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    Academic Journal

    Source: Regulatory Research and Medicine Evaluation; Том 14, № 3 (2024); 265-282 ; Регуляторные исследования и экспертиза лекарственных средств; Том 14, № 3 (2024); 265-282 ; 3034-3453 ; 3034-3062 ; 10.30895/1991-2919-2024-14-3

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    Relation: https://www.vedomostincesmp.ru/jour/article/view/630/1457; https://www.vedomostincesmp.ru/jour/article/view/630/1377; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/524; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/525; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/532; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/533; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/534; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/535; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/536; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/537; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/538; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/579; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/580; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/581; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/582; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/583; https://www.vedomostincesmp.ru/jour/article/downloadSuppFile/630/611; Куценко СА. Основы токсикологии: научно-методическое издание. СПб: Фолиант; 2004. EDN: QKMWIB; Крышень КЛ, Мошков АЕ, Демяновский МН, Ковалева МА. Экспериментальное исследование фармакологической безопасности лекарственных средств, применяемых для купирования лихорадочного синдрома в детском возрасте. Безопасность и риск фармакотерапии. 2020;8(3):151–9. https://doi.org/10.30895/2312-7821-2020-8-3-151-159; Han KS, Woo DH. Classification of advanced me thods for evaluating neurotoxicity. Mol Cell Toxicol. 2021;17(4):377–83. https://doi.org/10.1007/s13273-021-00161-6; Slater C. Diverse aspects of vulnerability at the neuromuscular junction. Brain. 2012;135(4):997–8. https://doi.org/10.1093/brain/aws057; Stubbs EB Jr. Targeting the blood-nerve barrier for the management of immune-mediated peripheral neuropathies. Exp Neurol. 2020;331:113385. https://doi.org/10.1016/j.expneurol.2020.113385; Sheikh S, Alvi U, Soliven B, Rezania K. Drugs that induce or cause deterioration of myasthenia gravis: an update. J Clin Med. 2021;10(7):1537. https://doi.org/10.3390/jcm10071537; Jones MR, Urits I, Wolf J, Corrigan D, Colburn L, Peterson E, et al. Drug-induced peripheral neuropathy: a narrative review. Curr Clin Pharmacol. 2020;15(1):38–48. https://doi.org/10.2174/1574884714666190121154813; Misra UK, Kalita J. Toxic neuropathies. Neurol India. 2009;57(6):697–705. https://doi.org/10.4103/0028-3886.59463; Pellacani C, Eleftheriou G. Neurotoxicity of antineoplastic drugs: mechanisms, susceptibility, and neuroprotective strategies. Adv Med Sci. 2020;65(2):265–85. https://doi.org/10.1016/j.advms.2020.04.001; Grisold W, Carozzi VA. Toxicity in peripheral nerves: an overview. Toxics. 2021;9(9):218. https://doi.org/10.3390/toxics9090218; Cook D, Brown D, Alexander R, March R, Morgan P, Satterthwaite M, et al. Lessons learned from the fate of Astra-Zeneca’s drug pipeline: a five-dimensional framework. Nat Rev Drug Discov. 2014;13(6):419–31. https://doi.org/10.1038/nrd4309; Chi LH, Burrows AD, Anderson RL. Can preclinical drug development help to predict adverse events in clinical trials? Drug Discov Today. 2022;27(1):257–68. https://doi.org/10.1016/j.drudis.2021.08.010; Masjosthusmann S, Barenys M, El-Gamal M, Geerts L, Gerosa L, Gorreja A, et al. Literature review and appraisal on alternative neurotoxicity testing methods. EFSA Supporting Publications. 2018;15(4):1410E. https://doi.org/10.2903/sp.efsa.2018.en-1410; Chinn GA, Pearn ML, Vutskits L, Mintz CD, Loepke AW, Lee JJ et al. Standards for preclinical research and publications in developmental anaesthetic neurotoxicity: expert opinion statement from the SmartTots preclinical working group. Br J Anaesth. 