Εμφανίζονται 1 - 20 Αποτελέσματα από 68 για την αναζήτηση '"немедикаментозное лечение"', χρόνος αναζήτησης: 0,74δλ Περιορισμός αποτελεσμάτων
  1. 1
  2. 2
    Academic Journal

    Πηγή: Meditsinskiy sovet = Medical Council; № 6 (2024); 250-259 ; Медицинский Совет; № 6 (2024); 250-259 ; 2658-5790 ; 2079-701X

    Περιγραφή αρχείου: application/pdf

    Relation: https://www.med-sovet.pro/jour/article/view/8298/7319; Поляков ДС, Фомин ИВ, Беленков ЮН, Мареев ВЮ, Агеев ФТ, Артемьева ЕГ и др. Хроническая сердечная недостаточность в Российской Федерации: что изменилось за 20 лет наблюдения? Результаты исследования ЭПОХА-ХСН. Кардиология. 2021;61(4):4–14. https://doi.org/10.18087/cardio.2021.4.n1628.; Riley JP, Beattie JM. Palliative care in heart failure: facts and numbers. ESC Heart Fail. 2017;4(2):81–87. https://doi.org/10.1002/ehf2.12125.; Терещенко СН, Галявич АС, Агеев ФТ, Арутюнов ГП, Беграмбекова ЮЛ, Беленков ЮН и др. Хроническая сердечная недостаточность: клинические рекомендации. М.; 2020. 155 с. Режим доступа: https://cr.minzdrav.gov.ru/recomend/156_1.; Yancy CW, Jessup M, Bozkurt B, Butler J, Casey DE Jr, Drazner MH et al. 2013 ACCF/AHA guideline for the management of heart failure: executive summary: a report of the American College of Cardiology Foundation/ American Heart Association Task Force on practice guidelines. Circulation. 2013;128(16):1810–1852. https://doi.org/10.1161/CIR.0b013e31829e8807.; McDonagh TA, Metra M, Adamo M, Gardner RS, Baumbach A, Böhm M et al. 2021 ESC Guidelines for the diagnosis and treatment of acute and chronic heart failure. Eur Heart J. 2021;42(36):3599–3726. https://doi.org/10.1093/eurheartj/ehab368.; Jaarsma T, Beattie JM, Ryder M, Rutten FH, McDonagh T, Mohacsi P et al. Palliative care in heart failure: a position statement from the palliative care workshop of the Heart Failure Association of the European Society of Cardiology. Eur J Heart Fail. 2009;11(5):433–443. https://doi.org/10.1093/eurjhf/hfp041.; Новиков ГА (ред.). Курс лекций по паллиативной медицине. М.: Российская ассоциация паллиативной медицины; 2017. 776 с. Режим доступа: https://www.msmsu.ru/upload/medialibrary/c72/c72093f5771c9b1558e0d512f63edb19.pdf.; Zambroski CH, Moser DK, Bhat G, Ziegler C. Impact of symptom prevalence and symptom burden on quality of life in patients with heart failure. Eur J Cardiovasc Nurs. 2005;4(3):198–206. https://doi.org/10.1016/j.ejcnurse.2005.03.010.; Blinderman CD, Homel P, Billings JA, Portenoy RK, Tennstedt SL. Symptom distress and quality of life in patients with advanced congestive heart failure. J Pain Symptom Manage. 2008;35(6):594–603. https://doi.org/10.1016/j.jpainsymman.2007.06.007.; Lokker ME, Gwyther L, Riley JP, van Zuylen L, van der Heide A, Harding R. The Prevalence and Associated Distress of Physical and Psychological Symptoms in Patients With Advanced Heart Failure Attending a South African Medical Center. J Cardiovasc Nurs. 2016;31(4):313–322. https://doi.org/10.1097/JCN.0000000000000256.; Heidenreich PA, Bozkurt B, Aguilar D, Allen LA, Byun JJ, Colvin MM et al. 2022 AHA/ACC/HFSA Guideline for the Management of Heart Failure: A Report of the American College of Cardiology/American Heart Association Joint Committee on Clinical Practice Guidelines. J Am Coll Cardiol. 2022;79(17):e263–e421. https://doi.org/10.1016/j.jacc.2021.12.012.; Piepoli MF, Conraads V, Corrà U, Dickstein K, Francis DP, Jaarsma T et al. Exercise training in heart failure: from theory to practice. A consensus document of the Heart Failure Association and the European Association for Cardiovascular Prevention and Rehabilitation. Eur J Heart Fail. 2011;13(4):347–357. https://doi.org/10.1093/eurjhf/hfr017.; Remawi BN, Gadoud A, Preston N. The experiences of patients with advanced heart failure, family carers, and health professionals with palliative care services: a secondary reflexive thematic analysis of longitudinal interview data. BMC Palliat Care. 2023;22(1):115. https://doi.org/10.1186/s12904-023-01241-1.; Pandey A, Parashar A, Kumbhani D, Agarwal S, Garg J, Kitzman D et al. Exercise training in patients with heart failure and preserved ejection fraction: meta-analysis of randomized control trials. Circ Heart Fail. 2015;8(1):33–40. https://doi.org/10.1161/CIRCHEARTFAILURE.114.001615.; Maddox TM, Januzzi JL Jr, Allen LA, Breathett K, Butler J, Davis LL et al. 2021 Update to the 2017 ACC Expert Consensus Decision Pathway for Optimization of Heart Failure Treatment: Answers to 10 Pivotal Issues About Heart Failure With Reduced Ejection Fraction: A Report of the American College of Cardiology Solution Set Oversight Committee. J Am Coll Cardiol. 2021;77(6):772–810. https://doi.org/10.1016/j.jacc.2020.11.022.; Wisløff U, Støylen A, Loennechen JP, Bruvold M, Rognmo Ø, Haram PM et al. Superior cardiovascular effect of aerobic interval training versus moderate continuous training in heart failure patients: a randomized study. Circulation. 2007;115(24):3086–3094. https://doi.org/10.1161/CIRCULATIONAHA.106.675041.; Adams V, Reich B, Uhlemann M, Niebauer J. Molecular effects of exercise training in patients with cardiovascular disease: focus on skeletal muscle, endothelium, and myocardium. Am J Physiol Heart Circ Physiol. 2017;313(1):H72–H88. https://doi.org/10.1152/ajpheart.00470.2016.; O’Connor CM, Whellan DJ, Lee KL, Keteyian SJ, Cooper LS, Ellis SJ et al. Efficacy and safety of exercise training in patients with chronic heart failure: HF-ACTION randomized controlled trial. JAMA. 2009;301(14):1439–1450. https://doi.org/10.1001/jama.2009.454.; Myers J. Principles of exercise prescription for patients with chronic heart failure. Heart Fail Rev. 2008;13(1):61–68. https://doi.org/10.1007/s10741-007-9051-0.; Taylor JL, Myers J, Bonikowske AR. Practical guidelines for exercise prescription in patients with chronic heart failure. Heart Fail Rev. 2023;28(6):1285–1296. https://doi.org/10.1007/s10741-023-10310-9.; Smart NA, Dieberg G, Giallauria F. Functional electrical stimulation for chronic heart failure: a meta-analysis. Int J Cardiol. 2013;167(1):80–86. https://doi.org/10.1016/j.ijcard.2011.12.019.; Kadoglou NP, Mandila C, Karavidas A, Farmakis D, Matzaraki V, Varounis C et al. Effect of functional electrical stimulation on cardiovascular outcomes in patients with chronic heart failure. Eur J Prev Cardiol. 2017;24(8):833–839. https://doi.org/10.1177/2047487316687428.; Haykowsky MJ, Daniel KM, Bhella PS, Sarma S, Kitzman DW. Heart Failure: Exercise-Based Cardiac Rehabilitation: Who, When, and How Intense? Can J Cardiol. 2016;32(10 Suppl. 2):S382–S387. https://doi.org/10.1016/j.cjca.2016.06.001.; Carvalho VO, Mezzani A. Aerobic exercise training intensity in patients with chronic heart failure: principles of assessment and prescription. Eur J Cardiovasc Prev Rehabil. 2011;18(1):5–14. https://doi.org/10.1097/HJR.0b013e32833a9c63.; Wen CP, Wai JP, Tsai MK, Yang YC, Cheng TY, Lee MC et al. Minimum amount of physical activity for reduced mortality and extended life expectancy: a prospective cohort study. Lancet. 2011;378(9798):1244–1253. https://doi.org/10.1016/S0140-6736(11)60749-6.; Saeidifard F, Medina-Inojosa JR, West CP, Olson TP, Somers VK, Bonikowske AR et al. The association of resistance training with mortality: A systematic review and meta-analysis. Eur J Prev Cardiol. 2019;26(15):1647–1665. https://doi.org/10.1177/2047487319850718.; Cornelissen VA, Fagard RH, Coeckelberghs E, Vanhees L. Impact of resistance training on blood pressure and other cardiovascular risk factors: a meta-analysis of randomized, controlled trials. Hypertension. 2011;58(5):950–958. https://doi.org/10.1161/HYPERTENSIONAHA.111.177071.; Bjarnason-Wehrens B, Mayer-Berger W, Meister ER, Baum K, Hambrecht R, Gielen S et al. German Federation for Cardiovascular Prevention and Rehabilitation. Recommendations for resistance exercise in cardiac rehabilitation. Recommendations of the German Federation for Cardiovascular Prevention and Rehabilitation. Eur J Cardiovasc Prev Rehabil. 2004;11(4):352–361. https://doi.org/10.1097/01.hjr.0000137692.36013.27.; Williams MA, Haskell WL, Ades PA, Amsterdam EA, Bittner V, Franklin BA et al. Resistance exercise in individuals with and without cardiovascular disease: 2007 update: a scientific statement from the American Heart Association Council on Clinical Cardiology and Council on Nutrition, Physical Activity, and Metabolism. Circulation. 2007;116(5):572–584. https://doi.org/10.1161/CIRCULATIONAHA.107.185214.; Taylor JL, Bonikowske AR, Olson TP. Optimizing Outcomes in Cardiac Rehabilitation: The Importance of Exercise Intensity. Front Cardiovasc Med. 2021;8:734278. https://doi.org/10.3389/fcvm.2021.734278.; Hansen D, Abreu A, Ambrosetti M, Cornelissen V, Gevaert A, Kemps H et al. Exercise intensity assessment and prescription in cardiovascular rehabilitation and beyond: why and how: a position statement from the Secondary Prevention and Rehabilitation Section of the European Association of Preventive Cardiology. Eur J Prev Cardiol. 2022;29(1):230–245. https://doi.org/10.1093/eurjpc/zwab007.; Savage PA, Shaw AO, Miller MS, VanBuren P, LeWinter MM, Ades PA, Toth MJ. Effect of resistance training on physical disability in chronic heart failure. Med Sci Sports Exerc. 