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    Academic Journal

    Source: Вестник интенсивной терапии, Iss 2 (2025)

    File Description: electronic resource

  5. 5
    Academic Journal

    Contributors: The authors express their gratitude to Doctor Andrey S. Rybalko and Doctor Aleksey Yu. Belov, the Intensivists of the "Transmedavia" Emergency Medicine and Air Ambulance Service, LLC, Авторы выражают благодарность врачам-реаниматологам ООО Службы экстренной медицины и санитарной авиации «Трансмедавиа» Рыбалко Андрею Сергеевичу и Белову Алексею Юрьевичу

    Source: Transplantologiya. The Russian Journal of Transplantation; Том 17, № 3 (2025); 318-328 ; Трансплантология; Том 17, № 3 (2025); 318-328 ; 2542-0909 ; 2074-0506

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    Relation: https://www.jtransplantologiya.ru/jour/article/view/1036/961; Coniglio AC, Patel CB, Kittleson M, Schlendorf K, Schroder JN, DeVore AD. Innovations in heart transplantation: a review. J Card Fail. 2022;28(3):467– 476. PMID: 34752907 https://doi.org/10.1016/j.cardfail.2021.10.011; Liu L, Hu D, Hao T, Chen S, Chen L, Zhu Y, et al. Outcomes and risk factors of transported patients with extracorporeal membrane oxygenation: an ECMO center experience. J Intensive Med. 2024;5(1):35–42. PMID: 39872835 https://doi.org/10.1016/j.jointm.2024.04.003; Puslecki M, Baumgart K, Ligowski M, Dabrowski M, Stefaniak S, Ladzinska M, et al. Patient safety during ECMO transportation: single center experience and literature review. Emerg Med Int. 2021:2021:6633208. PMID: 33688436 https://doi.org/10.1155/2021/6633208; Власов А.Ю., Щёголев А.В., Курмансеитов М.М., Люшнин Ю.В., Шелухин Д.А., Якиревич И.А. и др. Первый опыт транспортировки больного с тяжелой дыхательной недостаточностью в условиях экстракорпоральной мембранной оксигенации. Военно-медицинский журнал. 2015;336(4):10–15.; Яковлев А.В., Тризна Е.В., Нохрин А.В., Суворов В.В., Хатагова Р.Б., Кирьяков К.С. и др. Применение экстракорпоральной мембранной оксигенации у новорожденных с рефрактерной гипоксемией во время медицинской эвакуации. Российский вестник перинатологии и педиатрии. 2022;67(3):92–99. https://doi.org/10.21508/1027-4065-2022-67-3-92-99; Попугаев К.А., Губарев К.К., Кругляков Н.М., Белоусова К.А., Лобанова И.Н., Абудеев С.А. и др. Опыт ЭКМО-центра ФМБА России по транспортировке пациентов с респираторным дистресссиндромом. Медицина экстремальных ситуаций. 2018;20(2):146–152.; Capoccia M, Maybauer DM, Brewer JM, Maybauer MO. Extracorporeal life support in adult burn care: a systematic review. Int J Artif Organs. 2023;46(6):321– 328. PMID: 37212142 https://doi.org/10.1177/03913988231177088; Yang JT, Kim HS, Kim KI, Ko HH, Lim JH, Lee HK, et al. Outcomes of urgent interhospital transportation for extracorporeal membrane oxygenation patients. J Chest Surg. 2022;55(6):452– 461. PMID: 36348506 https://doi.org/10.5090/jcs.22.052; Журавель С.В., Евсеев А.К., Колокольцев А.Д., Кузнецова Н.К., Уткина И.И., Петриков С.С. Историческое развитие и перспективы экстракорпоральной мембранной оксигенации в клинической практике. Высокотехнологическая медицина. 2020;7(1):51–58.; Резник О.Н., Скворцов А.Е., Теплов В.М., Комедев С.С., Лопота А.В., Грязнов Н.А. и др. Применение экстракорпоральной мембранной оксигенации в практике сердечно-легочной реанимации: обзор и перспективы технологии. Вестник хирургии им. И.И. Грекова. 2018;177(4):92–97. https://doi.org/10.24884/0042-4625-2018-177-4-92-97; Марков Ю.Н., Хафизов Р.Р., Думаньян Е.С., Загидуллин Б.И., Мухамадеев М.Ф. Опыт экстракорпоральной мембранной оксигенации у пациентов с рефрактерным кардиогенным шоком. Журнал им. Н.В. Склифосовского «Неотложная медицинская помощь». 2024;13(1):128–133. https://doi.org/10.23934/2223-9022-2024-13-1-128-133; Wothe JK, Bergman ZR, Kalland KR, Peter LG, Lusczek ER, Brunsvold ME. Outcomes of patients undergoing interfacility extracorporeal membrane oxygenation transfer based on cannulation location and mode of transport. Crit Care Explor. 2022;4(4):e0664. PMID: 35372849 https://doi.org/10.1097/CCE.0000000000000664; Шустров В.В., Щеголев А.В., Заболотских И.Б., Кузин А.А., Грицай А.Н., Лахин Р.Е. и др. Проведение межгоспитальной и внутригоспитальной транспортировки пациентов в критическом состоянии: результаты анкетного опроса. Вестник интенсивной терапии имени А.И. Салтанова. 2020;(4):127– 133. https://doi.org/10.21320/1818-474X-2020-4-127-133; Lucchini A, De Felippis C, Elli S, Gariboldi R, Vimercati S, Tundo P, et al. Mobile ECMO team for inter-hospital transportation of patients with ARDS: a retrospective case series. Heart Lung Vessel. 2014;6(4):262–273. PMID: 25436208; Campbell CB, Labib A. The development of a mobile ECMO program. Qatar Med J. 2017;11:1–2. https://doi.org/10.5339/qmj.2017.swacelso.11; Коваленко С.А., Касимов Р.Р., Хаустов М.В., Барсукова И.М., Махновский А.И. Межгоспитальная медицинская эвакуация пациентов с тяжелой травмой: пятилетний опыт работы отделения скорой медицинской помощи 442 Военного клинического госпиталя. Журнал «Неотложная хирургия им. И.И. Джанелидзе». 2021;2(3):42-47.; https://www.jtransplantologiya.ru/jour/article/view/1036

