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  1. 1
    Academic Journal

    Source: Education, innovation, research as a resource for community development; 273-274 ; Образование, инновации, исследования как ресурс развития сообщества; 273-274

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    Relation: info:eu-repo/semantics/altIdentifier/isbn/978-5-907830-91-2; https://phsreda.com/e-articles/10674/Action10674-115461.pdf; Аналитическая химия и физико-химические методы анализа / под ред. А.А. Ищенко. – В 2 т. Т. 2. – М.: Академия, 2015. – 416 с.; Хаханина Т.И. Аналитическая химия: учебное пособие / Т.И. Хаханина. – М.: Юрайт, 2014. – 278 с. EDN TYPEBB; Основы аналитической химии. – В 2 кн. Кн. 2. – М.: Высшая школа, 2015. – 504 с.; Васильев В.П. Аналитическая химия: учебник / В.П. Васильев. – В 2 ч. Ч. 2. – М.: Высшая школа, 1989. – 383 с.; Васильев В.П. Аналитическая химия: учебник / В.П. Васильев. – В 2 ч. Ч. 1. – М.: Высшая школа, 1989. – 320 с.; Васюкова А.Т. Аналитическая химия: учебник / А.Т. Васюкова. – 4-е изд. – М.: Дашков и К°, 2024. – 156 с. – ISBN 978-5-394-05549-2.; Ненашева Л.В. Аналитическая химия: учебник / Л.В. Ненашева. – Ростов н/Д.: Феникс, 2021. – 301 с. – ISBN 978-5-222-38568-5.; https://phsreda.com/article/115461/discussion_platform

  2. 2
    Academic Journal

    Source: Regulatory Research and Medicine Evaluation; Том 14, № 4 (2024); 411-418 ; Регуляторные исследования и экспертиза лекарственных средств; Том 14, № 4 (2024); 411-418 ; 3034-3453 ; 3034-3062 ; 10.30895/1991-2919-2024-14-4

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    Relation: https://www.vedomostincesmp.ru/jour/article/view/649/1609; https://www.vedomostincesmp.ru/jour/article/view/649/1473; https://www.vedomostincesmp.ru/jour/article/view/649/1474; https://www.vedomostincesmp.ru/jour/article/view/649/1484; https://www.vedomostincesmp.ru/jour/article/view/649/1485; https://www.vedomostincesmp.ru/jour/article/view/649/1487; https://www.vedomostincesmp.ru/jour/article/view/649/1488; https://www.vedomostincesmp.ru/jour/article/view/649/1538; https://www.vedomostincesmp.ru/jour/article/view/649/1541; https://www.vedomostincesmp.ru/jour/article/view/649/1542; https://www.vedomostincesmp.ru/jour/article/view/649/1543; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/566; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/567; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/568; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/647; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/648; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/649; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/650; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/651; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/657; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/658; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/659; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/660; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/661; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/662; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/709; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/710; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/711; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/712; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/649/713; Кугач ВВ. Аптечное изготовление и контроль качества лекарственных средств за рубежом. Вестник фармации. 2021;(2):64–79. https://doi.org/10.52540/2074-9457.2021.2.64; Смехова ИЕ, Ладутько ЮМ, Калинина ОВ. Экстемпоральное изготовление лекарственных препаратов: проблемы и решения. Вестник фармации. 2021;(1):48–52. https://doi.org/10.52540/2074-9457.2021.1.48; Наркевич ИА, Голант ЗМ, Юрочкин ДС, Лешкевич АА, Эрдни-Гаряев СЭ. Разработка предложений по совершенствованию процессов обращения экстемпоральных лекарственных препаратов и регулирования рецептурно-производственной деятельности аптечных организаций в Российской Федерации. Ремедиум. 2021;(4):14–29. https://doi.org/10.32687/1561-5936-2021-25-4-14-29; https://www.vedomostincesmp.ru/jour/article/view/649

  3. 3
    Academic Journal

    Contributors: The study reported in this publication was carried out as part of publicly funded research project No. 056-00001-22-00 and was supported by the Scientific Centre for Expert Evaluation of Medicinal Products (R&D public accounting No. 121021800098-4), Работа выполнена в рамках государственного задания ФГБУ «НЦЭСМП» Минздрава России № 056-00001-22-00 на проведение прикладных научных исследований (номер государственного учета НИР 121021800098-4)

    Source: Regulatory Research and Medicine Evaluation; Том 13, № 2 (2023); 134-145 ; Регуляторные исследования и экспертиза лекарственных средств; Том 13, № 2 (2023); 134-145 ; 3034-3453 ; 3034-3062