2011;43(8):1379–1386. https://doi.org/10.1249/MSS.0b013e31820eeea1.; Sadek Z, Salami A, Joumaa WH, Awada C, Ahmaidi S, Ramadan W. Best mode of inspiratory muscle training in heart failure patients: a systematic review and meta-analysis. Eur J Prev Cardiol. 2018;25(16):1691–1701. https://doi.org/10.1177/2047487318792315.; Machado AC, Vianna LC, Gomes EAC, Teixeira JAC, Ribeiro ML, Villacorta H et al. Carotid chemoreflex and muscle metaboreflex interact to the regulation of ventilation in patients with heart failure with reduced ejection fraction. Physiol Rep. 2020;8(3):e14361. https://doi.org/10.14814/phy2.14361.; Palau P, Domínguez E, López L, Ramón JM, Heredia R, González J et al. Inspiratory Muscle Training and Functional Electrical Stimulation for Treatment of Heart Failure With Preserved Ejection Fraction: The TRAINING-HF Trial. Rev Esp Cardiol (Engl Ed). 2019;72(4):288–297. https://doi.org/10.1016/j.rec.2018.01.010.; Giallauria F, Piccioli L, Vitale G, Sarullo FM. Exercise training in patients with chronic heart failure: A new challenge for Cardiac Rehabilitation Community. Monaldi Arch Chest Dis. 2018;88(3):987. https://doi.org/10.4081/monaldi.2018.987.; Piepoli MF, Coats AJ. The ‘skeletal muscle hypothesis in heart failure’ revised. Eur Heart J. 2013;34(7):486–488. https://doi.org/10.1093/eurheartj/ehs463.; Piepoli MF, Guazzi M, Boriani G, Cicoira M, Corrà U, Dalla Libera L et al. Exercise intolerance in chronic heart failure: mechanisms and therapies. Part II. Eur J Cardiovasc Prev Rehabil. 2010;17(6):643–648. https://doi.org/10.1097/HJR.0b013e32833f3aa5.; Rehn TA, Munkvik M, Lunde PK, Sjaastad I, Sejersted OM. Intrinsic skeletal muscle alterations in chronic heart failure patients: a disease-specific myopathy or a result of deconditioning? Heart Fail Rev. 2012;17(3):421–436. https://doi.org/10.1007/s10741-011-9289-4.; Mancini DM, Henson D, La Manca J, Donchez L, Levine S. Benefit of selective respiratory muscle training on exercise capacity in patients with chronic congestive heart failure. Circulation. 1995;91(2):320–329. https://doi.org/10.1161/01.cir.91.2.320.; Cahalin LP, Arena RA. Breathing exercises and inspiratory muscle training in heart failure. Heart Fail Clin. 2015;11(1):149–172. https://doi.org/10.1016/j.hfc.2014.09.002.; Lan NSR, Lam K, Naylor LH, Green DJ, Minaee NS, Dias P, Maiorana AJ. The Impact of Distinct Exercise Training Modalities on Echocardiographic Measurements in Patients with Heart Failure with Reduced Ejection Fraction. J Am Soc Echocardiogr. 2020;33(2):148–156. https://doi.org/10.1016/j.echo.2019.09.012.; Munch GW, Rosenmeier JB, Petersen M, Rinnov AR, Iepsen UW, Pedersen BK, Mortensen SP. Comparative Effectiveness of Low-Volume Time-Efficient Resistance Training Versus Endurance Training in Patients With Heart Failure. J Cardiopulm Rehabil Prev. 2018;38(3):175–181. https://doi.org/10.1097/HCR.0000000000000304.; Пуховская МН, Цуцаева МВ, Климкина ДА, Булычев РЮ, Бодров ИМ, Рожаева КН и др. Дыхательные техники для улучшения спортивных результатов. М.: РЭУ им. Г.В. Плеханова; 2022. 123 с. Режим доступа: https://www.rea.ru/ru/org/cathedries/Kafedra-fizicheskogo-vospitanija/PublishingImages/Pages/studymaterials/Учебное%20пособие%20Дыхательные%20техники.pdf.; Spruit MA, Eterman RM, Hellwig VA, Janssen PP, Wouters EF, Uszko-Lencer NH. Effects of moderate-to-high intensity resistance training in patients with chronic heart failure. Heart. 2009;95(17):1399–408. https://doi.org/10.1136/hrt.2008.159582.; Bektas S, Franssen FME, van Empel V, Uszko-Lencer N, Boyne J, Knackstedt C, Brunner-La Rocca HP. Impact of airflow limitation in chronic heart failure. Neth Heart J. 2017;25(5):335–342. https://doi.org/10.1007/s12471-017-0965-4.; Ambrosino N, Cigni P. Non invasive ventilation as an additional tool for exercise training. Multidiscip Respir Med. 2015;10(1):14. https://doi.org/10.1186/s40248-015-0008-1.; Ito S. High-intensity interval training for health benefits and care of cardiac diseases – The key to an efficient exercise protocol. World J Cardiol. 2019;11(7):171–188. https://doi.org/10.4330/wjc.v11.i7.171.; Laohachai K, Winlaw D, Selvadurai H, Gnanappa GK, d’Udekem Y, Celermajer D, Ayer J. Inspiratory Muscle Training Is Associated With Improved Inspiratory Muscle Strength, Resting Cardiac Output, and the Ventilatory Efficiency of Exercise in Patients With a Fontan Circulation. J Am Heart Assoc. 2017;6(8):e005750. https://doi.org/10.1161/JAHA.117.005750.; Hägglund E, Hagerman I, Dencker K, Strömberg A. Effects of yoga versus hydrotherapy training on health-related quality of life and exercise capacity in patients with heart failure: A randomized controlled study. Eur J Cardiovasc Nurs. 2017;16(5):381–389. https://doi.org/10.1177/1474515117690297.; Yeh GY, Wood MJ, Wayne PM, Quilty MT, Stevenson LW, Davis RB et al. Tai chi in patients with heart failure with preserved ejection fraction. Congest Heart Fail. 2013;19(2):77–84. https://doi.org/10.1111/chf.12005.; Khatib MN, Kirubakaran R, Gaidhane S, Shankar A, Quazi Syed Z. Yoga for improving functional capacity, quality of life and cardiovascular outcomes in people with heart failure. Cochrane Database Syst Rev. 2016;(1):CD012015. https://doi.org/10.1002/14651858.CD012015.; Wang MH, Yeh ML. Respiratory training interventions improve health status of heart failure patients: A systematic review and network meta-analysis of randomized controlled trials. World J Clin Cases. 2019;7(18):2760–2775. https://doi.org/10.12998/wjcc.v7.i18.2760.; Беграмбекова ЮЛ, Каранадзе НА, Мареев ВЮ, Колесникова ЕА, Орлова ЯА. Комплексные тренировки дыхательной и скелетной мускулатуры у пациентов с хронической сердечной недостаточностью III–V функционального класса и низкой и промежуточной фракцией выброса левого желудочка. Дизайн и обоснование. Сибирский журнал клинической и экспериментальной медицины. 2020;35(2):123–130. https://doi.org/10.29001/2073-8552-2020-35-2-123-130.; Laoutaris ID, Adamopoulos S, Manginas A, Panagiotakos DB, Kallistratos MS, Doulaptsis C et al. Benefits of combined aerobic/resistance/inspiratory training in patients with chronic heart failure. A complete exercise model? A prospective randomised study. Int J Cardiol. 2013;167(5):1967–1972. https://doi.org/10.1016/j.ijcard.2012.05.019.; Adamopoulos S, Schmid JP, Dendale P, Poerschke D, Hansen D, Dritsas A et al. Combined aerobic/inspiratory muscle training vs. aerobic training in patients with chronic heart failure: The Vent-HeFT trial: a European prospective multicentre randomized trial. Eur J Heart Fail. 2014;16(5):574–582. https://doi.org/10.1002/ejhf.70.; Таранина ОН, Тестова СГ, Алехина АВ. Способы коррекции тревожнодепрессивных расстройств на фоне хронической сердечной недостаточности у пациентов старших возрастных групп. Инновационная наука. 2020;(9):79–80. Режим доступа: https://aeterna-ufa.ru/sbornik/IN-2020-09.pdf.; Yu DS, Lee DT, Woo J, Hui E. Non-pharmacological interventions in older people with heart failure: effects of exercise training and relaxation therapy. Gerontology. 2007;53(2):74–81. https://doi.org/10.1159/000096427.; Gok Metin Z, Ejem D, Dionne-Odom JN, Turkman Y, Salvador C, Pamboukian S, Bakitas M. Mind-Body Interventions for Individuals With Heart Failure: A Systematic Review of Randomized Trials. J Card Fail. 2018;24(3):186–201. https://doi.org/10.1016/j.cardfail.2017.09.008.; Chang BH, Hendricks A, Zhao Y, Rothendler JA, LoCastro JS, Slawsky MT. A relaxation response randomized trial on patients with chronic heart failure. J Cardiopulm Rehabil. 2005;25(3):149–157. https://doi.org/10.1097/00008483-200505000-00005.; Yu DS, Lee DT, Woo J. Improving health-related quality of life of patients with chronic heart failure: effects of relaxation therapy. J Adv Nurs. 2010;66(2):392–403. https://doi.org/10.1111/j.1365-2648.2009.05198.x.; Yu DS, Lee DT, Woo J. Effects of relaxation therapy on psychologic distress and symptom status in older Chinese patients with heart failure. J Psychosom Res. 2007;62(4):427–437. https://doi.org/10.1016/j.jpsychores.2006.10.012.; Rogers AE, Addington-Hall JM, Abery AJ, McCoy AS, Bulpitt C, Coats AJ, Gibbs JS. Knowledge and communication difficulties for patients with chronic heart failure: qualitative study. BMJ. 2000;321(7261):605–607. https://doi.org/10.1136/bmj.321.7261.605.; Horne G, Payne S. Removing the boundaries: palliative care for patients with heart failure. Palliat Med. 2004;18(4):291–296. https://doi.org/10.1191/0269216304pm893oa.; Harding R, Selman L, Beynon T, Hodson F, Coady E, Read C et al. Meeting the communication and information needs of chronic heart failure patients. J Pain Symptom Manage. 2008;36(2):149–156. https://doi.org/10.1016/j.jpainsymman.2007.09.012.; Boyd KJ, Murray SA, Kendall M, Worth A, Frederick Benton T, Clausen H. Living with advanced heart failure: a prospective, community based study of patients and their carers. Eur J Heart Fail. 2004;6(5):585–591. https://doi.org/10.1016/j.ejheart.2003.11.018.; Zickmund SL, Blasiole JA, Brase V, Arnold RM. Congestive heart failure patients report conflict with their physicians. J Card Fail. 2006;12(7):546–553. https://doi.org/10.1016/j.cardfail.2006.03.008.; Zapka JG, Hennessy W, Carter RE, Amella EJ. End-of-life communication and hospital nurses: an educational pilot. J Cardiovasc Nurs. 2006;21(3):223–231. https://doi.org/10.1097/00005082-200605000-00011.

