Novel carbon nanozymes with enhanced phosphatase-like catalytic activity for antimicrobial applications

dc.contributor.authorLazzat Nurtay
dc.contributor.authorEnrico Benassi
dc.contributor.authorFaisal Nazir
dc.contributor.authorDana Dastan
dc.contributor.authorAssem Utupova
dc.contributor.authorAdilet Dautov
dc.contributor.authorKanat Dukenbayev
dc.contributor.authorYingqiu Xie
dc.contributor.authorTri Thanh Pham
dc.contributor.authorHaiyan Fan
dc.date.accessioned2025-08-22T10:14:46Z
dc.date.available2025-08-22T10:14:46Z
dc.date.issued2023-05-23
dc.description.abstractIn this work, Sulfur and Nitrogen co-doped carbon nanoparticles (SN-CNPs) were synthesized by hydrothermal method using dried beet powder as the carbon source. TEM and AFM images indicated that these SN-CNPs form a round-shape ball with an approximate diameter of 50 nm. The presence of Sulfur and Nitrogen in these carbon-based nanoparticles was confirmed by FTIR and XPS analyses. These SN-CNPs were found to have strong phosphatase-like enzymatic activity. The enzymatic behavior of SN-CNPs follows the Michaelis-Menten mechanism with greater vmax and much lower Km values compared to alkaline phosphatase. Their antimicrobial properties were tested on E. coli and L. lactis, with MIC values of 63 μg mL-1 and 250 μg mL-1, respectively. SEM and AFM images of fixed and live E. coli cells revealed that SN-CNPs strongly interacted with the outer membranes of bacterial cells, significantly increasing the cell surface roughness. The chemical interaction between SN-CNPs and phospholipid modeled using quantum mechanical calculations further support our hypothesis that the phosphatase and antimicrobial properties of SN-CNPs are due to the thiol group on the SN-CNPs, which is a mimic of the cysteine-based protein phosphatase. The present work is the first to report carbon-based nanoparticles with strong phosphatase activity and propose a phosphatase natured antimicrobial mechanism. This novel class of carbon nanozymes has the potential to be used for effective catalytic and antibacterial applications.en
dc.identifier.citationNurtay Lazzat, Benassi Enrico, Nazir Faisal, Dastan Dana, Utupova Assem, Dautov Adilet, Dukenbayev Kanat, Xie Yingqiu, Pham Tri T., Fan Haiyan. (2023). Novel carbon nanozymes with enhanced phosphatase-like catalytic activity for antimicrobial applications. Discover Nano. https://doi.org/https://doi.org/10.1186/s11671-023-03856-yen
dc.identifier.doi10.1186/s11671-023-03856-y
dc.identifier.urihttps://doi.org/10.1186/s11671-023-03856-y
dc.identifier.urihttps://nur.nu.edu.kz/handle/123456789/9888
dc.language.isoen
dc.publisherSpringer Science and Business Media LLC
dc.relation.ispartofDiscover Nanoen
dc.rightsAll rights reserveden
dc.sourceDiscover Nano, (2023)en
dc.subjectChemistryen
dc.subjectNanoparticleen
dc.subjectCatalysisen
dc.subjectAlkaline phosphataseen
dc.subjectPhosphataseen
dc.subjectCarbon fibersen
dc.subjectAcid phosphataseen
dc.subjectAntimicrobialen
dc.subjectNuclear chemistryen
dc.subjectChemical engineeringen
dc.subjectMaterials scienceen
dc.subjectNanotechnologyen
dc.subjectOrganic chemistryen
dc.subjectEnzymeen
dc.subjectComposite numberen
dc.subjectEngineeringen
dc.subjectComposite materialen
dc.subjecttype of access: open accessen
dc.titleNovel carbon nanozymes with enhanced phosphatase-like catalytic activity for antimicrobial applicationsen
dc.typearticleen

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