  6. 6
    Academic Journal

    Source: SCIENTIFIC JOURNAL OF APPLIED AND MEDICAL SCIENCES; Vol. 4 No. 1 (2025): SCIENTIFIC JOURNAL OF APPLIED AND MEDICAL SCIENCES; 220-224 ; НАУЧНЫЙ ЖУРНАЛ ПРИКЛАДНЫХ И МЕДИЦИНСКИХ НАУК; Том 4 № 1 (2025): SCIENTIFIC JOURNAL OF APPLIED AND MEDICAL SCIENCES; 220-224 ; 2181-3469

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  7. 7
    Academic Journal

    Source: Diagnostic radiology and radiotherapy; Том 16, № 1 (2025); 47-56 ; Лучевая диагностика и терапия; Том 16, № 1 (2025); 47-56 ; 2079-5343

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    Relation: https://radiag.bmoc-spb.ru/jour/article/view/1065/675; Breakey S., Harris A.C. Cholangiopancreatography (MRCP) in the Setting of Acute Pancreaticobiliary Disease: Can Certain Clinical Factors Guide Appropriate Utilization? // Canadian Association of Radiologists’ Journal. 2022. Vol. 73, No. 1. Р. 27–29. doi:10.1177/08465371211025527.; Beyer G., Kasprowicz F., Hannemann A. et al. Definition of age-dependent reference values for the diameter of the common bile duct and pancreatic duct on MRCP: a population-based, cross-sectional cohort study // Gut. 2023. Vol. 72, No. 9. Р. 1738–1744. doi:10.1136/gutjnl-2021-326106.; Palwa A.R., Nisar U., Shafique M. et al. The Accuracy of Transabdominal Ultrasound (TAUS) in Detection of Choledocholithiasis Keeping Magnetic Resonance Cholangiopancreatography (MRCP) as Gold Standard // Pak Armed Forces Med. J. 2022. Vol. 72, No. 2. Р. 485–488. doi:10.1016/j.clinimag.2021.08.007.; Chawla S., Sharma M., Makkar A. et al. Comparative assessment to establish the accuracy of MRCP over USG & CT in diagnosing the case of obstructive jaundice // European Journal of Molecular & Clinical Medicine. 2023. Vol. 9, No. 1.; Nair A.V., Macdonald D.B., Kelly E.M. et al. Utility of MRCP in surveillance of primary sclerosing cholangitis associated hepatobiliary malignancy: 15-year experience at a single institution in Ontario, Canada // Clinical Imaging. 2021. Vol. 81. Р. 108–114. doi:10.1016/j.clinimag.2021.08.007.; Tokoro H., Yamada A., Suzuki T. et al. Usefulness of breath-hold compressed sensing accelerated three-dimensional magnetic resonance cholangiopancreatography (MRCP) added to respiratory-gating conventional MRCP // European Journal of Radiology. 2020. Vol. 122. Р. 108765. doi:10.1016/j.ejrad.2019.108765.; Kromrey M.-L., Funayama S., Tamada D. et al. Clinical evaluation of respiratory-triggered 3D MRCP with navigator echoes compared to breath-hold acquisition using compressed sensing and/or parallel imaging // Magnetic Resonance in Medical Sciences. 2020. Vol. 19, No. 4. Р. 318–323. doi:10.2463/mrms.mp-2019-0122.; Jena P., Misra A.P., Jena D. To establish the accuracy of MRCP over USG & CT in diagnosing the case of obstructive jaundice with radiological study // International Journal of Radiology and Diagnostic Imaging. 2021. Vol. 4, No. 3. Р. 133–136. doi:10.33545/26644436.2021.v4.i3b.230.; Tso D.K., Almeida R.R., Prabhakar A.M. et al. Accuracy and timeliness of an abbreviated emergency department MRCP protocol for choledocholithiasis // Emergency Radiology. 