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    Relation: https://www.vedomostincesmp.ru/jour/article/view/388/1062; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/388/265; Hamamelis. In: Clarke JH. A Dictionary of Practical Materia Medica. London: Homoeopathic Pub. Co.; 1902.; Theisen LL, Erdelmeier CAJ, Spoden GA, Boukhallouk F, Sausy A, Florin L, et al. Tannins from Hamamelis virginiana bark extract: characterization and improvement of the antiviral efficacy against influenza A virus and human papillomavirus. PLoS One. 2014;9(1):e88062. https://doi.org/10.1371/journal.pone.0088062; Sanchez-Tena S, Fernandez-Cachon ML, Carreras A, Mateos-Martin ML, Costoya N, Moyer MP, et al. Hamamelitannin from witch hazel (Hamamelis virginiana) displays specific cytotoxic activity against colon cancer cells. J Nat Prod. 2012;75(1):26–33. https://doi.org/10.1021/np200426k; Mansoor K, Qadan F, Schmidt M. Hamamelis virginiana L. Leaf extract suppositories in the treatment of hemorrhoids: non-interventional trial and stability study. Pharmazie. 2018;73(4):237–40.; Qinna NA. Safety profile of suppository Hamamelis virginiana leaf extract. J Med Plants Res. 2013;7(36): 2669–79.; MacKay D. Hemorrhoids and varicose veins: a review of treatment options. Altern Med Rev. 2001;6(2):126– 40. PMID: 11302778; Шаретт Ж. Практическое гомеопатическое лекарствоведение. 2-е изд. М.; 1934.; Корокин MВ, Корвякова ОА, Олейник АЕ, Недобега ЕИ, Покровский МВ, Королев АЕ. Противовоспалительная активность гомеопатических гелей на основе гамамелиса. Кубанский научный медицинский вестник. 2010;(3–4):95–8.; Патудин АВ, Терёшина НС, Мищенко ВС, Ильен ко ЛИ. Биологически активные вещества гомеопатического лекарственного сырья М.: Знак; 2009; Dauer A, Rimpler H, Hensel A. Polymeric proanthocyanidins from the bark of Hamamelis virginiana. Planta Med. 2003;69(1):89–91. https://doi.org/10.1055/s-2003-37022; Duckstein SM, Stintzing FC. Investigation on the phenolic constituents in Hamamelis virginiana leaves by HPLC-DAD and LC-MS/MS. Anal Bioanal Chem. 2011;401(2):677–88. https://doi.org/10.1007/s00216-011-5111-3; Hartisch C, Kolodziej H. Galloylhamameloses and proanthocyanidins from Hamamelis virginiana. Phytochemistry. 1996;42(1):191–8. https://doi.org/10.1016/0031-9422(96)00926-0; Masaki H, Atsumi T, Sakurai H. Protective activity of hamamelitannin on cell damage of murine skin fibroblasts induced by UVB irradiation . J Dermatol Sci. 1995;10(1):25–34. https://doi.org/10.1016/0923-1811(95)93711-9; Deters A, Dauer A, Schnetz E, Fartasch M, Hensel A. High molecular compounds (polysaccharides and proanthocyanidins) from Hamamelis virginiana bark: influence on human skin keratinocyte proliferation and differentiation and influence on irritated skin. Phytochemistry. 2001;58(6):949–58. https://doi.org/10.1016/s0031-9422(01)00361-2; Vennat B, Pourrat H, Pouget MP, Gross D, Pourrat A. Tannins from Hamamelis virginiana: identification of proanthocyanidins and hamamelitannin quantification in leaf, bark, and stem extracts. Planta Med. 1988;54(5):454–7. https://doi.org/10.1055/s-2006-962499; Bruneton J. Pharmacognosy, Phytochemistry, Medicinal Plants. 2nd ed. Paris: Lavoisier; 2008.; https://www.vedomostincesmp.ru/jour/article/view/388

  4. 4
    Academic Journal

    Contributors: The study reported in this publication was carried out as part of publicly funded research project No. 056-00052-23-00 and was supported by the Scientific Centre for Expert Evaluation of Medicinal Products (R&D reporting No. 121021800098-4)., Работа выполнена в рамках государственного задания ФГБУ «НЦЭСМП» Минздрава России № 056- 00052-23-00 на проведение прикладных научных исследований (номер государственного учета НИР 121021800098-4)