2020;124(5):585–93. https://doi.org/10.1016/j.bja.2020.01.011; Shih HP, Zhang X, Aronov AM. Drug discovery effectiveness from the standpoint of therapeutic mechanisms and indications. Nat Rev Drug Discov. 2017;17(1):19–33. https://doi.org/10.1038/nrd.2017.194; Александров ИВ, Егорова ЕИ, Васина ЕЮ, Новиков ВК, Матыко ПГ, Галагудза ММ. Экспериментальные исследования на животных в эпоху трансляционной медицины. Какими им быть? Трансляционная медицина. 2017;4(2):52–70. https://doi.org/10.18705/2311-4495-2017-4-2-52-70; Llorens J, Li AA, Ceccatelli S, Suñol C. Strategies and tools for preventing neurotoxicity: to test, to predict and how to do it. Neurotoxicology. 2012;33(4):796–804. https://doi.org/10.1016/j.neuro.2012.01.019; Cashman CR, Höke A. Mechanisms of distal axonal degeneration in peripheral neuropathies. Neurosci Lett. 2015;596:33–50. https://doi.org/10.1016/j.neulet.2015.01.048; Hauser S, ed. Harrison’s Neurology in Clinical Medicine. San Francisco: McGraw-Hill; 2010.; Wasinska-Borowiec W, Abri Aghdam K, Matias Saari J, Grzybowski A. An updated review on the most common agents causing toxic optic neuropathies. Current Pharm Des. 2017;23(4):586–95. https://doi.org/10.2174/1381612823666170124113826; Lindhard Madsen M, Du H, Ejskjær N, Jensen P, Madsen J, Dybkær K. Aspects of vincristine-induced neuropathy in hematologic malignancies: a systematic review. Cancer Chemother Pharmacol. 2019;84(3):471–85. https://doi.org/10.1007/s00280-019-03884-5; Одинак ММ, Дыскин ДЕ. Клиническая диагностика в неврологии. СПб: СпецЛит; 2010. EDN: QLVPQP; Tilson HA. Behavioral indices of neurotoxicity: what can be measured? Neurotoxicol Teratol. 1987;9(6):427–43. https://doi.org/10.1016/0892-0362(87)90055-9; Schönfeld LM, Dooley D, Jahanshahi A, Temel Y, Hendrix S. Evaluating rodent motor functions: which tests to choose? Neurosci Biobehav Rev. 2017;83:298–312. https://doi.org/10.1016/j.neubiorev.2017.10.021; van Dellen A, Blakemore C, Deacon R, York D, Hannan AJ. Delaying the onset of Huntington’s in mice. Nature. 2000;404:721–22. https://doi.org/10.1038/35008142; Deacon RM. Measuring motor coordination in mice. J Vis Exp. 2013;75:e2609. https://doi.org/10.3791/2609; Воронина ТА, Середенин СБ. Методические указания по изучению транквилизирующего (анксиолитического) действия фармакологических веществ. В кн.: Хабриев РУ, ред. Руководство по экспериментальному (доклиническому) изучению новых фармакологических веществ. М.: Медицина; 2005. EDN: QCIIOB; Ахапкина ВИ, Воронина ТА. Изучение противоинсультного действия фенотропила на модели геморрагического инсульта (интрацеребральная посттравматическая гематома) у крыс. Нервные болезни. 2006;(1):37–42. EDN: OOKJEX; Brooks SP, Dunnett SB. Tests to assess motor phenotype in mice: a user’s guide. Nat Rev Neurosci. 2009;10(7):519–29. https://doi.org/10.1038/nrn2652; Takeshita H, Yamamoto K, Nozato S, Inagaki T, Tsuchimochi H, Shirai M, et al. Modified forelimb grip strength test detects aging-associated physiological decline in skeletal muscle function in male mice. Sci Rep. 2017;(7):42323. https://doi.org/10.1038/srep42323; Mintz EL, Passipieri JA, Lovell DY, Christ GJ. Applications of in vivo functional testing of the rat tibialis anterior for evaluating tissue engineered skeletal muscle repair. J Vis Exp. 2016;(116):54487. https://doi.org/10.3791/54487; Chiu CS, Weber H, Adamski S, Rauch A, Gentile MA, Alves SE. Non-invasive muscle contraction assay to study rodent models of sarcopenia. BMC Musculoskelet Disord. 2011;12:246. https://doi.org/10.1186/1471-2474-12-246; Чичева ММ, Вихарева ЕВ, Мальцев АВ, Устюгов АА. Эволюция методик оценки моторной функции лабораторных грызунов, моделирующих нейродегенеративные заболевания. Biomed Chem Res Meth. 2018;1(3):e00030. https://doi.org/10.18097/bmcrm00030; Hsieh TH, Tsai JY, Wu YN, Hwang IS, Chen TI, Chen JJJ. Time course quantification of spastic hypertonia following spinal hemisection in rats. Neuroscience. 2010;167(1):185–98. https://doi.org/10.1016/j.neuroscience.2010.01.064; Ильинский НС, Тюнин МА, Матросова МО. Методические подходы к оценке паралитического синдрома токсического генеза в экспериментах на грызунах. Лабораторные животные для научных исследований. 