2019. Vol. 26, No. 5. Р. 513–518. doi:10.1007/s10140-019-01689-w.; Lohöfer F.K., Kaissis G.A., Rasper M. et al. Magnetic resonance cholangiopancreatography at 3 Tesla: Image quality comparison between 3D compressed sensing and 2D single-shot acquisitions // European Journal of Radiology. 2019. Vol. 115. Р. 53–58. doi:10.1016/j.ejrad.2019.04.002.; Wang K., Li X., Liu J. et al. Predicting the image quality of respiratory-gated and breath-hold 3D MRCP from the breathing curve: A prospective study // Abdominal Radiology. 2023. Vol. 33, No. 12. Р. 4333–4343. doi:10.1007/s00330-022-09293-2.; Zhu L., Xue H., Sun Z. et al. Modified breath-hold compressed-sensing 3D MR cholangiopancreatography with a small field-of-view and high resolution acquisition: Clinical feasibility in biliary and pancreatic disorders // Journal of Magnetic Resonance Imaging. 2018. Vol. 48, No. 4. Р. 1389–1399. doi:10.1002/jmri.26049.; Zho S.Y., Park J., Choi J.Y., Kim D.H. Respiratory motion compensated MR cholangiopancreatography at 3.0 Tesla // J. Magn. Reson. Imaging. 2010. Vol. 32, No. 3. Р. 726–732. doi:10.1002/jmri.22307.; Sodickson A., Mortele K.J., Barish M.A. et al. Three-dimensional fast-recovery fast spin-echo MRCP: comparison with two-dimensional single-shot fast spin-echo techniques // Radiology. 2006. Vol. 238, No. 2. Р. 549–559. doi:10.1148/radiol.2382032065.; Yoon J.H., Lee S.M., Kang H.-J. et al. Clinical Feasibility of 3-Dimensional Magnetic Resonance Cholangiopancreatography Using Compressed Sensing: Comparison of Image Quality and Diagnostic Performance // Investigative Radiology. 2017. Vol. 52, No. 10. Р. 612–619. doi:10.1097/RLI.0000000000000380.; Vasanawala S.S., Alley M.T., Hargreaves B.A., Barth R.A., Pauly J.M., Lustig M. Improved pediatric MR imaging with compressed sensing // Radiology. 2010. Vol. 256, No. 2. Р. 607–616. doi:10.1148/radiol.10091218.; Zhang T., Chowdhury S., Lustig M., Vasanawala S.S., Ye J.C. Clinical performance of contrast enhanced abdominal pediatric MRI with fast combined parallel imaging compressed sensing reconstruction // Journal of Magnetic Resonance Imaging. 2014. Vol. 40, No. 1. Р. 13–25. doi:10.1002/jmri.24333.; Feng L., Benkert T., Block K.T., Sodickson D.K., Otazo R., Chandarana H. Compressed sensing for body MRI // Journal of Magnetic Resonance Imaging. 2017. Vol. 45, No. 4. Р. 966–987. doi:10.1002/jmri.25547.; Candès E.J., Romberg J., Tao T. Robust uncertainty principles: Exact signal reconstruction from highly incomplete frequency information // IEEE Transactions on Information Theory. 2006. Vol. 52, No. 2. Р. 489–509. doi:10.1109/TIT.2005.862083.; Candès E.J., Romberg J.K., Tao T. Stable signal recovery from incomplete and inaccurate measurements // Communications on Pure and Applied Mathematics. 2006. Vol. 59, No. 8. Р. 1207–1223. doi:10.1002/cpa.20124.; Seo N., Park M.S., Han K. et al. Feasibility of 3D navigator-triggered magnetic resonance cholangiopancreatography with combined parallel imaging and compressed sensing reconstruction at 3T // Journal of Magnetic Resonance Imaging. 2017. Vol. 46, No. 4. Р. 1289–1297. doi:10.1002/jmri.25672.; Schramm C., Eaton J., Ringe K.-I., Venkatesh S., Yamamura J. Recommendations on the use of magnetic resonance imaging in PSC: A position statement from the International PSC Study Group // Hepatology. 