    Source: Regulatory Research and Medicine Evaluation; Том 13, № 4 (2023); 567-577 ; Регуляторные исследования и экспертиза лекарственных средств; Том 13, № 4 (2023); 567-577 ; 3034-3453 ; 3034-3062

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    Relation: https://www.vedomostincesmp.ru/jour/article/view/567/1229; https://www.vedomostincesmp.ru/jour/article/view/567/1230; https://www.vedomostincesmp.ru/jour/article/view/567/1231; https://www.vedomostincesmp.ru/jour/article/view/567/1239; https://www.vedomostincesmp.ru/jour/article/view/567/1240; https://www.vedomostincesmp.ru/jour/article/view/567/1241; https://www.vedomostincesmp.ru/jour/article/view/567/1257; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/567/463; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/567/464; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/567/473; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/567/480; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/567/481; Ribeiro WLC, Macedo ITF, Santos JML, Oliveira EF, Camurça-Vasconcelos ALF, Paula HCB, et al. Activity of chitosan-encapsulated Eucalyptus staigeriana essential oil on Haemonchus contortus. Exp Parasitol. 2013;135(1):24–9. https://doi.org/10.1016/j.exppara.2013.05.014; Rietbrock N, Woodcock B. Two hundred years of foxglove therapy Digitalis purpurea 1 785–1985. Trends Pharmacol Sci. 1985;6:267–9. https://doi.org/10.1016/0165-6147(85)90123-3; Wade OL. Digoxin 1785-1985. I. Two hundred years of digitalis. J Clin Hosp Pharm. 1986;11(1):3–9. https://doi.org/10.1111/j.1365-2710.1986.tb00822.x; El-Seedi HR, Khalifa SAM, Taher EA, Farag MA, Saeed A, Gamal M, et al. Cardenolides: Insights from chemical structure and pharmacological utility. Pharmacol Res. 2019;141:123–75. https://doi.org/10.1016/j.phrs.2018.12.01; Дукельская НК, Гармашова ИВ, Давыдова МВ. Сравнительный анализ препаратов сердечных гликозидов, используемых в современной фармакотерапии. Известия Российской военно-медицинской академии. 2020;39(S3–4):82–5.; Kanji S, MacLean RD. Cardiac glycoside toxicity: more than 200 years and counting. Crit Care Clin. 2012;28(4):527–35. https://doi.org/10.1016/j.ccc.2012.07.005; Morsy N. Cardiac glycosides in medicinal plants. In: El-Shemy HA, ed. Aromatic and Medicinal Plants — Back to Nature. London: InTechOpen; 2017. https://doi.org/10.5772/65963; Botelho AFM, Pierezan F, Soto-Blanco B, Melo MM. A review of cardiac glycosides: Structure, toxicokinetics, clinical signs, diagnosis and antineoplastic potential. Toxicon. 2019;158:63–8. https://doi.org/10.1016/j.toxicon.2018.11.429; Pongrakhananon V. Anticancer properties of cardiac glycosides. In: Rangel L, ed. Cancer Treatment — Conventional and Innovative Approaches. London: Intechopen; 2013. https://doi.org/10.5772/55381; Гуревич МА, Гаврилин АА. Сердечные гликозиды в современной клинической практике. Альманах клинической медицины. 2014;(35):101–5. https://doi.org/10.18786/2072-0505-2014-35-101-105; Мареев ВЮ, Агеев ФТ, Арутюнов ГП, Коротеев АВ, Мареев ЮВ, Овчинников АГ и др. Национальные рекомендации ОССН, РКО и РНМОТ по диагностике и лечению ХСН (четвертый пересмотр). Сердечная недостаточность. 2013;14(7):372–9.; Philippe G, Angenot L. Recent developments in the field of arrow and dart poisons. J. Ethnopharmacol. 2005;100(1–2):85–91. https://doi.org/10.1016/j.jep.2005.05.022; Bertol W, Rigotto C, Maia de Pádua R, Kreis W, Monte Barardi CR, Braga FC, Simões CMO. Antiherpes activity of glucoevatromonoside, a cardenolide isolated from a Brazilian cultivar of Digitalis lanata. Antiviral Res. 2011;92(1):73–80. https://doi.org/10.1016/j.antiviral.2011.06.015; Zhyvoloup A, Melamed A, Anderson I, Planas D, Lee C-H, Kriston-Vizi J, et al. Digoxin reveals a functional connection between HIV-1 integration preference and T-cell activation. PLoS Pathog. 