Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/111960
Title: Structural and Magnetic Study of the Iron Cores in Iron(III)-Polymaltose Pharmaceutical Ferritin Analogue Ferrifol®
Authors: Alenkina, I. V.
Kis, V. K.
Felner, I.
Kuzmann, E.
Klencsár, Z.
Oshtrakh, M. I.
Issue Date: 2020
Publisher: Elsevier Inc.
Elsevier BV
Citation: Structural and Magnetic Study of the Iron Cores in Iron(III)-Polymaltose Pharmaceutical Ferritin Analogue Ferrifol® / I. V. Alenkina, V. K. Kis, I. Felner et al. // Journal of Inorganic Biochemistry. — 2020. — Vol. 213. — 111202.
Abstract: Iron(III)-polymaltose pharmaceutical ferritin analogue Ferrifol® was investigated by high resolution transmission electron microscopy (HRTEM), X-ray diffraction, thermogravimetry, electron magnetic resonance (EMR) spectroscopy, direct current magnetization measurements and 57Fe Mössbauer spectroscopy to get novel information about the structural arrangement of the iron core. The Ferrifol® Mössbauer spectra measured in the range from 295 K to 90 K demonstrated non-Lorentzian two-peak pattern. These spectra were better fitted using a superposition of 5 quadrupole doublets with the same line width. The obtained Mössbauer parameters were different and an unusual line broadening with temperature decrease was observed. Measurements of the Ferrifol® Mössbauer spectra from 60 K to 20 K demonstrated a slow decrease of magnetic relaxation in the iron core. Zero-field-cooled and field-cooled magnetization measurements revealed a blocking temperature at ~33 K and a paramagnetic state of the Ferrifol® iron core at higher temperatures. Isothermal magnetization measurements at 5 K show that the saturation magnetic moment is ~0.31 emu/g. X-band EMR spectroscopy measurements revealed the presence of different magnetic species in the sample. Transmission electron microscopy demonstrated that the size of the iron cores in Ferrifol® is in the range 2–6 nm. The lattice periodicity in these iron cores, measured on the HRTEM images, vary in the range 2.2–2.7 Å. This can be best understood as sets of close packed O(OH) layers in ferrihydrite cores without long range correlation. © 2020 Elsevier Inc.
Keywords: FERRIFOL® AND FERRITIN
HIGH RESOLUTION TRANSMISSION ELECTRON MICROSCOPY
IRON CORE
MAGNETIZATION MEASUREMENTS
MÖSSBAUER SPECTROSCOPY
FERRIC HYDROXIDE
FERRIFOL
FERRITIN
IRON 57
IRON POLYMALTOSE
LIQUID NITROGEN
UNCLASSIFIED DRUG
DRUG
FERRIC ION
FERRITIN
MALTOSE
ARTICLE
COMPARATIVE STUDY
CONTROLLED STUDY
DIRECT CURRENT
DRUG STRUCTURE
ELECTRON SPIN RESONANCE
HIGH RESOLUTION TRANSMISSION ELECTRON MICROSCOPY
ISOTHERM
MAGNETIC FIELD
MICROWAVE RADIATION
MOSSBAUER SPECTROSCOPY
PERIODICITY
QUADRUPOLE MASS SPECTROMETRY
SCANNING TRANSMISSION ELECTRON MICROSCOPY
TEMPERATURE DEPENDENCE
THERMOGRAVIMETRY
TRANSMISSION ELECTRON MICROSCOPY
X RAY DIFFRACTION
X RAY POWDER DIFFRACTION
CHEMICAL STRUCTURE
CHEMISTRY
MAGNETISM
TEMPERATURE
FERRIC COMPOUNDS
FERRITINS
MAGNETICS
MALTOSE
MICROSCOPY, ELECTRON, TRANSMISSION
MOLECULAR STRUCTURE
PHARMACEUTICAL PREPARATIONS
SPECTROSCOPY, MOSSBAUER
URI: http://elar.urfu.ru/handle/10995/111960
Access: info:eu-repo/semantics/openAccess
SCOPUS ID: 85094963988
WOS ID: 000594687700006
PURE ID: 20116710
ISSN: 0162-0134
DOI: 10.1016/j.jinorgbio.2020.111202
Sponsorship: The authors wish to thank Prof. Ferenc Simon (Institute of Physics, Budapest University of Technology and Economics, Budapest, Hungary) for making available the applied spectrometer for recording the EMR spectra and Dr. A.V. Chukin (Institute of Physics and Technology, Ural Federal University, Ekaterinburg, Russian Federation) for XRD measurements. This work was supported by the Ministry of Science and Higher Education of the Russian Federation, project No FEUZ-2020-0060, and Act 211 of the Government of the Russian Federation, contract No 02.A03.21.0006. V.K.K. was supported by the János Bolyai Postdoctoral Fellowship of the Hungarian Academy of Sciences and the ÚNKP-19-4 New National Excellence Program of the Ministry for Innovation and Technology. HRTEM facility at the Centre for Energy Research was granted by the European Structural and Investment Funds, grant no. VEKOP-2.3.3-15-2016-00002. This work was in part supported by the Hungarian National Research, Development and Innovation Office – NKFIH (K115784, K115913 and K134770). This work was carried out within the Agreement of Cooperation between the Ural Federal University (Ekaterinburg) and the Eötvös Loránd University (Budapest).
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