2017. Vol. 66, No. 5. Р. 1675–1688.; Rabiee A., Silveira M.G. Primary sclerosing cholangitis // Transl. Gastroenterol. Hepatol. 2021. Vol. 6, Р. 29. doi:10.21037/tgh-20-266.; Boonstra K., Beuers U., Ponsioen C.Y. Epidemiology of primary sclerosing cholangitis and primary biliary cirrhosis: a systematic review // J. Hepatol. 2012. Vol. 56, No. 5. Р. 1181–1188. doi:10.1016/j.jhep.2011.10.025.; Weismuller T.J., Trivedi P.J., Bergquist A. et al. Patient age, sex, and inflammatory bowel disease phenotype associate with course of primary sclerosing cholangitis // Gastroenterology. 2017. Vol. 152, No. 8, Р. 1975–1984.e8. doi:10.1053/j.gastro.2017.02.038.; Lunder A.K., Hov J.R., Borthne A. et al. Prevalence of sclerosing cholangitis detected by magnetic resonance cholangiography in patients with long-term inflammatory bowel disease // Gastroenterology. 2016. Vol. 151, No. 4. Р. 660–669.e4. doi:10.1053/j.gastro.2016.06.021.; Grigoriadis A., Morsbach F., Voulgarakis N. et al. Inter-reader agreement of interpretation of radiological course of bile duct changes between serial follow-up magnetic resonance imaging/3D magnetic resonance cholangiopancreatography of patients with primary sclerosing cholangitis // Scand. J. Gastroenterol. 2020. Vol. 55, No. 3. Р. 311–317. doi:10.1080/00365521.2020.1720281.; Lee J.Y., Kim K.W., Park S.W. et al. Diagnostic accuracy of magnetic resonance cholangiopancreatography in patients with suspected biliary obstruction // World J. Gastroenterol. 2014. Vol. 20, No. 31. Р. 10928–10936. doi:10.3748/wjg.v20.i31.10928.; Saini S. Imaging of the hepatobiliary tract // N. Engl. J. Med. 1997. Vol. 336, No. 26. Р. 1889–1894. doi:10.1056/NEJM199706263362607.; Baron R.L., Stanley R.J. Multidetector CT of the liver // Radiol. Clin. North Am. 2006. Vol. 44, No. 1. Р. 117–132. doi:10.1016/j.rcl.2005.09.004.; Adamek H.E., Albert J.G., Breer H. et al. S3 guideline on cholangiopancreatography (CPG) // Z. Gastroenterol. 2019. Vol. 57, No. 10. Р. 1317–1357. doi:10.1055/a-0962-2508.; Ward J., Naik K.S., Guthrie J.A. Magnetic resonance cholangiopancreatography (MRCP): a review // Clin. Radiol. 2000. Vol. 55, No. 3. Р. 177–186. doi:10.1053/crad.1999.0439.; Levy C., Dumont E., Liguory C. et al. Role of endoscopic ultrasound-guided fine needle aspiration in differentiating benign from malignant biliary strictures: a prospective series // Endoscopy. 2006. Vol. 38, No. 10. Р. 1003–1008. doi:10.1055/s-2006-944832.; Xiao J., Zhang Y., Wang Y. et al. Artificial intelligence in magnetic resonance cholangiopancreatography: a review // J. Dig. Dis. 2022. Vol. 23, No. 11. Р. 1065–1073. doi:10.1111/1751-2980.13201.; Tonolini M., Ravelli A., Villa C. et al. Urgent MRI with MR cholangiopancreatography (MRCP) of acute cholecystitis and related complications: diagnostic role and spectrum of imaging findings // Emerg. Radiol. 2012. Vol. 19, No. 5. Р. 341–348. doi:10.1007/s10140-012-1038-z.; Vidal B.P.C., Lahan-Martins D., Penachim T.J. et al. MR Cholangiopancreatography: What Every Radiology Resident Must Know // RadioGraphics. 2020. Vol. 40, No. 5. Р. 1263–1264. doi:10.1148/rg.2020200030.