2017;13(7):e1006460. https://doi.org/10.1371/journal.ppat.1006460; Wong RW, Balachandran A, Ostrowski MA, Cochrane A. Digoxin suppresses HIV-1 replication by altering viral RNA processing. PLoS Pathog. 2013;9(3):e1003241. https://doi.org/10.1371/journal.ppat.1003241; Grosso F, Stoilov P, Lingwood C, Brown M, Cochrane A. Suppression of adenovirus replication by cardiotonic steroids. J Virol. 2017;91(3):e01623-16. https://doi.org/10.1128/jvi.01623-16; Wang JKT, Portbury S, Thomas MB, Barney S, Ricca DJ, Morris DL, et al. Cardiac glycosides provide neuroprotection against ischemic stroke: Discovery by a brain slice-based compound screening platform. Proc Natl Acad Sci USA. 2006;103(27):10461–6. https://doi.org/10.1073/pnas.0600930103; Пеннияйнен ВА, Плахова ВБ, Подзорова СА, Терехин СГ, Крылов БВ. Возможная физиологическая функция эндогенного уабаина. Интегративная физиология. 2021;2(1):96–101.; Kulikov A, Eva A, Kirch U, Boldyrev A, Scheiner-Bobis G. Ouabain activates signaling pathways associated with cell death in human neuroblastoma. Biochim Biophys Acta. 2007;1768(7):1691–702. https://doi.org/10.1016/j.bbamem.2007.04.012; Lin SY, Chang HH, Lai YH, Lin CH, Chen MH, Chang GC, et al. Digoxin suppresses tumor malignancy through inhibiting multiple Src-related signaling pathways in non-small cell lung cancer. PLoS One. 2015;10(5):e0123305. https://doi.org/10.1371/journal.pone.0123305; Mijatovic T, Mathieu V, Gaussin JF, De Neve N, Ribaucour F, Van Quaquebeke, et al. Cardenolide-induced lysosomal membrane permeabilization demonstrates therapeutic benefits in experimental human non-small cell lung cancers. Neoplasia. 2006;8(5):402–12. https://doi.org/10.1593/neo.05850; Mijatovic T, De Beeck АО, Van Quaquebeke EV, Dewelle J, Darro F, de Launoit Y, Kiss R. The cardenolide UNBS1450 is able to deactivate nuclear factor κB-mediated cytoprotective effects in human non-small cell lung cancer cells. Mol Cancer Ther. 2006;5(2):391–9. https://doi.org/10.1158/1535-7163.mct-05-0367; Frese S, Frese-Schaper M, Andres AC, Miescher D, Zumkehr B, Schmid RA. Cardiac glycosides initiate Apo2L/TRAIL-induced apoptosis in non-small cell lung cancer cells by up-regulation of death receptors 4 and 5. Cancer Res. 2006;66(11):5867–74. https://doi.org/10.1158/0008-5472.can-05-3544; Johansson S, Lindholm P, Gullbo J, Larsson R, Bohlin L, Claeson P, et al. Cytotoxicity of digitoxin and related cardiac glycosides in human tumor cells. Anticancer Drugs. 2001;12(5):475–83. https://doi.org/10.1097/00001813-200106000-00009; McConkey DJ, Lin Y, Nutt LK, Ozel HZ, Newman RA. Cardiac glycosides stimulate Ca2+ increases and apoptosis in androgen-independent, metastatic human prostate adenocarcinoma cells. Cancer Res. 2000;60(14):3807–12. PMID: 10919654; Huang YT, Chueh SC, Teng CM, Guh JH. Investigation of ouabain-induced anticancer effect in human androgen-independent prostate cancer PC-3 cells. Biochem Pharmacol. 2004;67(4):727–33. https://doi.org/10.1016/j.bcp.2003.10.013; Yeh JY, Huang WJ, Kan SF, Wang PS. Effects of bufalin and cinobufagin on the proliferation of androgen dependent and independent prostate cancer cells. Prostat. 2003;54(2):112–24. https://doi.org/10.1002/pros.10172; Chen JQ, Contreras RG, Wang R, Fernandez SV, Shoshani L, Russo IH, et al. Sodium/potasium ATPase (Na+, K+-ATPase) and ouabain/related cardiac glycosides: A new paradigm for development of anti-breast cancer drugs. Breast Cancer Res Treat. 