Showing 1 - 20 results of 64 for search '"НЕВРОЛОГИЧЕСКИЕ ПРОЯВЛЕНИЯ"', query time: 0.84s Refine Results
  1. 1
  2. 2
  3. 3
    Academic Journal

    Source: Acta Biomedica Scientifica; Том 9, № 5 (2024); 168-177 ; 2587-9596 ; 2541-9420

    File Description: application/pdf

    Relation: https://www.actabiomedica.ru/jour/article/view/5046/2912; Арутюнов Г.П., Козиолова Н.А., Тарловская Е.И., Арутюнов А.Г., Григорьева Н.Ю., Джунусбекова Г.А., и др. Согласованная позиция экспертов Евразийской ассоциации терапевтов по некоторым новым механизмам патогенеза COVID-19: фокус на гемостаз, вопросы гемотрансфузии и систему транспорта газов крови. Кардиология. 2020; 60(5): 9-19.; Колобухина Л.В., Бургасова О.А., Краева Л.А., Гущин В.А., Бурцева Е.И., Кружкова И.С., и др. Клинико-лабораторный профиль пациентов с COVID-19, госпитализированных в инфекционный стационар г. Москвы в период с мая по июль 2020 года. Инфекционные болезни. 2021; 19(2): 5-15.; Asadi-Pooya AA, Simani L. Central nervous system manifestations of COVID-19: A systematic review. J Neurol Scie. 2020; 413: 116832. doi:10.1016/j.jns.2020.116832; Satarker S, Nampoothiri M. Involvement of the nervous system in COVID-19: The bell should toll in the brain. Life Scie. 2020; 262: 118568. doi:10.1016/j.lfs.2020.118568; Bobker SM, Robbins MS. COVID-19 and headache: A primer for trainees. Headache. 2020; 60(8): 1806-1811. doi:10.1111/head.13884; Walls AC, Fiala B, Schäfer A, Wrenn S, Pham MN, Murphy M, et al. Elicitation of potent neutralizing antibody responses by designed protein nanoparticle vaccines for SARS-CoV-2. Cell. 2020; 183(5): 1367-1382.e17. doi:10.1016/j.cell.2020.10.043; Rothan HA, Byrareddy SN. The epidemiology and pathogenesis of coronavirus disease (COVID-19) outbreak. J Autoimmun. 2020; 109: 102433. doi:10.1016/j.jaut.2020.102433; Wan Y, Shang J, Graham R, Baric RS, Li F. Receptor recognition by the novel coronavirus from Wuhan: An analysis based on decade-long structural studies of SARS coronavirus. J Virol. 2020; 94(7): e00127-20. doi:10.1128/JVI.00127-20; Doobay MF, Talman LS, Obr TD, Tian X, Davisson RL, Lazartigues E. Differential expression of neuronal ACE2 in transgenic mice with overexpression of the brain renin-angiotensin system. Am J Physiol Regul Integr Comp Physiol. 2007; 292(1): R373-R381. doi:10.1152/ajpregu.00292.2006; Palasca O, Santos A, Stolte C, Gorodkin J, Jensen LJ. TISSUES 2.0: An integrative web resource on mammalian tissue expression. Database (Oxford). 2018; 2018: bay028. doi:10.1093/database/bay028; McCray PB Jr, Pewe L, Wohlford-Lenane C, Hickey M, Manzel L, Shi L, et al. Lethal infection of K18-hACE2 mice infected with severe acute respiratory syndrome coronavirus. J Virol. 2007; 81(2): 813-821. doi:10.1128/JVI.02012-06; Montalvan V, Lee J, Bueso T, De Toledo J, Rivas K. Neurological manifestations of COVID-19 and other coronavirus infections: A systematic review. Clin Neurol Neurosurg. 2020; 194: 105921. doi:10.1016/j.clineuro.2020.105921; Divani AA, Andalib S, Biller J, Di Napoli M, Moghimi N, Rubinos CA, et al. Central nervous system manifestations associated with COVID-19. Curr Neurol Neurosci Rep. 2020; 20(12): 60. doi:10.1007/s11910-020-01079-7; Baig AM, Khaleeq A, Ali U, Syeda H. Evidence of the COVID-19 virus targeting the CNS: Tissue distribution, host-virus interaction, and proposed neurotropic mechanisms. ACS Chem Neurosci. 2020; 11(7): 995-998. doi:10.1021/acschemneuro.0c00122; Li YC, Bai WZ, Hashikawa T. The neuroinvasive potential of SARS-CoV2 may play a role in the respiratory failure of COVID-19 patients. J Med Virol. 2020; 92(6): 552-555. doi:10.1002/jmv.25728; Mao L, Jin H, Wang M, Hu Y, Chen S, He Q, et al. Neurologic manifestations of hospitalized patients with coronavirus disease 2019 in Wuhan, China. JAMA Neurol. 2020; 77(6): 683-690. doi:10.1001/jamaneurol.2020.1127; Huang C, Wang Y, Li X, Ren L, Zhao J, Hu Y, et al. Clinical features of patients infected with 2019 novel coronavirus in Wuhan, China. Lancet. 