  3. 3
    Academic Journal

    Πηγή: TRAUMA; Том 20, № 4 (2019); 23-38
    ТРАВМА; Том 20, № 4 (2019); 23-38

    Περιγραφή αρχείου: application/pdf

  4. 4
  5. 5
  6. 6
  7. 7
    Academic Journal

    Πηγή: Neurology, Neuropsychiatry, Psychosomatics; Vol 15, No 1 (2023); 57-64 ; Неврология, нейропсихиатрия, психосоматика; Vol 15, No 1 (2023); 57-64 ; 2310-1342 ; 2074-2711 ; 10.14412/2074-2711-2023-1

    Περιγραφή αρχείου: application/pdf

    Relation: https://nnp.ima-press.net/nnp/article/view/1954/1496; Niu H, Alvarez-Alvarez I, Guillen-Grima F, Aguinaga-Ontoso I. Prevalence and incidence of Alzheimer's disease in Europe: A meta-analysis. Neurologia. 2017 Oct;32(8):523-32. doi:10.1016/j.nrl.2016.02.016. Epub 2016 Apr 26.; American Psychiatric Association. Diagnostic and statistical manual of mental disorders (5th ed.). Arlington, VA: American Psychiatric Publishing; 2013.; Боголепова АН, Васенина ЕЕ, Гомзякова НА и др. Клинические рекомендации «Когнитивные расстройства у пациентов пожилого и старческого возраста». Журнал неврологии и психиатрии им. С.С. Корсакова. 2021;121(10-3):6-137. doi:10.17116/jnevro20211211036; Chen YX, Liang N, Li XL, et al. Diagnosis and Treatment for Mild Cognitive Impairment: A Systematic Review of Clinical Practice Guidelines and Consensus Statements. Front Neurol. 2021 Oct 12;12:719849. doi:10.3389/fneur.2021.719849; Amieva H, Robert PH, Grandoulier AS, et al. Group and individual cognitive therapies in Alzheimer's disease: the ETNA3 randomized trial. Int Psychogeriatr. 2016 May;28(5):707-17. doi:10.1017/S1041610215001830. Epub 2015 Nov 17.; Левин ОС, Васенина ЕЕ, Ганькина ОА. Диагностика и лечение умеренного когнитивного расстройства. Современная терапия в психиатрии и неврологии. 2014;(4):4-9.; Яхно НН, Преображенская ИС, Захаров ВВ, Мхитарян ЭА. Эффективность акатинола мемантина у пациентов с недементными когнитивными расстройствами. Результаты многоцентрового клинического наблюдения. Неврологический журнал. 2010;15(2):52-8.; Biazus-Sehn LF, Schuch FB, Firth J, Stigger FS. Effects of physical exercise on cognitive function of older adults with mild cognitive impairment: A systematic review and meta-analysis. Arch Gerontol Geriatr. 2020 Jul-Aug;89:104048. doi:10.1016/j.archger.2020.104048. Epub 2020 May 12.; Anastasiou CA, Yannakoulia M, Kosmidis MH, et al. Mediterranean diet and cognitive health: Initial results from the Hellenic longitudinal investigation of ageing and diet. PLoS One. 2017 Aug 1;12(8):e0182048. doi:10.1371/journal.pone.0182048. eCollection 2017.; Morris MC, Tangney CC, Wang Y, et al. MIND diet slows cognitive decline with aging. Alzheimers Dement. 2015 Sep;11(9):1015-22. doi:10.1016/j.jalz.2015.04.011. Epub 2015 Jun 15.; Ciesielska N, Sokolowski R, Mazur E, et al. Is the Montreal Cognitive Assessment (MoCA) test better suited than the Mini-Mental State Examination (MMSE) in mild cognitive impairment (MCI) detection among people aged over 60? Meta-analysis. Psychiatr Pol. 2016 Oct 31;50(5):1039-52. doi:10.12740/PP/45368; Tombaugh TN. Trail Making Test A and B: normative data stratified by age and education. Arch Clin Neuropsychol. 2004 Mar;19(2):203-14. doi:10.1016/S0887-6177(03)00039-8; Jongsiriyanyong S, Limpawattana P. Mild Cognitive Impairment in Clinical Practice: A Review Article. Am J Alzheimers Dis Other Demen. 2018 Dec;33(8):500-7. doi:10.1177/1533317518791401. Epub 2018 Aug 1.; Старчина ЮА. Недементные когнитивные нарушения: современный взгляд на проблему. Неврология, нейропсихиатрия, психосоматика. 2017;9(2):71-6. doi:10.14412/2074-2711-2017-2-71-76; Zec RF, Burkett NR, Markwell SJ, Larsen DL. Normative data stratified for age, education, and gender on the Boston Naming Test. Clin Neuropsychol. 2007 Jul;21(4):617-37. doi:10.1080/13854040701339356; Cheng C, Liu X, Fan W, et al. Comprehensive Rehabilitation Training Decreases Cognitive Impairment, Anxiety, and Depression in Poststroke Patients: A Randomized, Controlled Study. J Stroke Cerebrovasc Dis. 2018 Oct;27(10):2613-22. doi:10.1016/j.jstrokecerebrovasdis.2018.05.038. Epub 2018 Jul 30.; Song D, Yu DSF. Effects of a moderateintensity aerobic exercise programme on the cognitive function and quality of life of community-dwelling elderly people with mild cognitive impairment: A randomised controlled trial. Int J Nurs Stud. 2019 May;93:97-105. doi:10.1016/j.ijnurstu.2019.02.019. Epub 2019 Mar 5.; Ngandu T, Lehtisalo J, Solomon A, et al. A 2 year multidomain intervention of diet, exercise, cognitive training, and vascular risk monitoring versus control to prevent cognitive decline in at-risk elderly people (FINGER): a randomised controlled trial. Lancet. 2015;385(9984):2255-63. doi:10.1016/S0140-6736(15)60461-5; Науменко АА, Преображенская ИС. Когнитивно-моторный тренинг у пациентов с умеренными когнитивными нарушениями и легкой деменцией. Неврология, нейропсихиатрия, психосоматика. 2018;10(4):81-7. doi:10.14412/2074-2711-2018-4-81-87; Fiatarone Singh MA, Gates N, Saigal N, et al. The Study of Mental and Resistance Training (SMART) study – resistance training and/or cognitive training in mild cognitive impairment: a randomized, double-blind, double-sham controlled trial. J Am Med Dir Assoc. 2014 Dec;15(12):873-80. doi:10.1016/j.jamda.2014.09.010. Epub 2014 Oct 23. Erratum in: J Am Med Dir Assoc. 2021 Feb;22(2):479-81.; Peng Z, Jiang H, Wang X, et al. The Efficacy of Cognitive Training for Elderly Chinese Individuals with Mild Cognitive Impairment. Biomed Res Int. 2019 Nov 30;2019:4347281. doi:10.1155/2019/4347281; Yeh TT, Chang KC, Wu CY. The Active Ingredient of Cognitive Restoration: A Multicenter Randomized Controlled Trial of Sequential Combination of Aerobic Exercise and Computer-Based Cognitive Training in Stroke Survivors with Cognitive Decline. Arch Phys Med Rehabil. 2019;100(5):821-7. doi:10.1016/j.apmr.2018.12.020; Komulainen P, Tuomilehto J, Savonen K, et al. Exercise, diet, and cognition in a 4-year randomized controlled trial: Dose-Responses to Exercise Training (DR's EXTRA). Am J Clin Nutr. 2021 Jun 1;113(6):1428-39. doi:10.1093/ajcn/nqab018; Moon SY, Hong CH, Jeong JH, et al. Facility-based and home-based multidomain interventions including cognitive training, exercise, diet, vascular risk management, and motivation for older adults: a randomized controlled feasibility trial. Aging (Albany NY). 2021 Jun 18;13(12):15898-916. doi:10.18632/aging.203213. Epub 2021 Jun 18.; Al-Thaqib A, Al-Sultan F, Al-Zahrani A, et al. Brain Training Games Enhance Cognitive Function in Healthy Subjects. Med Sci Monit Basic Res. 2018 Apr 20;24:63-9. doi:10.12659/msmbr.909022

  8. 8
  9. 9
    Academic Journal

    Πηγή: Russian Sklifosovsky Journal "Emergency Medical Care"; Том 10, № 3 (2021); 438-451 ; Журнал им. Н.В. Склифосовского «Неотложная медицинская помощь»; Том 10, № 3 (2021); 438-451 ; 2541-8017 ; 2223-9022