2006;96(1):1–15. https://doi.org/10.1007/s10549-005-9053-3; Bielawski К, Winnicka К, Bielawska А. Inhibition of DNA topoisomerases I and II, and growth inhibition of breast cancer MCF-7 cells by ouabain, digoxin and proscillaridin. Biol Pharm Bull. 2006;29(7):1493–7. https://doi.org/10.1248/bpb.29.1493; Lopez-Lazaro M, Pastor N, Azrak SS, Ayuso MJ, Austin CA, Cortes F. Digitoxin inhibits the growth of cancer cell lines at concentrations commonly found in cardiac patients. J Nat Prod. 2005;68(11):1642–5. https://doi.org/10.1021/np050226l; Newman RA, Yang Р, Hittelman WN, Lu T, Ho DH, Ni D, et al. Oleandrin-mediated oxidative stress in human melanoma cells. J Exp Ther Oncol. 2006;5(3):167–81. PMID: 16528968; Masuda Y, Kawazoe N, Nakajo S, Yoshida T, Kuroiwa Y, Nakaya K. Bufalin induces apoptosis and influences the expression of apoptosis-related genes in human leukemia cells. Leuk Res. 1995;19(8):549–56. https://doi.org/10.1016/0145-2126(95)00031-i; Jing Y, Ohizumi H, Kawazoe N, Hashimoto S, Masuda Y, Nakajo S, et al. Selective inhibitory effect of bufalin on growth of human tumor cells in vitro: association with the induction of apoptosis in leukemia HL-60 cells. Jpn J Cancer Res. 1994;85(6):645–51. https://doi.org/10.1111/j.1349-7006.1994.tb02408.x; Kawazoe N, Watabe M, Masuda Y, Nakajo S, Nakaya K. Tiam1 is involved in the regulation of bufalin-induced apoptosis in human leukemia cells. Oncogene 1999;18(15):2413–21. https://doi.org/10.1038/sj.onc.1202555; Watabe M, Kawazoe N, Masuda Y, Nakajo S, Nakaya K. Bcl-2 protein inhibits bufalin-induced apoptosis through inhibition of mitogen-activated protein kinase activation in human leukemia U937 cells. Cancer Res. 1997;57(15):3097–100. PMID: 9242431; Круглов ДС, Кошкарева КЕ. Количественное определение конваллятоксина в растительном сырье, содержащем кардиостероиды, методом фотометрии. Сибирский медицинский вестник. 2019;(4):34–7.; Власенко ЛМ. Определение гликозидов дигиталиса в трупном материале фотометрическим методом на основе реакции взаимодействия с 2,2’,4,4’–тетра-нитродифенилом. Судебно-медицинская экспертиза. 1976;(4):23–7.; Hassan MHA, Ismail MA, Moharram AM, Shoreit AAM. Phytochemical and antimicrobial of latex serum of Calotropis procera and its silver nanoparticles against some reference pathogenic strains. J Ecol Health Environ. 2017;5(3):65–75. https://doi.org/10.18576/jehe/050301; Galey FD, Holstege DM, Plumlee KH, Tor E, Johnson B, Anderson ML, et al. Diagnosis of oleander poisoning in livestock. J Vet Diagn Invest. 1996;8(3):358–64. https://doi.org/10.1177/104063879600800314; Hamada K, Iwamoto A, Miyazaki S, Yamanaka N, Guruge KS. Determination of bovine blood oleandrin by high-performance liquid chromatography and postcolumn derivatization. J Chromatogr Sci. 2002;40(9):515–8. https://doi.org/10.1093/chromsci/40.9.555; Praveen US, Gowtham MD, Yogaraje-Gowda CV, Nayak VG, Mohan BM. Detection of residues of cardenolides of Nerium oleander by high-performance thinlayer chromatography in autopsy samples. Int J Med Toxicol Forensic Med. 2012;2(4):135–42. https://doi.org/10.22037/ijmtfm.v2i4(Autumn).3758; Tymiak AA, Norman JA, Bolgar M, DiDonato GC, Lee H, Parker WL, et al. Physicochemical characterization of a ouabain isomer isolated from bovine hypothalamus. Proc Natl Acad Sci USA. 1993;90(17):8189–93. https://doi.org/10.1073/pnas.90.17.8189; Baecher S, Kroiss M, Fassnacht M, Vogeser M. No endogenous ouabain is detectable in human plasma by ultrasensitive UPLC-MS/MS. Clin Chim Acta. 2014;431:87–92. https://doi.org/10.1016/j.cca.2014.01.038; Bylda C, Thiele R, Kobold U, Volmer DA. Simultaneous quantification of digoxin, digitoxin, and their metabolites in serum using high performance liquid chromatography-tandem mass spectrometry. Drug Test Anal. 2015;7(10):937–46. https://doi.org/10.1002/dta.1781; Frommherz