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    Academic Journal

    Contributors: The study was performed without external funding, Исследование выполнено без спонсорской поддержки

    Source: Russian Journal of Child Neurology; Том 17, № 4 (2022); 24-32 ; Русский журнал детской неврологии; Том 17, № 4 (2022); 24-32 ; 2412-9178 ; 2073-8803 ; 10.17650/2073-8803-2022-17-4

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    Relation: https://rjdn.abvpress.ru/jour/article/view/421/284; Гриненко О. А. Хирургия эпилепсии при многоочаговом поражении головного мозга. Опыт лечения детей с туберозным склерозом / О. А. Гриненко [и др.] // Вестник эпилептологии. – 2014. – (1): 3–16.; Козлова А. Б. Сочетание нейронально-глиальной опухоли и микродисгенезии коры у ребенка с симптоматической эпилепсией / А. Б. Козлова [и др.] // Нейрохирургия и неврология детского возраста. – 2015. – 2 (44): 25–34.; Корсакова М. Б. Сопоставление электрокортикографических паттернов и типов фокальных корковых дисплазий у детей с эпилепсией / М. Б. Корсакова [и др.] // Вопросы нейрохирургии. – 2015. – (5): 19–27. DOI:10.17116/neiro201579519-27; Мухин К. Ю. Фокальные кортикальные дисплазии: клинико-электро-нейровизуализационные характеристики / К. Ю. Мухин // Русский журнал детской неврологии. – 2016. – 11 (2): 8–24. DOI:10.17650/2073-8803-2016-11-2-8-24; Степаненко А. Ю. Кортикальные дисплазии как эпилептогенные поражения / А. Ю. Степаненко // Нейрохирургия. – 2013. – (3): 85–91. URL: https://www.therjn.com/jour/article/view/50; Степаненко А. Ю. Обоснование применения интраоперационной электрокортикографии для определения границ резекции в хирургии височной эпилепсии / А. Ю. Степаненко [и др.] // Нейрохирургия. – 2011. – (3): 43–9.; Al-Ghanem S. S., Al-Oweidi A. S., Tamimi A. F. et al. Anesthesia and electrocorticography for epilepsy surgery: a Jordanian experience. Middle East J Anaesthesiol 2009; 20 (1): 31–7.; Blume W. T., Parrent A. G., Kaibara M. Stereotactic amygdalohippocampotomy and mesial temporal spikes. Epilepsia 1997; 38 (8): 930–6. DOI:10.1111/j.1528-1157.1997.tb01259.x; Blümcke I., Thom M., Aronica E. et al. The clinicopathologic spectrum of focal cortical dysplasias: a consensus classification proposed by an ad hoc Task Force of the ILAE Diagnostic Methods Commission. Epilepsia 2011; 52 (1): 158–74. DOI:10.1111/j.1528-1167.2010.02777.x; Cendes F., Dubeau F., Olivier A. et al. Increased neocortical spiking and surgical outcome after selective amygdalo-hippocampectomy. Epilepsy Res 1993; 16 (3): 195–206. DOI:10.1016/0920-1211(93)90080-q; Ferrier C. H., Alarcon G., Engelsman J. et al. Relevance of residual histologic and electrocorticographic abnormalities for surgical outcome in frontal lobe epilepsy. Epilepsia 2001; 42 (3): 363–71. DOI:10.1046/j.1528-1157.2001.06900.x; Holthausen H., Pieper T., Winkler P. et al. Electro-clinical-pathological correlations in focal cortical dysplasia (FCD) at young ages. Childs Nerv Syst 2014; 30 (12): 2015–26. DOI:10.1007/s00381-014-2549-6; Kumar R. M., Koh S., Knupp K. et al. Surgery for infants with catastrophic epilepsy: an analysis of complications and efficacy. Childs Nerv Syst 2015; 31 (9): 1479–91. DOI:10.1007/s00381-015-2759-6; Kuruvilla A., Flink R. Intraoperative electrocorticography in epilepsy surgery: useful or not? Seizure 2003; 12 (8): 577–84.; Luders H. O., Engel J. Jr., Munari C. General principles. In: Surgical Treatment of Epilepsies. New York: Raven Press, 1993. Pp. 137–153.; Luders H. O., Awad I. Conceptual considerations. In: Epilepsy Surgery. New York: Raven Press, 1991. Pp. 51–62.; Penfield W. The epilepsies: with a note on radical therapy. N Engl J Med 1939; 221: 209–18.; Rasmussen T. Characteristics of a pure culture of frontal lobe epilepsy. Epilepsia 1983; 24: 482–93.; San-Juan D., Alonso-Vanegas M. A., Trenado C. et al. Electrocorticographic patterns in epilepsy surgery and long-term outcome. J Clin Neurophysiol 2017; 34 (6): 520–6. DOI:10.1097/WNP.0000000000000407; Sun Y., Wang X., Che N. et al. Clinical characteristics and epilepsy outcomes following surgery caused by focal cortical dysplasia (type IIa) in 110 adult epileptic patients. Exp Ther Med 2017; 13 (5): 2225–34. DOI:10.3892/etm.2017.4315; Yang T., Hakimian S., Schwartz T. H. Intraoperative ElectroCorticoGraphy (ECog): indications, techniques, and utility in epilepsy surgery. Epileptic Disord 2014; 16 (3): 271–9. DOI:10.1684/epd.2014.0675; Tran T. A., Spencer S. S., Javidan M. et al. Significance of spikes recorded on intraoperative electrocorticography in patients with brain tumor and epilepsy. Epilepsia 1997; 38 (10): 1132–9.; Tripathi M., Garg A., Gaikwad S. et al. Intra-operative electrocorticography in lesional epilepsy. Epilepsy Res 2010; 89 (1): 133–41. DOI:10.1016/j.eplepsyres.2009.12.007; Wennberg R., Quesney L. F., Lozano A. et al. Role of electrocorticography at surgery for lesion-related frontal lobe epilepsy. Can J Neurol Sci 1999; 26 (1): 33–9.; Wennberg R., Quesney F., Olivier A. et al. Electrocorticography and outcome in frontal lobe epilepsy. Electroencephalogr Clin Neurophysiol 1998; 106 (4): 357–68. DOI:10.1016/s0013-4694(97)00148-x; Wennberg R., Quesney F., Olivier A. et al. Induction of burst-suppression and activation of epileptiform activity after methohexital and selective amygdalo-hippocampectomy. Electroencephalogr Clin Neurophysiol 1997; 102 (5): 443–51. DOI:10.1016/s0921-884x(97)96052-5. Erratum in: Electroencephalogr Clin Neurophysiol 1998; 106 (3): 265.; Wennberg R. A., Quesney L. F., Villemure J. G. Epileptiform and non-epileptiform paroxysmal activity from isolated cortex after functional hemispherectomy. Electroencephalogr Clin Neurophysiol 1997;102 (5): 437–42. DOI:10.1016/s0921-884x(97)96047-1; https://rjdn.abvpress.ru/jour/article/view/421