    Περιγραφή αρχείου: application/pdf

    Relation: https://www.jnmp.ru/jour/article/view/1204/967; https://www.jnmp.ru/jour/article/view/1204/1059; Global Coronavirus COVID-19 Clinical Trial Tracker. URL: https://www.covid-trials.org/ [Дата обращения 5 июня 2021 г.]; Randomised evaluation of COVID-19 therapy (RECOVERY). URL: https://www.recoverytrial.net/files/protocol-archive/recovery-protocol-v6-0-2020-05-14.pdf [Дата обращения 7 июля 2021 г.]; Randomised Evaluation of COVID-19 Therapy (RECOVERY). URL: https://www.clinicaltrials.gov/ct2/show/NCT04381936 [Дата обращения 13 мая 2021 г.]; RECOVERY Collaborative Group. Azithromycin in patients admitted to hospital with COVID-19 (RECOVERY): a randomised, controlled, open-label, platform trial. Lancet. 2021;397(10274):605–612. PMID: 33545096 https://doi.org/10.1016/S0140-6736(21)00149-5; RECOVERY trial closes recruitment to colchicine treatment for patients hospitalised with COVID-19. URL: https://www.recoverytrial.net/news/recovery-trial-closes-recruitment-to-colchicine-treatmentfor-patients-hospitalised-with-covid-19 [Дата обращения 7 июня 2021 г.]; RECOVERY Collaborative Group. Convalescent plasma in patients admitted to hospital with COVID-19 (RECOVERY): a randomized controlled, open-label, platform trial. Lancet. 2021;397(10289):2049–2059. PMID: 34000257 https://doi.org/10.1016/S0140-6736(21)00897-7; Mrukowicz J, Rot M. Дексаметазон при тяжелом течении COVID-19. URL: https://empendium.com/ru/chapter/B33.1394.54 [Дата обращения 13 мая 2021 г.]; RECOVERY Collaborative Group, Horby P, Mafham M, Linsell L, Bell JL, Staplin N, Emberson JR, et al. Effect of hydroxychloroquine in hospitalized patients with COVID-19. N Engl J Med. 2020;383(21):2030–2040. PMID: 33031652 https://doi.org/10.1056/NEJMoa2022926; Statement from the Chief Investigators of the Randomised Evaluation of COVid-19 thERapY (RECOVERY) Trial on hydroxychloroquine, 5 June 2020. No clinical benefit from use of hydroxychloroquinein hospitalized patients with COVID-19. URL: https://www.recoverytrial.net/files/hcqrecovery-statement-050620-final-002.pdf [Дата обращения 10 июня 2021 г.]; Mrukowicz J, Gajowiec K. Исследование RECOVERY: лопинавир/ритонавир неэффективен у пациентов с COVID-19 URL: https://empendium.com/ru/chapter/B33.1394.65 [Дата обращения: 10 июня 2021 г.]; RECOVERY Collaborative Group. Lopinavir-ritonavir in patients admitted to hospital with COVID-19 (RECOVERY): a randomised, controlled, open-label, platform trial. Lancet. 2020;396(10259):1345–1352. PMID: 33031764 https://doi.org/10.1016/S0140-6736(20)32013-4; “Solidarity” clinical trial for COVID-19 treatments. URL: https://www.who.int/emergencies/diseases/novel-coronavirus-2019/globalresearch-on-novel-coronavirus-2019-ncov/solidarity-clinical-trial-forcovid-19-treatments [Дата обращения 26 мая 2021 г.]; Siemieniuk RA, Bartoszko JJ, Ge L, Zeraatkar D, Izcovich A, Kum E, et al. Drug treatments for covid-19: living systematic review and network meta-analysis. BMJ. 2020;370:m2980. PMID: 32732190 https://doi.org/10.1136/bmj.m2980; Corticosteroids for COVID-19. Living Guidance. URL: https://www.who.int/publications/i/item/WHO-2019-nCoV-Corticosteroids-2020.1 [Дата обращения 12 июня 2021 г.]; Therapeutics and COVID-19: living guideline, 20 November 2020. URL: https://apps.who.int/iris/handle/10665/336729 [Дата обращения 16 июня 2021 г.]; Therapeutics and COVID-19: living guideline. URL: https://www.who.int/publications/i/item/WHO-2019-nCoV-therapeutics-2021.1 [Дата обращения 20 июня 2021 г.]; Lloyd EC, Gandhi TN, Petty LA. Monoclonal antibodies for COVID-19. JAMA. 2021;325(10):1015. PMID: 33544136 https://doi.org/10.1001/jama.2021.1225; BMJ Best Practice. Coronavirus disease 2019 (COVID-19). URL: https://bestpractice.bmj.com/topics/en-gb/3000201/emergingtxs#referencePop947 [Дата обращения 12 июня 2021 г.]; Coronavirus (COVID-19) Update: FDA Authorizes Monoclonal Antibodies for Treatment of COVID-19. URL: https://www.fda.gov/news-events/press-announcements/coronavirus-covid-19-update-fda-authorizesmonoclonal-antibodies-treatment-covid-19-0 [Дата обращения 23 июня 2021 г.]; Coronavirus (COVID-19) Update: FDA Revokes Emergency Use Authorization for Monoclonal Antibody Bamlanivimab. URL: https://www.fda.gov/news-events/press-announcements/coronavirus-covid-19-update-fda-revokes-emergency-use-authorization-monoclonalantibody-bamlanivimab [Дата обращения 21 июня 2021 г.]; Gottlieb RL, Nirula A, Chen P, Boscia J, Heller B, Morris J, et al. Effect of bamlanivimab as monotherapy or in combination with etesevimab on viral load in patients with mild to moderate COVID-19: a randomized clinical trial. JAMA. 2021;325(7):632–644. PMID: 33475701 https://doi.org/10.1001/jama.2021.0202; Anti-SARS-CoV-2 Monoclonal Antibodies. URL: https://www.covid19treatmentguidelines.nih.gov/anti-sars-cov-2-antibody-products/anti-sarscov-2-monoclonal-antibodies/ [Дата обращения 13 июня 2021 г.]; Phase 3 trial shows regen-cov™ (casirivimab with imdevimab) antibody cocktail reduced hospitalization or death by 70% in non-hospitalized covid-19 patients. URL: https://investor.regeneron.com/news-releases/news-release-details/phase-3-trial-shows-regen-covtm-casirivimabimdevimab-antibody [Дата обращения 13 июня 2021 г.]; Fact sheet for health care providers emergency use authorization (EUA) of casirivimab and imdevimab. URL: https://www.fda.gov/media/143892/download [Дата обращения 7 июня 2021 г.]; Weinreich DM, Sivapalasingam S, Norton T, Ali S, Gao H, Bhore R, et al. REGN-COV2, un cóctel de anticuerpos neutralizantes, en pacientes ambulatorios con Covid-19. N Engl J Med. 2021;384(3):238–251. PMID: 33332778 https://doi.org/10.1056/NEJMoa2035002; EMA issues advice on use of REGN-COV2 antibody combination (casirivimab / imdevimab). URL: https://www.ema.europa.eu/en/news/ema-issues-advice-use-regn-cov2-antibody-combination-casirivimabimdevimab [Дата обращения 14 июня 2021 г.]; Anti-SARS-CoV-2 Antibody Products. URL: https://www.covid19treatmentguidelines.nih.gov/anti-sars-cov-2-antibody-products/ [Дата обращения 15 июня 2021 г.]; ACTIV-3/TICO LY-CoV555 Study Group, Lundgren JD, Grund B, Barkauskas CE, Holland TL, Gottlieb RL, et al. A neutralizing monoclonal antibody for hospitalized patients with Covid-19. N Engl J Med. 2021;384(10):905–914. PMID: 33356051 https://doi.org/10.1056/NEJMoa2033130; EMA issues advice on use of regdanvimab for treating COVID-19. URL: https://www.ema.europa.eu/en/news/ema-issues-advice-useregdanvimab-treating-covid-19 [Дата обращения 7 июля 2021 г.]; Celltrion Develops Tailored Neutralising Antibody Cocktail Treatment with CT-P59 to Tackle COVID-19 Variant Spread Using Its Antibody Development Plat. URL: https://www.celltrionhealthcare.com/en-us/board/newsdetail?modify_key=446 [Дата обращения 15 июля 2021 г.]; Celltrion’s COVID-19 treatment candidate receives Korean MFDS Conditional Marketing Authorisation. URL: https://www.celltrionhealthcare.com/en-us/board/newsdetail?modify_key=442 [Дата обращения 15 июня 2021 г.]; Clark E, Guilpain P, Filip IL, Pansu N, Le Bihan C, Cartron G, et al. Convalescent plasma for persisting COVID-19 following therapeutic lymphocyte depletion: a report of rapid recovery. Br J Haematol. 2020;190(3):e154–e156. PMID: 32593180 https://doi.org/10.1111/bjh.16981; RECOVERY Collaborative Group, Horby P, Lim WS, Emberson JR, Mafham M, Bell JL, et al. Dexamethasone in hospitalized patients with Covid-19-preliminary report. N Engl J Med. 2021;384(8):693–704. PMID: 32678530 https://doi.org/10.1056/NEJMoa2021436; Libster R, Marc GP, Wappner D, Coviello S, Bianchi A, Braem V, et al. Prevention of severe COVID-19 in the elderly by early high-titer plasma. https://doi.org/10.1101/2020.11.20.20234013 URL: https://www.medrxiv.org/content/10.1101/2020.11.20.20234013v1 [Дата обращения 7 июля 2021 г.]; NIH halts trial of COVID-19 convalescent plasma in emergency department patients with mild symptoms. URL: https://www.nih.gov/news-events/news-releases/nih-halts-trial-covid-19-convalescentplasma-emergency-department-patients-mild-symptoms [Дата обращения 16 июня 2021 г.]; Буланов А.