  8. 8
    Academic Journal

    Source: Meditsinskiy sovet = Medical Council; № 4 (2025); 60-69 ; Медицинский Совет; № 4 (2025); 60-69 ; 2658-5790 ; 2079-701X

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    Relation: https://www.med-sovet.pro/jour/article/view/9025/7842; Доброхотова ЮЭ (ред.). Клинические лекции по акушерству и гинекологии. М.: ГЭОТАР-Медиа; 2009. 312 с.; Хайбуллина АР, Сахаутдинова ИВ, Кулешова ТП, Зулкарнеева ЭМ, Муслимова СЮ, Таюпова ИМ. Острый живот в гинекологии. Уфа: Изд-во БашНИПИнефть; 2014. 56 с. Режим доступа: https://library.bashgmu.ru/elibdoc/elib620.pdf.; Макаров ОВ (ред.). Гинекология. Клинические лекции. М.: ГЭОТАР Медиа; 2010. 352 с.; Cubro H, Cengic V, Burina N, Kravic Z, Beciragic E, Vranic S. Mucocele of the appendix presenting as an exacerbated chronic tubo-ovarian abscess: A case report and comprehensive review of the literature. Medicine. 2019;98(39):e17149. https://doi.org/10.1097/MD.0000000000017149.; Argentino GLS, Bueloni-Dias FN, Leite NJ, Peres GF, Elias LV, Bortolani VC et al. The role of laparoscopy in the propaedeutics of gynecological diagnosis1. Acta Cir Bras. 2019;34(1):e20190010000010. https://doi.org/10.1590/s0102-865020190010000010.; Al Ali M, Jabbour S, Alrajaby S. ACUTE ABDOMEN systemic sonographic approach to acute abdomen in emergency department: a case series. Ultrasound J. 2019;11(1):22. https://doi.org/10.1186/s13089-019-0136-5.; Ciebiera M, Słabuszewska-Jóźwiak A, Zaręba K, Jakiel G. Heterotopic pregnancy – how easily you can go wrong in diagnosing? A case study. J Ultrason. 2018;18(75):355–358. https://doi.org/10.15557/JoU.2018.0052.; Sayan CD, Yeral MI, Ozkan ZS, Karaca G, Asal N, Aydın O, Sagsoz N. Sigmoid Colon Perforation Mimics a Tuboovarian Absces. Med Arch. 2018;72(2):151–153. https://doi.org/10.5455/medarh.2018.72.151-153.; Миннуллин РИ, Рухляда НН, Мирошниченко АГ, Соловьев ИА, Алимов РР. Анализ традиционной диагностической тактики при острых хирургических заболеваниях органов брюшной полости и малого таза у женщин репродуктивного возраста на догоспитальном и стационарном этапах скорой медицинской помощи. Скорая медицинская помощь. 2014;15(3):51–56. https://doi.org/10.24884/2072-6716-2014-15-3-51-56.; Liu H, Ge YX, Xiang YJ, Zhang XL. Gynecological acute abdomen in patients age under 18: an analysis of 237 cases. Zhonghua Fu Chan Ke Za Zhi. 2018;53(5):304–307. https://doi.org/10.3760/cma.j.issn.0529-567x.2018.05.004.; Адамян ЛВ, Артымук НВ, Беженарь ВФ, Белокринницкая ТЕ, Доброхотова ЮЭ, Киселев СИ и др. Внематочная (эктопическая) беременность: клинические рекомендации. 2024. Режим доступа: https://g-academy.ru/sites/default/files/2024-12/cr_4.pdf.; Адамян ЛВ, Андреева ЕН, Артымук НВ, Белокринницкая ТЕ, Беженарь ВФ, Сутурина ЛВ и др. Воспалительные болезни женских тазовых органов: клинические рекомендации. 2024. Режим доступа: https://cr.minzdrav.gov.ru/preview-cr/643_2.; Flasar MH, Goldberg E. Acute abdominal pain. Med Clin North Am. 2006;90(3):481–503. https://doi.org/10.1016/j.mcna.2005.11.005.; Петлах В, Коновалов А, Константинова И, Сергеев А, Беляева О. Диагностика и лечение гинекологических заболеваний в практике детского хирурга. Врач. 2012;(1):3–7. Режим доступа: https://pulmo.rusvrach.ru/archive/vrach-2012-01-02.pdf.; Grundmann RT, Petersen M, Lippert H, Meyer F. The acute (surgical) abdomen – epidemiology, diagnosis and general principles of management. Z Gastroenterol. 