validation
  2. Precision-Engineered Silver Single-Atom Carbon Dot Nanozymes for Theranostic Management of Acute Kidney Injury

Precision-Engineered Silver Single-Atom Carbon Dot Nanozymes for Theranostic Management of Acute Kidney Injury

  • Adv Sci (Weinh). 2026 Jan 15:e19393. doi: 10.1002/advs.202519393.
Tianle Tang 1 Jun Zhang 1 Yan Wang 2 Guoping Chen 3 Kehui Yuan 3 Yuan He 1 Chenchen Li 2 Sumaira Hanif 1 Yang Yang 2 Yanli Wang 2 Pir Muhammad 2
Affiliations

Affiliations

  • 1 NHC Key Laboratory of Tropical Disease Control, School of Life Sciences and Medical Technology, Hainan Medical University, Haikou, Hainan, China.
  • 2 International Joint Research Center of Human-machine Intelligent Collaborative for Tumor Precision Diagnosis and Treatment of Hainan Province, Engineering Research Center of Tropical Medicine Innovation and Transformation of Ministry of Education, School of Pharmacy, Hainan Academy of Medical Sciences, Hainan Medical University, Haikou, Hainan, China.
  • 3 The First Affiliated Hospital of Hainan Medical University, Hainan Medical University, Haikou, China.
Abstract

Overproduction of Reactive Oxygen Species (ROS) is a key pathogenic feature in acute kidney injury (AKI), leading to rapid decline in renal function with high mortality rates that call for effective antioxidant therapies. Herein, we present triphenylphosphonium-functionalized carbon dots supported by single-atom silver (T-AgSA-CDs) that integrate fluorescent antioxidant nanozymes for the accurate ROS scavenging and real-time bioimaging of AKI. By anchoring silver in single-atom and sub-nanocluster states on a carbon dot matrix, T-AgSA-CDs exhibit exceptional superoxide dismutase (SOD)- and Glutathione Peroxidase (GPx)-like activities, surpassing traditional nanozymes in ROS neutralization efficiency. Density functional theory (DFT) calculations disclose a low-energy reaction pathway common to both nitrogen-doped carbon dots (N-CDs) and AgSA-CDs, clarifying the mechanism behind their dual SOD- and GPx-mimetic activities. The biocompatible N-CDs platform guarantees the stability, minimizes Ag+-associated toxicity, and enhances catalytic performance through synergistic AgSA-CD interactions. Targeting mitochondria through triphenylphosphonium functionalization facilitates site-specific antioxidant protection, demonstrating robust therapeutic efficacy in a cisplatin-induced AKI mouse model. Additionally, the intrinsic fluorescence of T-AgSA-CDs facilitates non-invasive monitoring of biodistribution and renal accumulation, promotes the recovery of damaged kidney tissue, alleviates oxidative stress and post-cure assessment, and offers a self-reported theranostic platform, while also aiming to improve its clinical application.

Keywords

ROS scavenging; acute kidney injury; antioxidant nanozyme; single‐atom Ag; theranostic.

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