Ю., Костин А.И., Петриков С.С., Лысенко М.А., Попугаев К.А., Фомина Д.С. и др. Клиническое использование реконвалесцентной плазмы в терапии новой коронавирусной инфекции: московский опыт. Анестезиология и реаниматология. 2020;(6-2):33–39. https://doi.org/10.17116/anaesthesiology202006233; Immunoglobulins: SARS-CoV-2 Specific. URL: https://www.covid19treatmentguidelines.nih.gov/anti-sars-cov-2-antibody-products/ivig---sars-cov-2/ [Дата обращения 17 июня 2021 г.]; Xie Y, Cao S, Dong H, Li Q, Chen E, Zhang W, et al. Effect of regular intravenous immunoglobulin therapy on prognosis of severe pneumonia in patients with COVID-19. J Infect. 2020;81(2):318–356. PMID: 32283154 https://doi.org/10.1016/j.jinf.2020.03.044; Hou X, Tian L, Zhou L, Jia X, Kong L, Xue Y, et al. Intravenous immunoglobulin-based adjuvant therapy for severe COVID-19: a single-center retrospective cohort study. Virol J. 2021;18(1):101. PMID: 34020680 https://doi.org/10.1186/s12985-021-01575-3; Zhang J, Yang Y, Yang N, Ma Y, Zhou Q, Li W, et al. Effectiveness of intravenous immunoglobulin for children with severe COVID-19: a rapid review. Ann Transl Med. 2020;8(10):625. PMID: 32566562 https://doi.org/10.21037/atm-20-3305; Wang M, Cao R, Zhang L, Yang X, Liu J, Xu M, et al. Remdesivir and chloroquine effectively inhibit the recently emerged novel coronavirus (2019-nCoV) in vitro. Cell Res. 2020;30(3):269–271. PMID: 32020029 https://doi.org/10.1038/s41422-020-0282-0; Table 2a. Remdesivir: Selected Clinical Data. URL: https://www.covid19treatmentguidelines.nih.gov/tables/table-2a/ [Дата обращения 10 июня 2021 г.]; Beigel JH, Tomashek KM, Dodd LE, Mehta AK, Zingman BS, Kalil AC, et al. Remdesivir for the treatment of Covid-19 - final report. N Engl J Med. 2020;383(19):1813–1826. PMID: 32445440 https://doi.org/10.1056/NEJMoa2007764; Fritz ML, Siegert PY, Walker ED, Bayoh MN, Vulule JR, Miller JR. Toxicity of bloodmeals from ivermectin-treated cattle to Anopheles gambiae s.l. Ann Trop Med Parasitol. 2009;103(6):539–547. PMID: 19695159 https://doi.org/10.1179/000349809X12459740922138; Omura S, Crump A. Ivermectin: panacea for resource-poor communities? Trends Parasitol. 2014;30(9):445–455. PMID: 25130507 https://doi.org/10.1016/j.pt.2014.07.005; Yang SNY, Atkinson SC, Wang C, Lee A, Bogoyevitch MA, Borg NA, et al. The broad spectrum antiviral ivermectin targets the host nuclear transport importin α/β1 heterodimer. Antiviral Res. 2020;177:104760. PMID: 32135219 https://doi.org/10.1016/j.antiviral.2020.104760; Arévalo AP, Pagotto R, Pórfido JL, Daghero H, Segovia M, Yamasaki K, et al. Ivermectin reduces coronavirus infection in vivo: a mouse experimental model. Sci Rep. 2021;11(1):7132. PMID: 33785846 https://doi.org/10.1101/2020.11.02.363242; Caly L, Druce JD, Catton MG, Jans DA, Wagstaff KM. The FDAapproved Drug Ivermectin inhibits the replication of SARS-CoV-2 in vitro. Antiviral Res. 2020;178:104787. PMID: 32251768 https://doi.org/10.1016/j.antiviral.2020.104787; Chaccour C, Abizanda G, Irigoyen-Barrio Á, Casellas A, Aldaz A, Martínez-Galán F, et al. Nebulized ivermectin for COVID-19 and other respiratory diseases, a proof of concept, dose-ranging study in rats. Sci Rep. 2020;10(1):17073. PMID: 33051517 https://doi.org/10.1038/s41598-020-74084-y; Schmith VD, Zhou JJ, Lohmer LRL. The Approved Dose of Ivermectin Alone is not the Ideal Dose for the Treatment of COVID-19. Clin Pharmacol Ther. 2020;108(4):762–765. PMID: 32378737 https://doi.org/10.1002/cpt.1889; Li H, Liu L, Zhang D, Xu J, Dai H, Tang N, et al. SARS-CoV-2 y sepsis viral: observaciones e hipótesis. Lancet. 2020;395(10235):1517-1520. PMID: 32311318 https://doi.org/10.1016/S0140-6736(20)30920-X; van Echteld I, Wechalekar MD, Schlesinger N, Buchbinder R, Aletaha D. Colchicine for acute gout. Cochrane Database Syst Rev. 2014;(8): CD006190. PMID: 25123076 https://doi.org/10.1002/14651858.CD006190.pub2; Deftereos SG, Giannopoulos G, Vrachatis DA, Siasos GD, Giotaki SG, Gargalianos P, et al. Effect of Colchicine vs Standard Care on Cardiac and Inflammatory Biomarkers and Clinical Outcomes in Patients Hospitalized with Coronavirus Disease 2019: the GRECCO-19 Randomized Clinical Trial. JAMA Netw Open. 2020;3(6):e2013136. PMID: 32579195 https://doi.org/ 10.1001/jamanetworkopen.2020.13136; Rabbani AB, Parikh RV, Rafique AM. Colchicine for the Treatment of Myocardial Injury in Patients with Coronavirus Disease 2019 (COVID-19)—an Old Drug with New Life? JAMA Netw Open. 2020;3(6):e2013556. PMID: 32579190 https://doi.org/10.1001/jamanetworkopen.2020.1355; Tardif JC, Bouabdallaoui N, L’Allier PL, Gaudet D, Shah B, Pillinger MH, et al. Colchicine for community-treated patients with COVID-19 (COLCORONA): a phase 3, randomised, double-blinded, adaptive, placebo-controlled, multicentre trial. Lancet Respir Med. 2021;9(8):924–932. PMID: 34051877 https://doi.org/10.1016/S2213-2600(21)00222-8.; Vincent JL. COVID-19: it’s all about sepsis. Future Microbiol. 2021;16:131–133. PMID: 33491491 https://doi.org/10.2217/fmb-2020-0312; Rosen DA, Seki SM, Fernández-Castañeda A, Beiter RM, Eccles JD, Woodfolk JA, et al. Modulation of the sigma-1 receptor–IRE1 pathway is beneficial in preclinical models of inflammation and sepsis. Sci Transl Med. 2019;11(478):eaau5266. PMID: 30728287 https://doi.org/10.1126/scitranslmed.aau5266; Rafiee L, Hajhashemi V, Javanmard SH. Fluvoxamine inhibits some inflammatory genes expression in LPS/stimulated human endothelial cells, U937 macrophages, and carrageenan-induced paw edema in rat. Iran J Basic Med Sci. 2016;19(9):977–984. PMID: 27803785; Lenze EJ, Mattar C, Zorumski CF, Stevens A, Schweiger J, Nicol GE, et al. Fluvoxamine vs Placebo and Clinical Deterioration in Outpatients with Symptomatic COVID-19: A Randomized Clinical Trial. JAMA. 2020;324(22):2292–2300. PMID: 33180097 https://doi.org/10.1001/jama.2020.22760; Yoshikawa T, Hill T, Li K, Peters CJ, Tseng CT. Severe acute respiratory syndrome (SARS) coronavirus-induced lung epithelial cytokines exacerbate SARS pathogenesis by modulating intrinsic functions of monocyte-derived macrophages and dendritic cells. J Virol. 2009;83(7):3039–3048. PMID: 19004938 https://doi.org/10.1128/JVI.01792-08; Zhou F, Yu T, Du R, Fan G, Liu Y, Liu Z, et al. Clinical course and risk factors for mortality of adult inpatients with COVID-19 in Wuhan, China: a retrospective cohort study. Lancet. 2020;395(10229):1054–1062. PMID: 32171076 https://doi.org/10.1016/S0140-6736(20)30566-3; 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. PMID: 31986264 https://doi.org/10.1016/S0140-6736(20)30183-5; Wang Z, Yang B, Li Q, Wen L, Zhang R. Clinical Features of 69 Cases with Coronavirus Disease 2019 in Wuhan, China. Clin Infect Dis. 2020;71(15):769–777. PMID: 32176772 https://doi.org/10.1093/cid/ciaa272; Interleukin-6 Inhibitors: Selected Clinical Data URL: https://www.covid19treatmentguidelines.nih.gov/tables/table-4b/ [Дата обращения 17 июня 2021 г.]; Ghosn L, Chaimani A, Evrenoglou T, Davidson M, Graña C, Schmucker C, et al. Interleukin-6 blocking agents for treating COVID-19: a living systematic review. Cochrane Database Syst Rev. 2021;3:CD013881. PMID: 33734435 https://doi.org/10.1002/14651858.CD013881; Rubin EJ, Longo DL, Baden LR. Interleukin-6 Receptor Inhibition in Covid-19 – Cooling the Inflammatory Soup. N Engl J Med. 2021;384(16):1564–1565. PMID: 33631064 https://doi.org/10.1056/NEJMe2103108; Hermine O, Mariette X, Tharaux PL, Resche-Rigon M, Porcher R, Ravaud P; CORIMUNO-19 Collaborative Group. Effect of Tocilizumab vs Usual Care in Adults Hospitalized with COVID-19 and Moderate or Severe Pneumonia: A Randomized Clinical Trial. JAMA Intern Med. 2021;181(1):32–40. PMID: 33080017 https://doi.org/10.1001/jamainternmed.2020.6820; CAR-T-клетки: Иммунотерапия опухолей. URL: https://www.mybeckman.ru/resources/research-areas/immunotherapy/about-car-tcells [Дата обращения 17 июня 2021 г.]; Shakoory B, Carcillo JA, Chatham WW, Amdur RL, Zhao H, Dinarello CA, et al. Interleukin-1 Receptor Blockade Is Associated with Reduced Mortality in Sepsis Patients with Features of Macrophage Activation Syndrome: Reanalysis of a Prior Phase III Trial. Crit Care Med. 2016;44(2):275–281. PMID: 26584195 https://doi.org/10.1097/CCM.0000000000001402; Monteagudo LA, Boothby A, Gertner E. Continuous Intravenous Anakinra Infusion to Calm the Cytokine Storm in Macrophage Activation Syndrome. ACR Open Rheumatol. 