L, Köhler H, Brinkmann B, Lehr M, Beike J. LC-MS assay for quantitative determination of cardio glycoside in human blood samples. Int J Legal Med. 2008;122(2):109–14. https://doi.org/10.1007/s00414-007-0175-5; Gopal Ravi B, Grace Guardian ME, Dickman R, Wang ZQ. Profiling and structural analysis of cardenolides in two species of Digitalis using liquid chromatography coupled with high-resolution mass spectrometry. J Chromatogr A. 2020:1618:460903. https://doi.org/10.1016/j.chroma.2020.460903; Gosetti F, Nebbia C, Ceci L, Carelli G, Marengo E. UHPLC-MS/MS determination of oleandrin in blood and tissues of dairy cattle poisoned by oleander (Nerium oleander). Anal Methods. 2019;11:5562–7. https://doi.org/10.1039/C9AY01800J; Gozalpour E, Greupink R, Bilos A, Verweij V, van den Heuvel J, Masereeuw R, et al. Convallatoxin: A new P-glycoprotein substrate. Eur J Pharmacol. 2014;744:18–27. https://doi.org/10.1016/j.ejphar.2014.09.031; Gozalpour E, Greupink R, Wortelboer HM, Bilos A, Schreurs M, Russel FGM, Koenderink JB. Interaction of digitalis-like compounds with liver uptake transporters NTCP, OATP1B1, a nd O ATP1B3. Mol Pharm. 2014;11(6):1844–55. https://doi.org/10.1021/mp400699p; Grabowski T, Swierczewska A, Borucka B, Sawicka R, Sasinowska-Motyl M, Gumułka SW, et al. А rapid chromatographic/mass spectrometric method for digoxin quantification in human plasma. Pharm Chem J. 2009;43:710–5. https://doi.org/10.1007/s11094-010-0384-y; Guan F, Ishii A, Seno H, Watanabe-Suzuki K, Kumazawa T, Suzuki O. Identification and quantification of cardiac glycosides in blood and urine samples by HPLC/ MS/MS. Anal Chem. 1999;71(18):4034–43. https://doi.org/10.1021/ac990268c; Josephs RD, Daireaux A, Westwood S, Wielgosz RI. Simultaneous determination of various cardiac glycosides by liquid chromatography-hybrid mass spectrometry for the purity assessment of the therapeutic monitored drug digoxin. J Chromatogr A. 2010;1217(27):4535–43. https://doi.org/10.1016/j.chroma.2010.04.060; Kohls S, Scholz-Bottcher B, Rullkotter J, Teske J. Method validation of a survey of thevetia cardiac glycosides in serum samples. Forensic Sci Int. 2012;215(1–3):146–51. https://doi.org/10.1016/j.forsciint.2011.02.013; Liang X, Christensen JH, Nielsen JN. Enhancing the power of liquid chromatography — Mass spectrometry for chemical fingerprinting of phytotoxins in the environment. J Chromatogr A. 2021;1642:462027. https://doi.org/10.1016/j.chroma.2021.462027; Malysheva SV, Mulder PPJ, Masquelier J. Development and validation of a UHPLC-ESI-MS/MS method for quantification of oleandrin and other cardiac glycosides and evaluation of their levels in herbs and spices from the Belgian market. Toxins (Basel). 2020;12(4):243. https://doi.org/10.3390/toxins12040243; Mitamura K, Horikawa A, Yamane Y, Ikeda Y, Fujii Y, Shimada K. Determination of digoxin in human serum using stable isotope dilution liquid chromatography/ electrospray ionization-tandem mass spectrometry. Biol Pharm Bull. 2007;30(9):1653–6. https://doi.org/10.1248/bpb.30.1653; Rubini S, Rossi SS, Mestria S, Odoardi S, Chendi S, Poli A, et al. A probable fatal case of oleander (Nerium oleander) poisoning on a cattle farm: a new method of detection and quantification of the oleandrin toxin in rumen. Toxins (Basel). 2019;11(8):442. https://doi.org/10.3390/toxins11080442; Yadav PB, Lekhak UM, Ghane SG, Lekhak MM. Phytochemicals, antioxidants, estimation of cardiac glycoside (Scillaren A) and detection of major metabolites using LC-MS from Drimia species. S Afr J Bot. 2021;140:259–68. https://doi.org/10.1016/j.sajb.2020.05.002; Zhai JX, Yan H, Shen M, Shen BH, Liu W. Determination of oleandrin in blood and liver samples by LC-MS/ MS. Fa Yi Xue Za Zhi. 2018;34(6):585–9. https://doi.org/10.12116/j.issn.1004-5619.2018.06.002; Amitava D, Pradip D. Rapid detection of oleander poisoning using digoxin immunoassays comparison of five assays. Ther Drug Monit. 