4.8 Article

Catalase-Mimetic Artificial Biocatalysts with Ru Catalytic Centers for ROS Elimination and Stem-Cell Protection

期刊

ADVANCED MATERIALS
卷 34, 期 46, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202206208

关键词

catalytic reactive oxygen species elimination; enzyme-mimetic biocatalysts; metal-N coordination structures; stem-cell protection; tissue regeneration

资金

  1. National Natural Science Foundation of China [81825005, 52161145402]
  2. Med-X Innovation Programme of Med-X Center for Materials, Sichuan University, China [MCM202001, MCM202102]
  3. Sichuan Province Science and Technology Support Program [2021YFG0238]
  4. 1.3.5 Project for Disciplines of Excellence, West China Hospital, Sichuan University [ZYJC21047]

向作者/读者索取更多资源

It is important to explore high-efficiency ROS-elimination materials for combating oxidative stress in various diseases, especially in stem-cell-based biotherapeutics. This study reports an innovative concept of designing ROS-elimination artificial biocatalysts with Ru catalytic centers, which mimic the Fe-N active centers of natural catalase. The results show that the artificial biocatalysts with Ru cluster centers have exceptional ROS-elimination activity and can provide efficient protection for stem cells in high ROS level conditions.
Exploring high-efficiency reactive oxygen species (ROS)-elimination materials is of great importance for combating oxidative stress in diverse diseases, especially stem-cell-based biotherapeutics. By mimicking the Fe-N active centers of natural catalase, here, an innovative concept to design ROS-elimination artificial biocatalysts with Ru catalytic centers for stem-cell protection is reported. The experimental studies and theoretical calculations have systematically disclosed the activity merits and structure diversities of different Ru sites when serving as ROS-elimination artificial biocatalysts. Benefiting from the metallic electronic structures and synergetic effects of multiple sites, the artificial biocatalysts with Ru cluster centers present exceptional ROS-elimination activity; notably, it shows much higher catalytic efficiency per Ru atom on decomposing H2O2 when compared to the isolated single-atom Ru sites, which is more efficient than that of the natural antioxidants and recently reported state-of-the-art ROS-scavenging biocatalysts. The systematic stem-cell protection studies reveal that the catalase-like artificial biocatalysts can provide efficient rescue ability for survival, adhesion, and differentiation functions of human mesenchymal stem cells in high ROS level conditions. It is suggested that applying these artificial biocatalysts with Ru cluster centers will offer a new pathway for engineering high-performance ROS-scavenging materials in stem-cell-based therapeutics and many other ROS-related diseases.

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