2020;2(5):276–282. PMID: 32267081 https://doi.org/10.1002/acr2.11135; Barkas F, Ntekouan SF, Kosmidou M, Liberopoulos E, Liontos A, Milionis H. Anakinra in hospitalized non-intubated patients with coronavirus disease 2019: a systematic review and meta-analysis. Rheumatology (Oxford). 2021 May 17:keab447. PMID: 33999135 https://doi.org/10.1093/rheumatology/keab447 Online ahead of print.; Zhang W, Zhao Y, Zhang F, Wang Q, Li T, Liu Z, et al. The use of antiinflammatory drugs in the treatment of people with severe coronavirus disease 2019 (COVID-19): The Perspectives of clinical immunologists from China. Clin Immunol. 2020;214:108393. PMID: 32222466 https://doi.org/10.1016/j.clim.2020.108393; Stebbing J, Phelan A, Griffin I, Tucker C, Oechsle O, Smith D, et al. COVID-19: combining antiviral and anti-inflammatory treatments. Lancet Infect Dis. 2020;20(4):400–402. PMID: 32113509 https://doi.org/10.1016/S1473-3099(20)30132-8; Fact sheet for healthcare providers emergency use authorization (EUA) of baricitinib. URL: https://www.fda.gov/media/143823/download [Дата обращения 16 июня 2021 г.]; Kalil AC, Patterson TF, Mehta AK, Tomashek KM, Wolfe CR, Ghazaryan V, et al.; ACTT-2 Study Group Members. Baricitinib plus Remdesivir for Hospitalized Adults with Covid-19. N Engl J Med. 2021;384(9):795–807. PMID: 33306283 https://doi.org/10.1056/NEJMoa2031994; Marconi VC, Ramanan AV, de Bono S, Kartman CE, Krishnan V, Liao R, et al. Efficacy and safety of baricitinib in patients with COVID-19 infection: Results from the randomised, double-blind, placebo-controlled, parallelgroup COV-BARRIER phase 3 trial. medRxiv 2021.04.30.21255934. https://doi.org/10.1101/2021.04.30.21255934 Available at: https://www.medrxiv.org/content/10.1101/2021.04.30.21255934v1 [Accessed Jul 07, 2021]; Corticosteroids: Selected Clinical Data. URL: https://www.covid19treatmentguidelines.nih.gov/tables/table-4a/ [Accessed 17 июня 2021 г.]; Czock D, Keller F, Rasche FM, Häussler U. Pharmacokinetics and pharmacodynamics of systemically administered glucocorticoids. Clin Pharmacokinet. 2005;44(1):61–98. PMID: 15634032 https://doi.org/10.2165/00003088-200544010-00003; Jeronimo CMP, Farias MEL, Val FFA, Sampaio VS, Alexandre MAA, Melo GC, et al. Methylprednisolone as Adjunctive Therapy for Patients Hospitalized with Coronavirus Disease 2019 (COVID-19; Metcovid): A Randomized, Double-blind, Phase IIb, Placebo-controlled Trial. Clin Infect Dis. 2021;72(9):e373–e381. PMID: 32785710 https://doi.org/10.1093/cid/ciaa1177; Dequin PF, Heming N, Meziani F, Plantefève G, Voiriot G, Badié J, et al. Effect of Hydrocortisone on 21-Day Mortality or Respiratory Support Among Critically Ill Patients With COVID-19: A Randomized Clinical Trial. JAMA. 2020;324(13):1298–1306. PMID: 32876689 https://doi.org/10.1001/jama.2020.16761; Li Q, Li W, Jin Y, Xu W, Huang C, Li L, et al. Efficacy Evaluation of Early, Low-Dose, Short-Term Corticosteroids in Adults Hospitalized with Non-Severe COVID-19 Pneumonia: A Retrospective Cohort Study. Infect Dis Ther. 2020;9(4):823–836. PMID: 32880102 https://doi.org/10.1007/s40121-020-00332-3; Angus D C, Derde L, Al-Beidh F, Annane D, Arabi Y, Beane A, et al. Effect of Hydrocortisone on Mortality and Organ Support in Patients with Severe COVID-19: The REMAP-CAP COVID-19 Corticosteroid Domain Randomized Clinical Trial. JAMA. 2020;324(13):1317–1329. PMID: 32876697 https://doi.org/10.1001/jama.2020.17022; Ramakrishnan S, Nicolau DV Jr, Langford B, Mahdi M, Jeffers H, Mwasuku C, et al. Inhaled budesonide in the treatment of early COVID-19 (STOIC): a phase 2, open-label, randomised controlled trial. Lancet Respir Med. 2021;9(7):763–772. PMID: 33844996 https://doi.org/10.1016/S2213-2600(21)00160-0; San-Juan R, Fernández-Ruiz M, López-Medrano F, Aguado JM. Inhaled budesonide for early treatment of COVID-19. Lancet Respir Med. 2021;9(7):e58. PMID: 33991508 https://doi.org/10.1016/S2213-2600(21)00211-3; Lachant DJ, Lachant NA, Kouides P, Rappaport S, Prasad P, White RJ. Chronic therapeutic anticoagulation is associated with decreased thrombotic complications in SARS-CoV-2 infection. J Thromb Haemost. 2020;18(10):2640–2645. PMID: 33448631 https://doi.org/10.1111/jth.15032; Rivera-Caravaca JM, Núñez-Gil IJ, Vivas D, Viana-Llamas MC, Uribarri A, Becerra-Muñoz VM, et al. Clinical profile and prognosis in patients on oral anticoagulation before admission for COVID-19. Eur J Clin Invest. 2021;51(1):e13436. PMID: 33080051 https://doi.org/10.1111/eci.13436; Llitjos J-F, Leclerc M, Chochois C, Monsallier J-M, Ramakers M, Auvray M, et al. High incidence of venous thromboembolic events in anticoagulated severe COVID-19 patients. J Thromb Haemost. 2020;18(7):1743–1746. PMID: 32320517 https://doi.org/10.1111/jth.14869; Martin TA, Wan DW, Hajifathalian K, Tewani S, Shah SL, Mehta A, et al. Gastrointestinal Bleeding in Patients with Coronavirus Disease 2019: A Matched Case-Control Study. Am J Gastroenterol. 2020;115(10):1609–1616. PMID: 32796176 https://doi.org/10.14309/ajg.0000000000000805; Shah A, Donovan K, McHugh A, Pandey M, Aaron L, Bradbury CA, et al. Thrombotic and haemorrhagic complications in critically ill patients with COVID-19: a multicentre observational study. Crit Care. 2020;24(1):561. PMID: 32948243 https://doi.org/10.1186/s13054-020-03260-3; Horby PW, Pessoa-Amorim G, Staplin N, Emberson JR, Campbell M, Spata E, et al. Aspirin in patients admitted to hospital with COVID-19 (RECOVERY): a randomised, controlled, open-label, platform trial. medRxiv 2021.06.08.21258132 https://doi.org/10.1101/2021.06.08.21258132 URL: https://www.medrxiv.org/content/10.1101/2021.06.08.21258132v1 [Дата обращения 7 июля 2021 г.]; Leentjens J, van Haaps TF, Wessels PF, Schutgens REG, Middeldorp S. COVID-19-associated coagulopathy and antithrombotic agents-lessons after 1 year. Lancet Haematol. 2021;8(7):e524–e533. PMID: 33930350 https://doi.org/10.1016/S2352-3026(21)00105-8; Pereira AA, de Oliveira Andrade A, de Andrade Palis A, Cabral AM, Lima Barreto CG, de Souza DB, et al. Non-pharmacological treatments for COVID-19: current status and consensus. Research on Biomedical Engineering. 2021;1–16. PMCID: PMC7809889 https://doi.org/10.1007/s42600-020-00116-1 [Epub ahead of print]; Журавель С.В., Гаврилов П.В., Кузнецова Н.К., Уткина И.И., Талызин А.М., Александрова В.Э. Клинический случай: термический гелий в лечении пневмонии, вызванной новой коронавирусной инфекцией COVID-19 (SARS-CoV-2). Вестник медицинского института «Реавиз». Реабилитация, Врач и Здоровье. 2021;1(49):5–10. https://doi.org/10.20340/vmi-rvz.2021.1.COVID.1; Левина О.А., Евсеев А.К., Шабанов А.К., Кулабухов В.В., Кутровская Н.Ю., Горончаровская И.В. и др. Безопасность применения гипербарической оксигенации при лечении COVID-19. Журнал им. Н.В. Склифосовского «Неотложная медицинская помощь». 2020;9(3):314–320. https://doi.org/10.23934/2223-9022-2020-9-3-314-320; Шогенова Л.В., Варфоломеев С.Д., Быков В.И., Цыбенова С.Б., Рябоконь А.М., Журавель С.В. и др. Влияние термической гелий-кислородной смеси на вирусную нагрузку при COVID-19. Пульмонология. 2020;30(5):533–543. https://doi.org/10.18093/0869-0189-2020-30-5-533-543; https://www.jnmp.ru/jour/article/view/1204