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    Academic Journal

    Source: Neuromuscular Diseases; № 2 (2012); 59-64 ; Нервно-мышечные болезни; № 2 (2012); 59-64 ; 2413-0443 ; 2222-8721 ; 10.17650/2222-8721-2012-0-2

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    Relation: https://nmb.abvpress.ru/jour/article/view/80/76; Гуща А.О. Диагностика и хирургическое лечение дегенеративных компрессионных синдромов на уровне шейного отдела позвоночника. Дис. … докт. мед. наук. 2007: с. 406.; Kaneko K., Taguchi T., Morita H. et al. Mechanism of prolonged central motor conduction time in compressive cervical myelopathy. Clin Neurophysiol 2001;112(6):1035−40.; Kato Y. et al., Selective laminoplasty after the preoperative diagnosis of the responsible level using spinal cord evoked potentials in elderly patients with cervical spondylotic myelopathy: a preliminary report. J Spinal Disord Tech, 2009; 22(8):586−92.; Kim D.H., Zaremski J., Kwon B. et al. Risk factors for false positive transcranial motor evoked potential monitoring alerts during surgical treatment of cervical myelopathy. Spine 2007;32(26):3041−6.; Lo Y.L. How has electrophysiology changed the management of cervical spondylotic myelopathy? Eur J Neurol 2008;15(8):781−6.; Mori K., Yamamoto T., Nakao Y., Maeda M. Cervical spondylotic amyotrophy treated by anterior decompression. Three case reports. Neurol Med Chir (Tokyo) 2006;46(7):366−70.; Nakanishi K., Tanaka N., Fujiwara Y. et al. Corticospinal tract conduction block results in the prolongation of central motor conduction time in compressive cervical myelopathy. Clin Neurophysiol 2006; 117(3):623−7.; Nakanishi K. et al. Significant correlation between corticospinal tract conduction block and prolongation of central motor conduction time in compressive cervical myelopathy. J Neurol Sci 2007;256 (1−2):71−4.; https://nmb.abvpress.ru/jour/article/view/80

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