2020; 395(10223): 497-506. doi:10.1016/S0140-6736(20)30183-5; Chen N, Zhou M, Dong X, Qu J, Gong F, Han Y, et al. Epidemiological and clinical characteristics of 99 cases of 2019 novel coronavirus pneumonia in Wuhan, China: A descriptive study. Lancet. 2020; 395(10223): 507-513. doi:10.1016/S0140-6736(20)30211-7; Xu XW, Wu XX, Jiang XG, Xu KJ, Ying LJ, Ma CL, et al. Clinical findings in a group of patients infected with the 2019 novel coronavirus (SARS-Cov-2) outside of Wuhan, China: Retrospective case series. BMJ. 2020; 368: m606. doi:10.1136/bmj.m606; Wang D, Hu B, Hu C, Zhu F, Liu X, Zhang J, et al. Clinical characteristics of 138 hospitalized patients with 2019 novel coronavirus-infected pneumonia in Wuhan, China. JAMA. 2020; 323(11): 1061-1069. doi:10.1001/jama.2020.1585; Tian S, Hu N, Lou J, Chen K, Kang X, Xiang Z, et al. Characteristics of COVID-19 infection in Beijing. J Infect. 2020; 80(4): 401-406. doi:10.1016/j.jinf.2020.02.018; Guan WJ, Ni ZY, Hu Y, Liang WH, Ou CQ, He JX, et al.; China Medical Treatment Expert Group for Covid-19. Clinical characteristics of coronavirus disease 2019 in China. N Engl J Med. 2020; 382(18): 1708-1720. doi:10.1056/NEJMoa2002032; Romero-Sánchez CM, Díaz-Maroto I, Fernández-Díaz E, Sánchez-Larsen Á, Layos-Romero A, García-García J, et al. Neurologic manifestations in hospitalized patients with COVID-19: The ALBACOVID registry. Neurology. 2020; 95(8): e1060-e1070. doi:10.1212/WNL.0000000000009937; Belvis R. Headaches during COVID-19: My clinical case and review of the literature. Headache. 2020: 60(7): 1422-1426. doi:10.1111/head.13841; Fang L, Karakiulakis G, Roth M. Are patients with hypertension and diabetes mellitus at increased risk for COVID-19 infection? Lancet Respir Med. 2020; 8(4): e21. doi:10.1016/S2213-2600(20)30116-8; Maassen Van Den Brink A, de Vries T, Danser AHJ. Headache medication and the COVID-19 pandemic. J Headache Pain. 2020; 21(1): 38. doi:10.1186/s10194-020-01106-5; Rinott E, Kozer E, Shapira Y, Bar-Haim A, Youngster I. Ibuprofen use and clinical outcomes in COVID-19 patients. Clin Microbiol Infect. 2020; 26(9): 1259.e5-1259.e7. doi:10.1016/j.cmi.2020.06.003; Chen T, Wu D, Chen H, Yan W, Yang D, Chen G, et al. Clinical characteristics of 113 deceased patients with coronavirus disease 2019: Retrospective study. BMJ. 2020; 368: m1091. doi:10.1136/bmj.m1091; Alkeridy WA, Almaghlouth I, Alrashed R, Alayed K, Binkhamis K, Alsharidi A, et al. A unique presentation of delirium in a patient with otherwise asymptomatic COVID-19. J Am Geriatr Soc. 2020; 68(7): 1382-1384. doi:10.1111/jgs.16536; Helms J, Kremer S, Merdji H, Clere-Jehl R, Schenck M, Kummerlen C, et al. Neurologic features in severe SARS-CoV-2 infection. N Engl J Med. 2020; 382: 2268-2270. doi: 10. 1056/NEJMc2008597; Kotfis K, Williams Roberson S, Wilson JE, Dabrowski W, Pun BT, Ely EW. COVID-19: ICU delirium management during SARS-CoV-2 pandemic. Crit Care. 2020; 24(1): 176. doi:10.1186/s13054-020-02882-x; Cooper KW, Brann DH, Farruggia MC, Bhutani S, Pellegrino R, Tsukahara T, et al. COVID-19 and the chemical senses: Supporting players take center stage. Neuron. 2020; 107(2): 219-233. doi:10.1016/j.neuron.2020.06.032; Galougahi MK, Ghorbani J, Bakhshayeshkaram M, Naeini AS, Haseli S. Olfactory bulb magnetic resonance imaging in SARS- CoV-2-induced anosmia: The first report. Acad Radiol. 2020; 27(6): 892-893. doi:10.1016/j.acra.2020.04.002; Parma V, Ohla K, Veldhuizen MG, Niv MY, Kelly CE, Bakke AJ, et al. More than smell – COVID-19 is associated with severe impairment of smell, taste, and chemesthesis. Chem Senses. 2020; 45(7): 609-622. doi:10.1093/chemse/bjaa041; Kaye R, Chang CWD, Kazahaya K, Brereton J, Denneny JC 3rd. COVID-19 anosmia reporting tool: Initial findings. Otolaryngol Head Neck Surg. 2020; 163(1): 132-134. doi:10.1177/0194599820922992; Giacomelli A, Pezzati L, Conti F, Bernacchia D, Siano M, Oreni L, et al. Self-reported olfactory and taste disorders in SARSCoV-2 patients: A cross-sectional study. Clin Infect Dis. 2020; 71(15): 889-890. doi:10.1093/cid/ciaa330; Menni C, Valdes A, Freydin MB, Ganesh S, El-Sayed Moustafa J, Visconti A, et al. Loss of smell and taste in combination with other symptoms is a strong predictor of COVID-19 infection. medRxiv. 