  10. 10
    Academic Journal

    Πηγή: Rheumatology Science and Practice; Vol 58, No 6 (2020); 734-742 ; Научно-практическая ревматология; Vol 58, No 6 (2020); 734-742 ; 1995-4492 ; 1995-4484

    Περιγραφή αρχείου: application/pdf

    Relation: https://rsp.mediar-press.net/rsp/article/view/2975/2049; Ревматология. Российские клинические рекомендации. Под ред. ЕЛ Насонова. М.: ГЭОТАР-Медиа; 2017:456.; Grassel S, Muschter D. Recent advances in the treatment of osteoarthritis. F1000Res. 2020;9 F1000FacultyRev-325. DOI:10.12688/f1000research.22115.1; Hawker GA. Osteoarthritis is a serious disease. Clin Exp Rheumatol. 2019;37 (Suppl 120):S3-S6.; Балабанова РМ, Дубинина ТВ, Демина АБ, Кричевская ОА. Заболеваемость болезнями костно-мышечной системы в Российской Федерации за 2015-2016 гг. Научнопрактическая ревматология. 2018; 56(1):15-21. DOI:10.14412/1995-4484-201815-21; Галушко ЕА, Насонов ЕЛ. Распространенность ревматических заболеваний в России. Альманах клинической медицины. 2018;46(1):32-39. DOI:10.18786/2072-0505-2018-461-32-39; Calders P, Van Ginckel A. Presence of comorbidities and prognosis of clinical symptoms in knee and/or hip osteoarthritis: A systematic review and meta-analysis. Semin Arthritis Rheum. 2018;47(6):805-813. DOI:10.1016/j.semarthrit.2017.10.016; Cleveland R, Nelson A, Callahan L. Knee and hip osteoarthritis as predictors of premature death: A review of the evidence. Clin Exp Rheumatol. 2019;37 Suppl 120(5):24-30.; Kolasinski SL, Neogi T, Hochberg MC, et al. 2019 American College of Rheumatology/Arthritis Foundation Guideline for the management of osteoarthritis of the hand, hip, and knee. Arthritis Rheumatol. 2020;72(2):220-233. DOI:10.1002/art.41142; Bannuru RR, Osani MC, Vaysbrot EE, et al. OARSI guidelines for the non-surgical management of knee, hip, and polyarticular osteoarthritis. Osteoarthritis Cartilage. 2019;27(11):1578-1589. DOI:10.1016/j.joca.2019.06.011; BruyCre O, Honvo G, Veronese N, et al. An updated algorithm recommendation for the management of knee osteoarthritis from the European Society for Clinical and Economic Aspects of Osteoporosis, Osteoarthritis and Musculoskeletal Diseases (ESCEO). Semin Arthritis Rheum. 2019;49(3):337-350. DOI:10.1016/j.semarthrit.2019.04.008; Chen AT, Shrestha S, Collins JE, et al. Estimating contextual effect in nonpharmacological therapies for pain in knee osteoarthritis: A systematic analytic review. Osteoarthritis Cartilage. 2020;28(9):1154-1169. DOI:10.1016/j.joca.2020.05.007; Geenen R, Overman CL, Christensen R, et al. EULAR recommendations for the health professional’s approach to pain management in inflammatory arthritis and osteoarthritis. Ann Rheum Dis. 2018;77(6):797-807. DOI:10.1136/annrheumdis-2017-212662; Абусева ГР, Ковлен ДВ, Пономаренко ГН, и др. Физические методы реабилитации пациентов с остеоартрозом: наукометрический анализ доказательных исследований. Травматология и ортопедия России. 2020;26(1):190-200. DOI:10.21823/2311-2905-2020-26-1-190-200; Ушаков АА. Практическая физиотерапия: руководство для врачей; М.: ООО «Медицинское информационное агентство», 2013;688.; Waldorff EI, Zhang N, Ryaby JT. Pulsed electromagnetic field applications: A corporate perspective. J Orthop Translat. 2017;9:60-68. DOI:10.1016/j.jot.2017.02.006; Murabayashi S. Application of magnetic field for biological response modification. Biomed Mater Eng. 2013;23(1-2):117-128. DOI:10.3233/BME-120737; Albuquerque WW, Costa RM, Fernandes Tde S, Porto AL. Evidences of the static magnetic field influence on cellular systems. Prog Biophys Mol Biol. 2016;121(1):16-28. DOI:10.1016/j.pbiomolbio.2016.03.003; Zeni O, Simko M, Scarfi MR, Mattsson MO. Cellular response to ELF-MF and heat: Evidence for a common involvement of heat shock proteins? Front Public Health. 2017;5:280. DOI:10.3389/fpubh.2017.00280; Ross CL, Harrison BS. The use of magnetic field for the reduction of inflammation: A review of the history and therapeutic results. Altern Ther Health Med. 2013;19(2):47-54.; Varani K, Vincenzi F, Ravani A, et al. Adenosine receptors as a biological pathway for the anti-inflammatory and beneficial effects of low frequency low energy pulsed electromagnetic fields. Mediators Inflamm. 2017;2017:2740963. DOI:10.1155/2017/2740963; Guerriero F, Ricevuti G. Extremely low frequency electromagnetic fields stimulation modulates autoimmunity and immune responses: A possible immuno-modulatory therapeutic effect in neurodegenerative diseases. Review Neural Regen Res. 2016;11(12):1888-1895. DOI:10.4103/1673-5374.195277; Premi E, Benussi A, La Gatta A, et al. Modulation of long-term potentiation-like cortical plasticity in the healthy brain with low frequency-pulsed electromagnetic fields. BMC Neurosci. 2018;19(1):34. DOI:10.1186/s12868-018-0434-z; Li Y, Yan X, Liu J, et al. Pulsed electromagnetic field enhances brain-derived neurotrophic factor expression through L-type voltage-gated calcium channel- and Erk-dependent signaling pathways in neonatal rat dorsal root ganglion neurons. Neurochem Int. 2014;75:96-104. DOI:10.1016/j.neuint.2014.06.004; Gajda GB, Bly SH. Magnetic field reference levels for arbitrary periodic waveforms for prevention of peripheral nerve stimulation. Health Phys. 2017;112(6):501-511. DOI:10.1097/HP.0000000000000663; Iwasa K, Reddi AH. Pulsed electromagnetic fields and tissue engineering of the joints. Tissue Eng Part B Rev. 2018;24(2):144-154. DOI:10.1089/ten.TEB.2017.0294; Wang T, Xie W, Ye W, He C. Effects of electromagnetic fields on osteoarthritis. Biomed Pharmacother. 2019;118:109282. DOI:10.1016/j.biopha.2019.109282; Massari L, Benazzo F, Falez F, et al. Biophysical stimulation of bone and cartilage: state of the art and future perspectives. Int Orthop. 2019;43(3):539-551. DOI:10.1007/s00264-018-4274-3; Klomjai W, Katz R, Lackmy-Vallce' A. Basic principles of transcranial magnetic stimulation (TMS) and repetitive TMS (rTMS). Ann Phys Rehabil Med. 2015;58(4):208-213. DOI:10.1016/j.rehab.2015.05.005; Neggers SF, Petrov PI, Mandija S, et al. Understanding the biophysical effects of transcranial magnetic stimulation on brain tissue: the bridge between brain stimulation and cognition. Prog Brain Res. 2015;222:229-259. DOI:10.1016/bs.pbr.2015.06.015; van Belkum SM, Bosker FJ, Kortekaas R, Beersma DG, Schoevers RA. Treatment of depression with low-strength tran-scranial pulsed electromagnetic fields: A mechanistic point of view. Prog Neuropsychopharmacol Biol Psychiatry. 2016;71:137-143. DOI:10.1016/j.pnpbp.2016.07.006; Физиотерапия и курортология. Книга 1. Под ред. ВМ Боголюбова. М.: БИНОМ, 2008;408.; Li S, Yu B, Zhou D, et al. Electromagnetic fields for treating osteoarthritis. Cochrane Database Syst Rev. 2013;(12):CD003523. DOI:10.1002/14651858.CD003523.pub2; Wu Z, Ding X, Lei G, Zeng C, et al. Efficacy and safety of the pulsed electromagnetic field in osteoarthritis: a meta-analysis. BMJ Open. 2018;8(12):e022879. DOI:10.1136/bmjopen-2018-022879; Yang X., He H., Ye W., et al. Effects of pulsed electromagnetic field therapy on pain, stiffness, physical function, and quality of life in patients with osteoarthritis: A systematic review and metaanalysis of randomized placebo-controlled trials. Physical Therapy. 2020;100(7):1118-1131. DOI:10.1093/PTJ/PZAA054; Bagnato GL, Miceli G, Marino N, et al. Pulsed electromagnetic fields in knee osteoarthritis: A double blind, placebo-controlled, randomized clinical trial. Rheumatology (Oxford). 2016;55(4):755-762. DOI:10.1093/rheumatology/kev426; Wuschech H, von Hehn U, Mikus E, Funk RH. Effects of PEMF on patients with osteoarthritis: Results of a prospective, placebo-controlled, double-blind study. Bioelectromagnetics. 2015;36(8):576-585. DOI:10.1002/bem.21942; Gobbi A, Lad D, Petrera M, Karnatzikos G. Symptomatic early osteoarthritis of the knee treated with pulsed electromagnetic fields: Two-year follow-up. Cartilage. 2014;5(2):78-85. DOI:10.1177/1947603513515904; Andrade R, Duarte H, Pereira R, et al. Pulsed electromagnetic field therapy effectiveness in low back pain: A systematic review of randomized controlled trials. Porto Biomed J. 2016;1(5):156-163. DOI:10.1016/j.pbj.2016.09.001; Lisi AJ, Scheinowitz M, Saporito R, Onorato A. A pulsed electromagnetic field therapy device for non-specific low back pain: A pilot randomized controlled trial. Pain Ther. 2019;8(1):133-140. DOI:10.1007/s40122-019-0119-z; Elshiwi A, Hamada H, Mosaad D, et al. Effect of pulsed electromagnetic field on nonspecific low back pain patients: A randomized controlled trial. Braz J Phys Ther. 2019;23(3):244-249. DOI:10.1016/j.bjpt.2018.08.004; Xie YJ, Gao Q, He CQ, Bian R. Effect of repetitive transcranial magnetic stimulation on gait and freezing of gait in Parkinson disease: A systematic review and meta-analysis. Arch Phys Med Rehabil. 