2004;26(6):658–63. https://doi.org/10.1097/00007691-200412000-00012; Solnica B. Comparison of serum digoxin concentration monitoring by fluorescence polarization immunoassay on the TDxFLx and dry chemistry enzyme immunoassay on the Vitros 950. Clin Chem Lab Med. 2004;42(8):958–64. https://doi.org/10.1515/CCLM.2004.156; Züst T, Petschenka G, Hastings AP, Agrawal AA. Toxicity of milkweed leaves and latex: chromatographic quantification versus biological activity of cardenolides in 16 Asclepias species. J Chem Ecol. 2019;45(1):50–60. https://doi.org/10.1007/s10886-018-1040-3; Dasgupta А, Bourgeois L. Convallatoxin, the active cardiac glycoside of lily of the valley, minimally affects the ADVIA Centaur digoxin assay. J Clin Lab Anal. 2018;32(8):e22583. https://doi.org/10.1002/jcla.22583; Pellati F, Bruni R, Bellardi MG, Bertaccini A, Benvenuti S. Optimization and validation of a high-performance liquid chromatography method for the analysis of cardiac glycosides in Digitalis lanata. J Chromatogr A. 2009;1216(15):3260–9. https://doi.org/10.1016/j.chroma.2009.02.042; Agrawal P, Akhade M, Laddha K, Narkhede S, Mirgal A, Salunke C. Quantification of convallatoxin in Antiaris toxicaria Leusch seeds by RP-HPLC. Anal Chem Lett. 2014;4(3):172–7. https://doi.org/10.1080/22297928.2014.925821; Agrawal AA, Ali А, Johnson MD, Hastings AP, Burge D, Weber MG. Toxicity of the spiny thick-foot Pachypodium. Am J Bot. 2018;105(4):677–86. https://doi.org/10.1002/ajb2.1057; Butt AN, Tennant BP, Gillingwater SD, Shepherd PS, Swaminathan R. Binding оf ouabain and human ouabainlike substance to different Na+, K+-ATPase isoforms. Hypertens Res. 2000;23 Suppl:S45–50. https://doi.org/10.1291/hypres.23.supplement_s45; Namera A, Yashiki M, Okada K, Iwasaki Y, Kojima T. Rapid quantitative analysis of oleandrin in human blood by high-performance liquid chromatography. Nihon Hoizaku Zasshi. 1997;51(4):315–8. PMID: 9366138; Desta B. HPLC analysis of digoxin and digitoxin: development of methods for dosage form assay and separation of potential impurities and metabolites. University of British Columbia; 1982. https://doi.org/10.14288/1.0095102; Pérez-Alonso N, Martín R, Capote A, Pérez A, Hernández-Díaz EK, Rojas L, et al. Efficient direct shoot organogenesis, genetic stability and secondary metabolite production of micropropagated Digitalis purpurea L. Ind Crops Prod. 2018;116:259–66. https://doi.org/10.1016/j.indcrop.2018.02.067; Hensel A, Kreis W. GLC-MS investigations on cardenolide genins. Pharm Acta Helv. 1997;72(4):243–6. https://doi.org/10.1016/S0031-6865(97)00020-4; Платонов ВВ, Волочаева МВ, Хадарцев АА, Мелякова ДА, Сухих ГТ, Дунаева ИВ. Химический состав этанольного экстракта ландыша майского (Convallaria majalis L., семейство лилейных). Вестник новых медицинских технологий. 2019;(2):53–60. https://doi.org/10.24411/1609-2163-2019-16356; Быков ЕВ, Вихарева ЕВ. Фармакопейные методы анализа сердечных гликозидов в растительном сырье и лекарственных препаратах (обзор). Вопросы биологической, медицинской и фармацевтической химии. 2023;26(7):5–11. https://doi.org/10.29296/25877313-2023-07-01; Орынбекова СО, Келеке АС, Сакипова ЗБ, Ибрагимова ЛН, Сермухамедова ОВ, Нургожин ТС. Сравнительная оценка методик идентификации сердечных гликозидов в лекарственном растительном сырье. Вестник Казахского Национального медицинского университета. 2019;(2):396–9.; https://www.vedomostincesmp.ru/jour/article/view/567