2020; 2020.04.05.20048421. doi:10.1101/2020.04.05.20048421; Lechien JR, Chiesa-Estomba CM, De Siati DR, Horoi M, Le Bon SD, Rodriguez A, et al. Olfactory and gustatory dysfunctions as a clinical presentation of mild-to-moderate forms of the coronavirus disease (COVID-19): A multicenter European study. Eur Arch Otorhinolaryngol. 2020; 277(8): 2251-2261. doi: 10. 1007/s00405-020-05965-1; Song J, Deng Y-K, Wang H, Wang Z-C, Liao B, Ma J, et al. Self-reported taste and smell disorders in patients with COVID-19: Distinct features in China. medRxiv. 2020: 41(1): 14-23. doi:10.1007/s11596-021-2312-7; Avula A, Nalleballe K, Narula N, Sapozhnikov S, Dandu V, Toom S, et al. COVID-19 presenting as stroke. Brain Behav Immun. 2020; 87: 115-119. doi:10.1016/j.bbi.2020.04.077; Karimi N, Sharifi Razavi A, Rouhani N. Frequent convulsive seizures in an adult patient with COVID-19: A case report. Iran Red Crescent Med J. 2020; 22(3): e102828. doi:10.5812/ircmj.102828; Moriguchi T, Harii N, Goto J, Harada D, Sugawara H, Takamino J, et al. A first case of meningitis/encephalitis associated with SARS-Coronavirus-2. Int J Infect Dis. 2020; 94: 55-58. doi:10.1016/j.ijid.2020.03.062; Lu L, Xiong W, Liu D, Liu J, Yang D, Li N, et al. New onset acute symptomatic seizure and risk factors in coronavirus disease 2019: A retrospective multicenter study. Epilepsia. 2020; 61(6): 49-53. doi:10.1111/epi.16524; Yazbeck M, Sra P, Parvizi J. Rapid response electroencephalography for urgent evaluation of patients in community hospital intensive care practice. J Neurosci Nurs. 2019; 51(6): 308-312. doi:10.1097/jnn.0000000000000476; Hepburn M, Mullaguri N, George P, Hantus S, Punia V, Bhimraj A, et al. Acute symptomatic seizures in critically ill patients with COVID-19: Is there an association? Neurocrit Care. 2021; 34(1): 139-143. doi:10.1007/s12028-020-01006-1; Vollono C, Rollo E, Romozzi M, Frisullo G, Servidei S, Borghetti A, et al. Focal status epilepticus as unique clinical feature of COVID-19: A case report. Seizure. 2020; 78: 109-112. doi:10.1016/j.seizure.2020.04.009; Louis S, Dhawan A, Newey C, Nair D, Jehi L, Hantus S, et al. Continuous electroencephalography (cEEG) characteristics and acute symptomatic seizures in COVID-19 patients. medRxiv. 2020; 131(11): 2651-2656. doi:10.1101/2020.05. 26.20114033; Galanopoulou AS, Ferastraoaru V, Correa DJ, Cherian K, Duberstein S, Gursky J, et al. EEG findings in acutely ill patients investigated for SARS-CoV-2/COVID-19: A small case series preliminary report. Epilepsia Open. 2020; 5(2): 314-324. doi:10.1002/epi4.12399; Morfopoulou S, Brown JR, Davies EG, Anderson G, Virasami A, Qasim W, et al. Human coronavirus OC43 associated with fatal encephalitis. N Engl J Med. 2016; 375(5): 497-498. doi:10.1056/NEJMc1509458; Poyiadji N, Shahin G, Noujaim D, Stone M, Patel S, Griffith B. COVID-19-associated acute hemorrhagic necrotizing encephalopathy: CT and MRI features. Radiology. 2020; 201187: 119-120. doi:10.1148/radiol.2020201187; Щербак С.Г., Вологжанин Д.А., Камилова Т.А., Голота А.С. Острые нарушения мозгового кровообращения при COVID-19. Университетский терапевтический вестник. 2023; 5(1): 5-35.; Quintanilla-Sánchez C, Salcido-Montenegro A, González-González JG, Rodríguez-Gutiérrez R. Acute cerebrovascular events in severe and nonsevere COVID-19 patients: A systematic review and meta-analysis. Rev Neurosci. 2022; 33(6): 631-639. doi:10.1515/revneuro-2021-0130; Чухловина М.Л. Полинейропатии в условиях пандемии COVID-19. Журнал неврологии и психиатрии им. С.С. Корсакова. 2021; 121(5): 138-143.; Leonhard SE. Diagnosis and management of Guillain – Barré syndrome in ten steps. Nat Rev Neurol. 2019; 15(11): 671-683. doi:10.1038/s41582-019-0250-9; https://www.actabiomedica.ru/jour/article/view/5046

