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Article Abstract

In this study, organo-inorganic nanohybrids with enzyme-like activity were prepared by in situ intercalation of anionic 5,10,15,20-tetrakis-(4-sulfonatophenyl)porphyrin and its complexes with Zn(II) and Pd(II) (, M = 2H, Zn(II) and Pd(II)) into gadolinium layered hydroxide (). The combination of powder XRD, CHNS analysis, FT-IR, EDX, and TG confirmed the layered structure of the reaction products. The basal interplanar distances in samples were 22.3-22.6 Å, corresponding to the size of an intercalated tetrapyrrole molecule. According to SEM data, hybrids consisted of individual lamellar nanoparticles 20-50 nm in thickness. The enzyme-like activity of individual constituents, and sulfoporphyrins , and , and hybrid materials, was studied by chemiluminescence analysis using the ABAP/luminol system in phosphate buffer solution. All the individual porphyrins exhibited dose-dependent antioxidant properties with respect to alkylperoxyl radicals at pH 7.4. The intercalation of free base porphyrin into the preserved the radical scavenging properties of the product. Conversely, in samples containing Zn(II) and Pd(II) complexes, the antioxidant properties of the porphyrins changed to dose-dependent prooxidant activity. Thus, an efficient approach to the design and synthesis of advanced materials with switchable enzyme-like activity was developed.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736057PMC
http://dx.doi.org/10.3390/ijms232315373DOI Listing

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