  5. 5
  6. 6
  7. 7
  8. 8
  9. 9
    Academic Journal

    Contributors: FSBI “SCEEMP” of the Ministry of Health of Russia, ФГБУ «НЦЭСМП» Минздрава России

    Source: Regulatory Research and Medicine Evaluation; Том 8, № 3 (2018); 193-200 ; Регуляторные исследования и экспертиза лекарственных средств; Том 8, № 3 (2018); 193-200 ; 3034-3453 ; 3034-3062 ; 10.30895/1991-2919-2018-8-3

    File Description: application/pdf

    Relation: https://www.vedomostincesmp.ru/jour/article/view/203/177; https://www.vedomostincesmp.ru/jour/article/view/203/178; Государственная фармакопея Российской Федерации. XIII изд. Т. 1–3. М.; 2015.; Авдеева ЖИ, Солдатов АА, Алпатова НА, Киселевский МВ, Лысикова СЛ, Бондарев ВП и др. Биоаналоговые (биоподобные) лекарственные препараты рекомбинантного гранулоцитарного-колониестимулирующего фактора. Оценка качества. БИОпрепараты. Профилактика, диагностика, лечение. 2015;(1):4–14.; Hima V, Rubesh Kumar S, Duganath N, Devanna N. Quantization of ascorbic acid in ayurvedic amla capsule by various analytical techniques. Der Pharma Chemica. 2013;5(3):8–17.; Neuberger S, Jooß K, Flottmann D, Scriba G, Neusüß C. Raman spectroscopy and capillary zone electrophoresis for the analysis of degradation processes in commercial effervescent tablets containing acetylsalicylic acid and ascorbic acid. J Pharm Biomed Anal. 2017;134:122–9. https://doi.org/10.1016/j.jpba.2016.11.020; Shanawany AE, Neugebaur M, El-Sadek M, Rucker G. HPLC method for quantitative determination of ascorbic acid, phenylephrine, paracetamol and caffeine mixture. Indian J Pharm Sci. 1990;52(4):182–5.; Goodpaster JV, Keto RO. Identification of ascorbic acid and its degradation products in black powder substitutes. J Forensic Sci. 2004;49(3):523–8.; Sadamasu Y, Morikawa M, Sakamaki N, Monma K, Kobayashi C. Quantitative analysis of L-ascorbic acid and erythorbic acid in foods by HPLC, and confirmation method by LC-MS/MS. Shokuhin Eiseigaku Zasshi. 2018;59(1):11–7 (In Jap.). https://doi.org/10.3358/shokueishi.59.11; Государственная фармакопея Российской Федерации. XII изд. Часть 1. М.: Научный центр экспертизы средств медицинского применения; 2007.; European Pharmacopoeia online. European Directorate for the Quality of Medicines. Available from: http://online.edqm.eu; United States Pharmacopeia. 39th ed. 2016. Available from: http://www.uspnf.com/uspnf; Погодина ЛИ. Анализ многокомпонентных лекарственных форм. Минск: Вышэйшая школа; 1985.; Файгль Ф. Капельный анализ органических веществ. М.: Госхимиздат; 1962.; https://www.vedomostincesmp.ru/jour/article/view/203

  10. 10
  11. 11
    Academic Journal

    Source: Pharmacy & Pharmacology; Том 3, № 6(13) (2015); 20-23 ; Фармация и фармакология; Том 3, № 6(13) (2015); 20-23 ; 2413-2241 ; 2307-9266 ; 10.19163/2307-9266-2015-3-6(13)

    File Description: application/pdf

    Relation: https://www.pharmpharm.ru/jour/article/view/168/285; Государственная фармакопея РФ. – ХII изд. – М.: МЗ РФ, 2007. – Ч. 1. – 696 с.; Европейская фармакопея 7.0. – Страсбург: Изд. Совет Европы, 1967. – Т. 1. – С. 325; 342.; Лекарственное сырье растительного и животного происхождения: учебное пособие / Под ред. Г.П. Яковлева. – СПб.: СпецЛит, 2010. – С. 761; 763; 764; 770.; Отдельные маркетинговые исследования ассортимента диуретических лекарственных средств в аптечных учреждениях г. Пятигорска / С.В. Клейчук, С.А. Михайлова, А.А. Золотухина и др. // Фармация и фармакология. – 2014. – №6(7). – С. 116-120.; Самылина И.А., Аносова О.Г. Фармакогнозия. Атлас: учебное пособие. М.: ГЭОТАР – Медиа, 2007. 188 с; https://www.pharmpharm.ru/jour/article/view/168

  12. 12
  13. 13
  14. 14
  15. 15
  16. 16
  17. 17
  18. 18
  19. 19
  20. 20