2020;101(1):130-140. DOI:10.1016/j.apmr.2019.07.013; Li S, Jiao R, Zhou X, Chen S. Motor recovery and antidepressant effects of repetitive transcranial magnetic stimulation on Parkinson disease: A PRISMA-compliant meta-analysis. Medicine (Baltimore). 2020;99(18):e19642. DOI:10.1097/MD.0000000000019642; Liu C, Wang M, Liang X, Xue J, Zhang G. Efficacy and safety of high-frequency repetitive transcranial magnetic stimulation for poststroke depression: A systematic review and meta-analysis. Arch Phys Med Rehabil. 2019;100(10):1964-1975. DOI:10.1016/j.apmr.2019.03.012; Teng S, Guo Z, Peng H, et al. High-frequency repetitive transcranial magnetic stimulation over the left DLPFC for major depression: Session-dependent efficacy: A meta-analysis. Eur Psychiatry. 2017;41:75-84. DOI:10.1016/j.eurpsy.2016.11.002; O’Connell NE, Marston L, Spencer S, DeSouza LH, Wand BM. Non-invasive brain stimulation techniques for chronic pain. Cochrane Database of Systematic Reviews 2018;4(4):CD008208. DOI:10.1002/14651858.CD008208.pub5; Ambriz-Tututi M, Alvarado-Reynoso B, Drucker-Colin R. Analgesic effect of repetitive transcranial magnetic stimulation (rTMS) in patients with chronic low back pain. Bioelectromagnetics. 2016;37(8):527-535. DOI:10.1002/bem.22001; Основина ИП, Алексеева НВ, Герасименко МЮ. Трансдермальный магнитофорез хондропротектора при остеоартрите коленных суставов. Вопросы курортологии, физиотерапии и лечебной физкультуры. 2020;97(1):42-50. DOI:10.17116/kurort20209701142; Основина ИП, Алексеева НВ, Иванов АВ, Секирин АБ. Оценка эффективности применения магнитофореза трансдермальной формы диклофенака у пациентов с остеоартритом коленного сустава. Вопросы курортологии, физиотерапии и лечебной физкультуры. 2019;96(5):36-43. DOI:10.17116/kurort201996045136; Алексеева НВ, Основина ИП, Владимирцева ЕЛ, Иванов АВ. Обоснование возможности применения магнитофореза при патологии суставов. Вопросы курортологии, физиотерапии и лечебной физкультуры. 2018;95(3):49-56. DOI:10.17116/kurort201895349; Бодрова Р, Бяловский ЮЮ, Иванов АВ, Ларинский НЕ. Экономическая целесообразность включения магнитотерапии в комплексное лечение остеоартрита. Врач. 2014:4:59—63.; Бяловский ЮЮ, Иванов АВ, Ларинский НЕ, Секирин АБ. Локальная импульсная магнитотерапия аппаратом «АЛМАГ+» в комплексном лечении больных остеоартрозом. Врач. 2018;29(12):3-5. DOI:10.29296/25877305-2018-12-19; Бяловский ЮЮ, Секирин АБ, Смирнова СН. Эффективность низкочастотной магнитотерапии «бегущим» магнитным полем в комплексном лечении коксартроза. Врач. 2018;29(3):75-79. DOI:10.29296/25877305-2018-03-19; Бяловский ЮЮ, Иванов АВ, Булатецкий СВ. Оптимизация терапии гонартроза путем управления адаптационными возможностями организма. Врач. 2017;12:63-66.; Бяловский ЮЮ, Ларинский НЕ, Иванов АВ. Применение низкочастотного бегущего магнитного поля в лечении остеоартроза коленных суставов. Физиотерапия, бальнеология и реабилитация. 2012;3:16-18.; Каратеев АЕ, Погожева ЕЮ, Сухарева МЛ, и др. Оценка эффективности и безопасности магнитотерапии при остеоартрите. Результаты многоцентрового слепого плацебоконтро-лируемого исследования КОСМО (Клиническая Оценка Современной Магнитотерапии при Остеоартрите). Научнопрактическая ревматология. 2020;58(1):55-61. DOI:10.14412/1995-4484-2020-55-61; Кончугова ТВ, Кульчицкая ДБ, Иванов АВ. Эффективность методов магнитотерапии в лечении и реабилитации пациентов с заболеваниями суставов с позиции доказательной медицины. Вопросы курортологии, физиотерапии и лечебной физической культуры. 2019;96(4):63-68. DOI:10.17116/kurort20199604163; Moretti B, Notarnicola A, Moretti L, et al. I-ONE therapy in patients undergoing total knee arthroplasty: a prospective, randomized and controlled study. BMC Musculoskelet Disord. 2012;13:88. DOI:10.1186/1471-2474-13-88; Krastanova MS, Ilieva EM, Vacheva DE. Rehabilitation of patients with hip joint arthroplasty (late post-surgery period -hospital rehabilitation). Folia Med (Plovdiv). 2017;59(2):217-221. DOI:10.1515/folmed-2017-0016; Mohajerani H, Tabeie F, Vossoughi F, Jafari E, Assadi M. Effect of pulsed electromagnetic field on mandibular fracture healing: A randomized control trial, (RCT). J Stomatol Oral Maxillofac Surg. 2019;120(5):390-396. doi:10.1016/j.jormas.2019.02.022; Phillips M, Baumhauer J, Sprague S, Zoltan J. Use of combined magnetic field treatment for fracture nonunion. J Long Term Eff Med Implants. 2016;26(3):277-284. DOI:10.1615/JLongTermEffMedImplants.2016016818; Wang T, Yang L, Jiang J, et al. Pulsed electromagnetic fields: promising treatment for osteoporosis. Osteoporos Int. 2019;30(2):267-276. DOI:10.1007/s00198-018-04822-6; Pagani S, Veronesi F, Aldini NN, Fini M. Complex regional pain syndrome type I, a debilitating and poorly understood syndrome. Possible role for pulsed electromagnetic fields: A narrative review. Pain Physician. 2017;20(6):E807-E822.; Elsisi HF, Mousa GS, ELdesoky MT. Electromagnetic field versus circuit weight training on bone mineral density in elderly women. Clin Interv Aging. 2015;10:539-547. DOI:10.2147/CIA.S78485; Zwolihska J, (i.'isior M, Sniezek E, Kwolek A. The use of magnetic fields in treatment of patients with rheumatoid arthritis. Review of the literature. Reumatologia. 2016;54(4):201-206. DOI:10.5114/reum.2016.62475; Shupak NM, McKay JC, Nielson WR, et al. Exposure to a specific pulsed low-frequency magnetic field: A double-blind placebo-controlled study of effects on pain ratings in rheumatoid arthritis and fibromyalgia patients. Pain Res Manag. 2006;11(2):85-90. DOI:10.1155/2006/842162; Macfarlane (J, Paudyal P, Doherty M, et al. A systematic review of evidence for the effectiveness of practitioner-based complementary and alternative therapies in the management of rheumatic diseases: Rheumatoid arthritis. Rheumatology (Oxford). 2012;51(9):1707-1713. DOI:10.1093/rheumatology/kes133; Turan Y, Bayraktar K, Kahvecioglu F, et al. Is magnetotherapy applied to bilateral hips effective in ankylosing spondylitis patients? A randomized, double-blind, controlled study. Rheumatol Int. 2014;34(3):357-365. DOI:10.1007/s00296-013-2941-7; Черкашина ИВ, Ненашева НВ, Волчок АВ. Влияние хрономагнитотерапии на показатели качества жизни пациентов с заболеваниями опорно-двигательного аппарата на санаторно-курортном этапе реабилитации. Вопросы курортологии, физиотерапии и лечебной физической культуры. 2016;2:13-16. DOI:10.17116/kurort2016213-16; Основина ИП, Алексеева НВ. Методические подходы к назначению магнитотерапии у лиц пожилого возраста. Врач. 2018;29(6):55-59. DOI:10.29296/25877305-2018-06-12; Formica D, Silvestri S. Biological effects of exposure to magnetic resonance imaging: An overview. Biomed Eng Online. 2004;3:11. DOI:10.1186/1475-925X-3-11; Sakai K, Yasufuku Y, Kamo T, Ota E, Momosaki R. Repetitive peripheral magnetic stimulation for impairment and disability in people after stroke. Cochrane Database Syst Rev. 2019;11(11):CD011968. DOI:10.1002/14651858.CD011968.pub3; Nishimura T, Tada H, Guo X, et al. A 1-цТ extremely low-frequency electromagnetic field vs. sham control for mild-to-moderate hypertension: A double-blind, randomized study. Hypertens Res. 2011;34(3):372-377. DOI:10.1038/hr.2010.246; Абрамович СГ, Куликов АГ, Долбилкин АЮ. Общая магнитотерапия при артериальной гипертензии. Физиотерапия, бальнеология и реабилитация. 2014;5:50-55.; Бяловский ЮЮ, Кедрова ЛЛ. Магнитотерапия аппаратом «ПОЛИМАГ-01» в комплексной лечении артериальной гипертензии. Здравоохранение. 2008:1:171-174.; Sammet S. Magnetic resonance safety. Abdom Radiol (NY). 2016;41(3):444-451. DOI:10.1007/s00261-016-0680-4; Kim SJ, Kim KA. Safety issues and updates under MR environments. Eur J Radiol. 2017;89:7-13. DOI:10.1016/j.ejrad.2017.01.010; https://www.oecd-ilibrary.org/social-issues-migration-health/magnetic-resonance-imaging-mri-exams/indicator/english_1d89353f-en; Hoff MN, McKinney A 4th, Shellock FG, et al. Safety considerations of 7-T MRI in clinical practice. Radiology. 2019;292(3):509-518. DOI:10.1148/radiol.2019182742

  11. 11
    Academic Journal

    Πηγή: Bulletin of Scientific Research; No 3 (2016) ; Вестник научных исследований; № 3 (2016) ; Вісник наукових досліджень; № 3 (2016) ; 2415-8798 ; 1681-276X ; 10.11603/2415-8798.2016.3

    Περιγραφή αρχείου: application/pdf

  12. 12
    Academic Journal
  13. 13
    Academic Journal

    Πηγή: Bulletin of Scientific Research; No 3 (2016) ; Вестник научных исследований; № 3 (2016) ; Вісник наукових досліджень; № 3 (2016) ; 2415-8798 ; 1681-276X ; 10.11603/2415-8798.2016.3

    Περιγραφή αρχείου: application/pdf

  14. 14
  15. 15
    Academic Journal

    Πηγή: Family Medicine; № 4 (2018); 24-27
    Семейная медицина; № 4 (2018); 24-27
    Сімейна медицина; № 4 (2018); 24-27

    Περιγραφή αρχείου: application/pdf

    Σύνδεσμος πρόσβασης: http://family-medicine.com.ua/article/view/160070

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