  4. 4
    Academic Journal

    Source: INTERNATIONAL NEUROLOGICAL JOURNAL; Vol. 17 No. 1 (2021); 17-22
    МЕЖДУНАРОДНЫЙ НЕВРОЛОГИЧЕСКИЙ ЖУРНАЛ; Том 17 № 1 (2021); 17-22
    МІЖНАРОДНИЙ НЕВРОЛОГІЧНИЙ ЖУРНАЛ; Том 17 № 1 (2021); 17-22

    File Description: application/pdf

  5. 5
    Academic Journal

    Source: INTERNATIONAL NEUROLOGICAL JOURNAL; Том 16, № 7 (2020); 32-35
    МЕЖДУНАРОДНЫЙ НЕВРОЛОГИЧЕСКИЙ ЖУРНАЛ; Том 16, № 7 (2020); 32-35
    МІЖНАРОДНИЙ НЕВРОЛОГІЧНИЙ ЖУРНАЛ; Том 16, № 7 (2020); 32-35

    File Description: application/pdf

  6. 6
  7. 7
  8. 8
  9. 9
  10. 10
  11. 11
  12. 12
  13. 13
  14. 14
    Academic Journal

    Source: Neurology, Neuropsychiatry, Psychosomatics; Vol 11, No 2S (2019): Спецвыпуск: боль в спине и конечностях; 83-88 ; Неврология, нейропсихиатрия, психосоматика; Vol 11, No 2S (2019): Спецвыпуск: боль в спине и конечностях; 83-88 ; 2310-1342 ; 2074-2711 ; 10.14412/2074-2711-2019-2S