2021;(3):71–4. https://doi.org/10.29296/2618723X-2021-03-09; Aoki KR. A comparison of the safety margins of botulinum neurotoxin serotypes A, B, and F in mice. Toxicon. 2001;39(12):1815–20. https://doi.org/10.1016/s0041-0101(01)00101-5; Broide RS, Rubino J, Nicholson GS, Ardila MC, Brown MS, Aoki KR, et al. The rat Digit Abduction Score (DAS) assay: a physiological model for assessing botulinum neurotoxininduced skeletal muscle paralysis. Toxicon. 2013;71:18–24. https://doi.org/10.1016/j.toxicon.2013.05.004; Nishitani A, Yoshihara T, Tanaka M, Kuwamura M, Asano M, Tsubota Y, et al. Muscle weakness and impaired motor coordination in hyperpolarization-activated cyclic nucleotide-gated potassium channel 1-deficient rats. Exp Anim. 2020;69(1):11–7. https://doi.org/10.1538/expanim.19-0067; Turner PV, Pang DS, Lofgren JL. A review of pain assessment methods in laboratory rodents. Comp Med. 2019;69(6):451–67. https://doi.org/10.30802/AALAS-CM-19-000042; Deuis JR, Dvorakova LS, Vetter I. Methods used to evaluate pain behaviors in rodents. Front Mol Neurosci. 2017;10:284. https://doi.org/10.3389/fnmol.2017.00284с; Modi AD, Parekh A, Pancholi YN. Evaluating pain behaviours: widely used mechanical and thermal methods in rodents. Behav Brain Res. 2023;446:114417. https://doi.org/10.1016/j.bbr.2023.114417; Bohic M, Pattison LA, Jhumka ZA. Mapping the neuroethological signatures of pain, analgesia, and recovery in mice. Neuron. 2023;111(18):2811–2830.e8. https://doi.org/10.1016/j.neuron.2023.06.008; Presto P, Ji G, Junell R, Griffin Z, Neugebauer V. Fear extinction-based inter-individual and sex differences in pain-related vocalizations and anxiety-like behaviors but not nocifensive reflexes. Brain Sci. 2021;11(10):1339. https://doi.org/10.3390/brainsci11101339; Palazzo E, Marabese I, Gargano F, Guida F, Belardo C, Maione S. Methods for evaluating sensory, affective and cognitive disorders in neuropathic rodents. Curr Neuropharmacol. 2021;19(6):736–46. https://doi.org/10.2174/1570159X18666200831153117; Chao D, Tran H, Hogan QH, Pan B. Analgesic dorsal root ganglion field stimulation blocks both afferent and efferent spontaneous activity in sensory neurons of rats with monosodium iodoacetate-induced osteoarthritis. Osteoarthritis Cartilage. 2022;30(11):1468–81. https://doi.org/10.1016/j.joca.2022.08.008; Бондаренко ДА, Дьяченко ИА, Скобцов ДИ, Мурашев АН. In vivo модели для изучения анальгетической активности. Биомедицина. 2011;(2):84–94. EDN: NVYEMF; Liu Q, Liu J, Guo M. Comparison of retinal degeneration treatment with four types of different mesenchymal stem cells, human induced pluripotent stem cells and RPE cells in a rat retinal degeneration model. J Transl Med. 2023;21(1):910. https://doi.org/10.1186/s12967-023-04785-1; Gaillard D, Stratford JM. Measurement of behavioral taste responses in mice: two-bottle preference, lickometer, and conditioned taste-aversion tests. Curr Protoc Mouse Biol. 2016;6(4):380–407. https://doi.org/10.1002/cpmo.18; McFadden SL, Simmons AM, Erbe C, Thomas JA. Behavioral and physiological audiometric methods for animals. In: Erbe C, Thomas JA, eds. Exploring animal behavior through sound. Springer; 2022. https://doi.org/10.1007/978-3-030-97540-1_10; Arevalo N. Open-source JL olfactometer for awake behaving recording of brain activity for mice engaged in olfactory tasks. In: Paredes RG, Portillo W, Bedos M, eds. Animal models of reproductive behavior. New York: Humana; 2023. https://doi.org/10.1007/978-1-0716-3234-5_6; Kimura J. Electrodiagnosis in diseases of nerve and muscle: principles and practice. Oxford University Press; 2013. https://doi.org/10.1093/med/9780199738687.001.0001; Тюнин МА, Ильинский НС, Гоголевский АС, Кручинин ЕГ, Гладких ВД, Мацейчик ВА, Матросова МО. Электрофизиологические методы диагностики нарушений нервно-мышечной передачи при острых отравлениях фосфорорганическими соединениями. Военно-медицинский журнал. 2020;341(10):11–9. EDN: NSYNCD; https://www.vedomostincesmp.ru/jour/article/view/630

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