Three double phenoxido-bridged dinuclear nickel(II) complexes, namely [Ni(2)(L(1))(2)(NCS)(2)] (1), [Ni(2)(L(2))(2)(NCS)(2)] (2), and [Ni(2)(L(3))(2)(NCS)(2)] (3) have been synthesized using the reduced tridentate Schiff-base ligands 2-[1-(3-methylamino-propylamino)-ethyl]-phenol (HL(1)), 2-[1-(2-dimethylamino-ethylamino)-ethyl]-phenol (HL(2)), and 2-[1-(3-dimethylamino-propylamino)-ethyl]-phenol (HL(3)), respectively. The coordination compounds have been characterized by X-ray structural analyses, magnetic-susceptibility measurements, and various spectroscopic methods. In all complexes, the nickel(II) ions are penta-coordinated in a square-pyramidal environment, which is severely distorted in the case of 1 (Addison parameter τ = 0.47) and 3 (τ = 0.29), while it is almost perfect for 2 (τ = 0.03). This arrangement leads to relatively strong antiferromagnetic interactions between the Ni(II) (S = 1) metal centers as mediated by double phenoxido bridges (with J values of -23.32 (1), -35.45 (2), and -34.02 (3) cm(3) K mol(-1), in the convention H = -2JS(1)S(2)). The catalytic activity of these Ni compounds has been investigated for the aerial oxidation of 3,5-di-tert-butylcatechol. Kinetic data analysis following Michaelis-Menten treatment reveals that the catecholase activity of the complexes is influenced by the flexibility of the ligand and also by the geometry around the metal ion. Electrospray ionization mass spectroscopy (ESI-MS) studies (in the positive mode) have been performed for all the coordination compounds in the presence of 3,5-DTBC to characterize potential complex-substrate intermediates. The mass-spectrometry data, corroborated by electron paramagnetic resonance (EPR) measurements, suggest that the metal centers are involved in the catecholase activity exhibited by the complexes.
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http://dx.doi.org/10.1021/ic202748m | DOI Listing |
Biophys Chem
February 2025
Department of Biochemistry, Faculty of Life Science, Aligarh Muslim University, Aligarh 202002, India. Electronic address:
This paper presents the synthesis process of a ligand known as 2-(naphthalene-1-yl)-1H-phenanthro[9,10-d]imidazole (NIP) and its metal complex with zinc (II), denoted as FA-128. The structural validation of FA-128 is accomplished through single-crystal X-ray diffraction (XRD). To explore the biological implications, FA-128's interaction with BSA is investigated.
View Article and Find Full Text PDFChem Sci
November 2024
School of Material Science and Engineering, University of Jinan Jinan 250024 China
Modulation of coordination configuration is crucial for boosting the biomimetic catalytic activity of nanozymes, but remains challenging. Here, we found that the non-first-shell amino group in the ligand was capable of steering the N/S coordination number through remote induction to enable the formation of a low-coordinated CuNS configuration. This endowed the resulting nanozyme (ATT-Cu) with an upshifted d-band center compared with a control nanozyme (TT-Cu) with CuNS configuration, enhancing the adsorption capabilities of ATT-Cu for O and HO intermediates as well as its affinity for catechol.
View Article and Find Full Text PDFAnal Methods
December 2024
Department of Chemistry, National Taiwan Normal University, Taipei 116, Taiwan.
Tea contains various antioxidant compounds, including polyphenols, catechins, theaflavins, theasinensins, and flavonoids. Among these, epigallocatechin gallate (EGCG) is a crucial antioxidant recognized for its potent bioactivity. This study presents the synthesis of a highly selective Cu-PyC NH-based metal-organic framework (MOF) nanozyme that exhibits catecholase-like activity to assess the antioxidant capabilities of EGCG.
View Article and Find Full Text PDFDalton Trans
August 2024
Department of Chemistry, Jadavpur University, Kolkata-700032, India.
A new Mannich base (2-(4-(2-hydroxy-3-methoxy-5-methylbenzyl)-piperazin-1-yl)methyl)-6-methoxy-4-ethylphenol (H2L) and its tetranuclear Ni complex [NiL(μ-Cl)(HO)]Cl (compound 1) are characterised using single-crystal X-ray diffraction measurements. Compound 1 contains four different Ni centres in a rhombus-like structure. Two Ni atoms (Ni1 and Ni2) have a NiNO coordination sphere, while the other two (Ni3 and Ni4) have a NiOCl coordination environment and Ni-Cl-Ni bridges connect them.
View Article and Find Full Text PDFCurr Pharm Biotechnol
July 2024
Department of Pharmaceutical Chemistry, Bharati Vidyapeeth College of Pharmacy, Kolhapur, Maharashtra, 416013, India.
Background: Tyrosinase, often recognized as polyphenol oxidase, plays a pivotal role as an enzyme in catalyzing the formation of melanin-a complex process involving the oxidation of monophenols and o-diphenols.
Objective: Tyrosinase functions as a monooxygenase, facilitating the o-hydroxylation of monophenols to generate the corresponding catechols, as well as catalyzing the oxidation of monophenols to form the corresponding o-quinones, exhibiting diphenolase or catecholase activity. This versatile enzymatic capability is not limited to specific organisms but is found across various sources, including bacteria, fungi, plants, and mammals.
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