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    Academic Journal

    Συνεισφορές: The work was performed within the framework of the grant of the Russian Science Foundation (project No. 24–16–00171 “Cyclic peptides from Linum usitatissimum. Features of production, biological activity and prospects for their food application”)., Работа выполнена в рамках гранта Российского Научного Фонда (проект № 24-16-00171 «Циклические пептиды Linum usitatissimum. Особенности получения, биологическая активность и перспективы их пищевого применения»)

    Πηγή: Food systems; Vol 7, No 4 (2024); 535-542 ; Пищевые системы; Vol 7, No 4 (2024); 535-542 ; 2618-7272 ; 2618-9771 ; 10.21323/2618-9771-2024-7-4

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Methionine sulfone-containing orbitides, good indicators to evaluate oxidation process of flaxseed oil. Food Chemistry, 250, 204–212. https://doi.org/10.1016/j.foodchem.2018.01.030; Zeng, J., Xiao, T., Ni, X., Wei, T., Liu, X., Deng, Z.-Y. et al. (2022). The comparative analysis of different oil extraction methods based on the quality of flaxseed oil. Journal of Food Composition and Analysis, 107, Article 104373. https://doi.org/10.1016/j.jfca.2021.104373; Kaneda, T., Nakajima, Y., Koshikawa, S., Nugroho, A. E., Morita, H. (2019). Cyclolinopeptide F, a cyclic peptide from flaxseed inhibited RANKLinduced osteoclastogenesis via downergulation of RANK expression. Journal of Natural Medicines, 73(3), 504–512. https://doi.org/10.1007/s11418-019-01292-w; Brühl, L., Bonte, A., N’Diaye, K., Matthäus, B. (2022). Oxidation of cyclo-lino peptides in linseed oils during storage. 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    Academic Journal

    Πηγή: Drug development & registration; Том 10, № 4 (2021); 154-161 ; Разработка и регистрация лекарственных средств; Том 10, № 4 (2021); 154-161 ; 2658-5049 ; 2305-2066

    Περιγραφή αρχείου: application/pdf

    Relation: https://www.pharmjournal.ru/jour/article/view/1075/890; https://www.pharmjournal.ru/jour/article/downloadSuppFile/1075/884; Li G., Schoneker D., Ulman K. L., Sturm J. J., Thackery L. M., Kauffman J. F. Elemental Impurities in Pharmaceutical Excipients. Journal of Pharmaceutical Sciences. 2015;104(12):4197–4206. DOI:10.1002/jps.24650.; Neubauer K., Hineman A. Meeting the USP and Guidelines with ICP-OES. Spectroscopy. 2018;33(9):8–15.; Hineman А. Determination of Elemental Impurities in Antacids by ICP-MS According to the Validation Protocols Defined in USP Chapters and and ICH Q3D Step 4 Guidelines. Spectroscopy. 2017;32(7):36–40.; Klopper R. Microwave Digestion for Elemental Impurities Analysis According to ICH and USP Guidelines. Spectroscopy. 2017;32(1):44–49.; Furukawa H., Davis D. Using XRF as an Alternative Technique to Plasma Spectrochemistry for the New USP and ICH Directives on Elemental Impurities in Pharmaceutical Materials. Spectroscopy. 2017;32(7):12–17.; Кадырова Р. Г., Кабиров Г. Ф., Муллахметов Р. Р. Синтез медных и цинковых солей метионина и глицина. Ученые записки Казанской государственной академии ветеринарной медицины им. Н. Э. Баумана. 2013;1(213):109–115.; Кадырова Р. Г., Кабиров Г. Ф., Муллахметов Р. Р. Синтез и свойства комплексных солей биогенных кислот макро- и микроэлементов. Казань: Казан. гос. энерг. ун-т; 2016. 115 с.; Головнев Н. Н., Новикова Г. В., Васильев А. Д., Исакова Т. В., Ронжина Е. А. Синтез соединений d-элементов с аминокислотами. Вестник Красноярского государственного университета. Естественные науки. 2006;2:38–44.; Mamun M. A., Ahmed O., Bakshi P. K., Ehsan M. Q. Synthesis and spectroscopic, magnetic and cyclic voltammetric characterization of some metal complexes of methionine: [(C5H10NO2S)2MII]; MII=Mn(II), Co(II), Ni(II), Cu(II), Zn(II), Cd(II) and Hg(II). Journal of Saudi Chemical Society. 2010;14(1):23–31. DOI:10.1016/j.jscs.2009.12.005.; Rousseau R. M. Concept of the influence coefficient. The Rigaku Journal. 2001;18(1):8–21.; Rousseau R. M. Corrections for matrix effects in X-ray fluorescence analysis—A tutorial. Spectrochimica Acta Part B Atomic Spectroscopy. 2006;61(7):759–777. DOI:10.1016/j.sab.2006.06.014.; https://www.pharmjournal.ru/jour/article/view/1075