Aurozyme: A Revolutionary Nanozyme in Colitis, Switching Peroxidase-Like to Catalase-Like Activity.

Small

Department of Bioengineering, College of Engineering, and BK FOUR Biopharmaceutical Innovation Leader for Education and Research Group, Hanyang University, Seoul, 04763, Republic of Korea.

Published: October 2023


Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

A therapeutic strategy that could address colitis of multiple etiologies while restoring the dysbiosis of gut microbiota is attractive. Here, Aurozyme, a novel nanomedicine comprised of gold nanoparticles (AuNPs) and glycyrrhizin (GL) with a glycol chitosan coating layer, as a promising approach for colitis, is demonstrated. The unique feature of Aurozyme is the conversion of harmful peroxidase-like activity of AuNPs to beneficial catalase-like activity due to the amine-rich environment provided by the glycol chitosan. This conversion process enables Aurozyme to oxidize the hydroxyl radicals derived from AuNP, producing water and oxygen molecules. In fact, Aurozyme effectively scavenges reactive oxygen/reactive nitrogen species (ROS/RNS) and damage-associated molecular patterns (DAMPs), which can attenuate the M1 polarization of macrophage. It exhibits prolonged adhesion to the lesion site, promoting sustained anti-inflammatory effects and restoring intestinal function in colitis-challenged mice. Additionally, it increases the abundance and diversity of beneficial probiotics, which are essential for maintaining microbial homeostasis in the gut. The work highlights the transformative potential of nanozymes for the comprehensive treatment of inflammatory disease and represents an innovative switching technology of enzyme-like activity by Aurozyme.

Download full-text PDF

Source
http://dx.doi.org/10.1002/smll.202302331DOI Listing

Publication Analysis

Top Keywords

catalase-like activity
8
glycol chitosan
8
aurozyme
6
aurozyme revolutionary
4
revolutionary nanozyme
4
nanozyme colitis
4
colitis switching
4
switching peroxidase-like
4
peroxidase-like catalase-like
4
activity
4

Similar Publications

Mesoporous metal nanomaterials (MMNs) have gained interest in biomedicine for their unique properties, but their potential is limited by the predominance of spherical shapes and the neglect of morphological effects on biological activity, which hinders the reasonable evaluation of morphology-dependent enzyme-like activities and biological behaviors and its further biomedical applications. It is therefore imperative to find an effective and facile method to design and prepare MMNs with novel, well-defined morphologies. Herein, we fabricated 3 mesoporous platinum nanoenzymes including sphere, rod, and bipyramid topologies [Au@mesoPt sphere, Au@mesoPt rod, and Au@mesoPt bipyramid nanoparticles (NPs), respectively] via a facile atomic layer deposition method using gold NPs (Au NPs) as the templated cores and Pluronic F127 as a structure-directing agent.

View Article and Find Full Text PDF

Prolonged or excessive inflammation may lead to impaired vascularization and bone regeneration, hindering the normal repair process of bone tissue. Although the regulation of inflammation is crucial for promoting a conducive microenvironment for bone regeneration, individual anti-inflammatory interventions frequently are inadequate in facilitating effective bone repair. Here, a multifunctional hydrogel (GelMA-ZC-Yoda1) with multifaceted therapeutic strategy was designed by integrating Zinc/Cerium-layered double oxide nanozyme (ZnCe-LDO, with catalase-like activity) and Yoda1 (an activator of the mechanically sensitive Piezo1 ion channel) into photocurable GelMA hydrogel.

View Article and Find Full Text PDF

Multi-enzymic nanozymes have attracted growing attention due to their distinct advantages over single enzyme-like nanozymes, particularly their synergistic effects and cascaded reactions. Herein, iron-doped carbon dots (FeCDs) were prepared by a one-step calcination method using hemin chloride, histidine, and potassium citrate as precursors. The resultant FeCDs exhibit a monodispersed spherical structure with an average particle size of 1.

View Article and Find Full Text PDF

Diabetic wounds with drug-resistant bacterial infections pose a formidable clinical challenge, which is attributed to adverse microenvironments, including hypoxia, biofilm formation, and insufficient reactive oxygen/nitrogen species (ROS/RNS). To overcome these issues, a laser-ultrasound responsive nanoreactor that comprises NO-intercalated and defect-rich CoMn-layered double hydroxide (LDH) on black phosphorus (BP) nanosheets (D-CoMn LDH-NO@BP) is fabricated. It exhibits catalase-like activity for O generation, facilitates NO release under acidic conditions, and promotes ROS/RNS generation upon laser-ultrasound activation, resulting in ferroptosis, biofilm degradation, and hypoxia alleviation for accelerated wound healing.

View Article and Find Full Text PDF

Liquid-phase epitaxial grown UiO-66 as a bifunctional platform for electrochemical Aptasensing of cardiac troponin I.

Bioelectrochemistry

August 2025

Department of Chemistry and Environment Science, Fujian Provincial Key Laboratory of Modern Analytical Science and Separation Technology, Minnan Normal University, Zhangzhou 363000, PR China.

The construction of multifunctional nanointerface bearing rich active site for aptamer immobilization and effective signal transformation is critical for the development of high-performance electrochemical aptasensor. Herein, a layer of p-mercaptobenzoic acid (p-MBA) was self-assembled on the surface of bare gold electrode (AuE), acting as a scalfod for the consequent liquid-phase epitaxial growth of Universitetet i Oslo-66 (UiO-66) metal-organic framework via immersion in zirconium ions (Zr) and p-terephthalic acid (PTA) ligand. Then, the UiO-66 was utilized as a bifunctional platform for immobilization of aptamer probe for cardiac troponin I (cTnI) and the electrochemical signal transformation as an electrocatalyst.

View Article and Find Full Text PDF