2010;48(6):696–706. https://doi.org/10.1055/s-0029-1245303.; Mayumi T, Yoshida M, Tazuma S, Furukawa A, Nishii O, Shigematsu K et al. The Practice Guidelines for Primary Care of Acute Abdomen 2015. Jpn J Radiol. 2016;34(1):80–115. https://doi.org/10.1007/s11604-015-0489-z.; Ahmad G, Duffy JM, Phillips K, Watson A. Laparoscopic entry techniques. Cochrane Database Syst Rev. 2008;(2):CD006583. https://doi.org/10.1002/14651858.CD006583.pub2.; Angioli R, Terranova C, De Cicco Nardone C, Cafà EV, Damiani P, Portuesi R et al. A comparison of three different entry techniques in gynecological laparoscopic surgery: a randomized prospective trial. Eur J Obstet Gynecol Reprod Biol. 2013;171(2):339–342. https://doi.org/10.1016/j.ejogrb.2013.09.012.; Ietto G, Amico F, Pettinato G, Iori V, Carcano G. Laparoscopy in Emergency: Why Not? Advantages of Laparoscopy in Major Emergency: A Review. Life. 2021;11(9):917. https://doi.org/10.3390/life11090917.; Bokemeyer A, Ochs K, Fuhrmann V. Acute Abdomen: Diagnostic Management. Dtsch Med Wochenschr. 2020;145(21):1544–1551. https://doi.org/10.1055/a-1007-4264.; Cooke CM, Macdonald DB, Singh SS. Acute Abdominal Pain in a Postmenopausal Woman. JAMA Surg. 2018;153(11):1049–1050. https://doi.org/10.1001/jamasurg.2018.2016.; Снегирев ИИ, Фролов АП, Зелов ИА. Ошибки в диагностике острого аппендицита и острых абдоминальных заболеваний гениталий у женщин. Сибирский медицинский журнал (Иркутск). 2007;(2):27–29. Режим доступа: https://cyberleninka.ru/article/n/oshibki-v-diagnostike-ostrogoappenditsita-i-ostryh-abdominalnyh-zabolevaniy-genitaliy-u-zhenschin.; Самсонов ВТ, Ермолов АС, Гуляев АА, Ярцев ПА, Абдуламитов ХК, Саттарова ЗИ. Возможности видеолапароскопии в диагностике и лечении заболеваний, симулирующих острый аппендицит. Хирургия. Журнал им. Н.И. Пирогова. 2017;(6):22–27. https://doi.org/10.17116/hirurgia2017622-27.

  9. 9
    Academic Journal

    Contributors: The study reported in this publication was carried out by the National Research Center for Epidemiology and Microbiology named after honorary academician N.F. Gamaleya of the Ministry of Health of the Russian Federation as part of publicly funded research project No. AAAA-A18-118032790102-6 “Development and preclinical safety and efficacy study of a single-domain antibody product for the treatment of botulinum toxin poisoning”, Работа выполнена в рамках государственного задания ФГБУ «НИЦЭМ им. Н.Ф. Гамалеи» Минздрава России «Разработка и доклиническое исследование безопасности и эффективности препарата на основе однодоменных антител для терапии интоксикации, вызванной ботулотоксином» № АААА-А18-118032790102-6.

    Source: Biological Products. Prevention, Diagnosis, Treatment; Том 25, № 1 (2025); 58-70 ; БИОпрепараты. Профилактика, диагностика, лечение; Том 25, № 1 (2025); 58-70 ; 2619-1156 ; 2221-996X ; 10.30895/2221-996X-2025-25-1

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