    File Description: application/pdf

    Relation: https://nnp.ima-press.net/nnp/article/view/1125/906; World health statistics 2017: monitoring health for the SDGs, Sustainable Development Goals. Geneva: World Health Organization; 2017. Licence: CC BY-NC-SA 3.0 IGO.; Hartz SM, Oehlert M, Horton AC, et al. Daily drinking is associated with increased mortality. Alcoholism: Clin Exper Res. 2018;42(11):2246-55. doi:10.1111/acer.13886; World Health Organization. International guide for monitoring alcohol consumption and related harm. Geneva: World Health Organization; 2000.; Пауков ВС, Воронина ТМ, Кириллов ЮА и др. Структурно-функциональные основы алкогольной болезни. Российский журнал гастроэнтерологии, гепатологии, колопроктологии. 2018;28(5):7-17; Koike H, Iijima M, Sugiura M, et al. Alcoholic neuropathy is clinicopathologically distinct from thiamine-deficiency neuropathy. Ann Neurol. 2003;54(1):19-29. doi:10.1002/ana.10550; Строков ИА, Алексеев ВВ, Айзенберг ИВ и др. Острая алкогольная полиневропатия. Неврологический журнал. 2004;9(1):45-50.; Shiraishi K, Watanabe M, Motegi S, et al. Influence of acute alcohol load on metabolism of skeletal muscles: expired gas analysis during exercise. Alcoholism Clin Exper Res. 2003;27(8):76-8. doi:10.1097/01.ALC.0000078826.10198.31; Nicolas JM, Fernandez-Sola J, Robert J, et al. High ethanol intake and malnutrition in alcoholic cerebellar shrinkage. Q J Med. 2000;93:449-56. doi:10.1093/qjmed/93.7.449; Oh SJ, Kurokawa K, de Almeida DF, et al. Subacute inflammatory demyelinating polyneuropathy. Neurology. 2003;61(11):1507-12. doi:10.1212/01.WNL.0000096166.28131.4C; McLane JA. Retrograde axonal transport in chronic ethanol-fed and thiamine-deficient rats. Alcohol. 1990;7(2):103-6. doi:10.1016/0741-8329(90)90069-O; Koike H, Mori K, Misu K, et al. Painful alcoholic polyneuropathy with predominant small-fiber loss and normal thiamine status. Neurology. 2001;56(12):1727-32. doi:10.1212/WNL.56.12.1727; Windebank AJ. Polyneuropathy due to nutritional deficiency and alcoholism. In: Dyck PJ, Thomas PK, Griffin JW, et al. Peripheral Neuropathy. 3rd ed. Philadelphia: WB Saunders Co.; 1993. P. 1310-21.; Дамулин ИВ, Шмидт ТЕ. Неврологические расстройства при алкоголизме. Неврологический журнал. 2004;9(2):4-10.; McIntosh СJ, Chick J. Alcohol and the nervous system. J Neurol Neurosurg Psychiatry. 2004;75(Suppl III):16-21.; Мироненко ТВ, Чумак ЕВ, Лозовой ЕВ. Неврологические синдромы хронического алкоголизма. Международный неврологический журнал. 2010;6(36):166-73.; Galvin R, Brathen G, Ivashynka A, et al. EFNS guidelines for diagnosis, therapy and prevention of Wernicke encephalopathy. Eur J Neurol. 2010;17(12):1408-18. doi:10.1111/j.1468-1331.2010.03153.x; Сиволап ЮП, Дамулин ИВ. Синдром Вернике–Корсакова. Неврология, нейропсихиатрия, психосоматика. 2014;6(4):76-80. doi:10.14412/2074-2711-2014- 4-76-80; Cerejo R, Newey C, Stillman M. Teaching neuroimages: Wernicke encephalopathy: diagnostically deceptive but treatable. Neurology. 2013;80(9):e92. doi:10.1212/WNL.0b013e31828406c8; Kantor S, Prakash S, Chandwani J, et al. Wernicke’s encephalopathy following hyperemesis gravidarum. Ind J Crit Care Med. 2014;18(3):164-6. doi:10.4103/0972-5229.128706; Zuccoli G, Santa Cruz D, Bertolini M, et al. MR Imaging Findings in 56 Patients with Wernicke Encephalopathy: Nonalcoholics May Differ from Alcoholics. Am J Neuroradiol. 2009;30(1):171-6. doi:10.3174/ajnr.A1280; Gilman S, Koeppe R, Adams K, et al. PET studies of cerebral benzodiazepine receptor binding in chronic alcoholics. Ann Neurol. 1996;40:163-71. doi:10.1002/ana.410400207; Зиновьева ОЕ, Емельянова АЮ. Алкогольная полиневропатия: клиникопатогенетические варианты, принципы диагностики и лечения. Эффективная фармакотерапия. Неврология. 2015;13(2):28-36.; Левин ОС. Полинейропатии. Клиническое руководство. Москва: Медицинское информационное агентство; 2005. 496 с.; Koike H, Ito S, Morozumi S, et al. Rapidly developing weakness mimicking Guillain-Barre syndrome in beriberi neuropathy: two case reports. Nutrition. 2008;24:776-80. doi:10.1016/j.nut.2008.02.022; Ангельчева ОИ, Зиновьева ОЕ, Яхно НН. Нервно-мышечные нарушения при хроническом алкоголизме: Учебное пособие. Москва: МЕДпресс-информ; 2009. 80 с.; Urbano-Marquez A, Fernandez-Sola J. Effects of alcohol on skeletal and cardiac muscle. Muscle Nerve. 2004;30(6):689-707. doi:10.1002/mus.20168; Preedy VR, Ohlendieck K, Adachi J, et al. The importance of alcohol-induced muscle disease. J Muscle Res Cell Motil. 2003;24(1):55-63. doi:10.1023/A:1024842817060; Казанцева ЮВ, Щеглова НС, Зиновьева ОЕ. Алкогольная миопатия: вопросы патогенеза и подходы к лечению. Эффективная фармакотерапия. Неврология и психиатрия. 2012;(3).; Steiner JL, Lang CH. Dysregulation of skeletal muscle protein metabolism by alcohol. Am J Physiol Endocrinol Metabol. 2015;308(9):699-712. doi:10.1152/ajpendo.00006.2015; Lang CH, Frost RA, Deshpande N, et al. Alcohol impairs leucine-mediated phosphorylation of 4E-BP1, S6K1, eIF4G, and mTOR in skeletal muscle. Am J Physiol Endocrinol Metabol. 2003;285(6):1205-15. doi:10.1152/ajpendo.00177.2003; Ridley NJ, Draper B, Withall A. Alcoholrelated dementia: an update of the evidence. Alzheimers Res Ther. 2013;5(1):3. doi:10.1186/alzrt157 32. Fernandez-Sola J. Low-dose ethanol consumption allows strength recovery in chronic alcoholic myopathy. QJM. 2000;93:35-40. doi:10.1093/qjmed/93.1.35; Раменская ГВ, Петухова ОА, Смирнов ВВ. Клинико-фармакологические аспекты применения препаратов витамина В1 с различной растворимостью в жирах и водных средах. Неврология, нейропсихиатрия, психосоматика. 2012;4(4):67-70. doi:10.14412/2074-2711-2012-425; Ахмеджанова ЛТ, Солоха OА, Строков ИА. Витамины группы В в лечении неврологических заболеваний. Российский медицинский журнал. 2009;17(11):776-83.; Franca DS, Souza AL, Almeida KR, et al. B vitamins induce an antinociceptive effect in the acetic acid and formaldehyde models of nociception in mice. Eur J Pharmacol. 2001;421(3):157-64. doi:10.1016/S0014-2999(01)01038-X; Brü ggemann G, Koehler CO, Koch EM. Results of double-blind study of diclofenac + vitamin B1, B6, B12 versus diclofenac in patients with acute pain of the lumbar vertebrae. A multicenter study. Klin Wochenschrift. 1990;68(2):116-20. doi:10.1007/BF01646858

  15. 15
  16. 16
  17. 17
  18. 18
  19. 19
  20. 20