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  1. 1
    Academic Journal

    Source: Messenger of ANESTHESIOLOGY AND RESUSCITATION; Том 21, № 1 (2024); 118-124 ; Вестник анестезиологии и реаниматологии; Том 21, № 1 (2024); 118-124 ; 2541-8653 ; 2078-5658

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    Relation: https://www.vair-journal.com/jour/article/view/936/697; Быков Ю. В., Батурин В. А. Патофизиологические механизмы отека головного мозга при диабетическом кетоацидозе в детской практике // Медицина. – 2021. – № 1. – С. 116–127. DOI:10.29234/2308-9113-2021-9-1-116-127.; Быков Ю. В. Диабетический кетоацидоз у детей и подростков: от патофизиологии до профилактики // Забайкальский медицинский вестник. – 2021. – № 2. – С. 85–95. DOI:10.52485/19986173_2021_2_85.; Сахарный диабет 1 типа у детей: клинические рекомендации / Российская ассоциация эндокринологов. – 2022. – 89 c.; Магомедова К. Ш., Быков Ю. В., Батурин В. А. Диабетический кетоацидоз и когнитивные нарушения у детей и подростков // Бюллетень сибирской медицины. – 2023. – Т. 22, № . – С. 132–140. DOI:10.20538/1682-0363-2023-3-132-140.; Материалы ежегодной конференции детских эндокринологии ЦФО «Неотложные состояния в детской эндокринологии». Рязань, 2022. – 163 с.; Федеральные клинические рекомендации (протоколы) по ведению детей с эндокринными заболеваниями / под ред. И. И. Дедова и В. А. Петерковой. – М.: Практика, 2014. – 442 с.; Akcan N., Uysalol M., Kandemir I. et al. Evaluation of the efficacy and safety of 3 different management protocols in pediatric diabetic ketoacidosis // Pediatr Emerg Care. – 2021. – Vol. 37, № 11. – Р. e707–e712. DOI:10.1097/PEC.0000000000001770.; Basnet S., Musaitif R., Khanal A. et al. Effect of potassium infusions on serum levels in children during treatment of diabetic ketoacidosis // J Pediatr Intensive Care. – 2020. – Vol. 9, № 2. – Р. 113–118. DOI:10.1055/s-0039-1700981.; Bergman K. R., Abuzzahab M. J., Nowak J. et al. Resuscitation with Ringer’s Lactate compared with normal saline for pediatric diabetic ketoacidosis // Pediatr. Emerg. Care. – 2021. – Vol. 37. – P. 236–242. DOI:10.1097/PEC.0000000000001550.; Bergman K. R., Boes M., Velden H. V. et al. Intravenous fluid bolus volume and resolution of acute kidney injury in children with diabetic ketoacidosis // Pediatr Emerg Care. – 2023. – Vol. 39, № 2. – Р. 67–73. DOI:10.1097/PEC.0000000000002616.; Cashen K., Petersen T. Diabetic ketoacidosis // Pediatr Rev. – 2019. – Vol. 40, № 8. – Р. 412–420. DOI:10.1542/pir.2018-0231.; Castellanos L., Tuffaha M., Koren D. et al. Management of diabetic ketoacidosis in children and adolescents with type 1 diabetes mellitus // Pediatric Drugs. – 2020. – Vol. 22, № 4. – Р. 357–367. DOI:10.1007/s40272-020-00397-0.; Danne T., Danne T., Garg S. et al. International consensus on risk management of diabetic ketoacidosis in patients with type 1 diabetes treated with sodium-glucose cotransporter (SGLT) inhibitors // Diabetes Care. – 2019. – Vol. 42. – P. 1147–1154. DOI:10.2337/dc18-2316.; Dhochak N., Jayashree M., Singhi S. A randomized controlled trial of one bag vs. two bag system of fluid delivery in children with diabetic ketoacidosis: experience from a developing country // J Crit Care. – 2018. – Vol. 43. – P. 340–345. DOI:10.1016/j.jcrc.2017.09.175.; Duca L. M., Reboussin B. A., Pihoker C. et al. Diabetic ketoacidosis at diagnosis of type 1 diabetes and glycemic control over time: the SEARCH for diabetes in youth study // Pediatr Diabetes. – 2019. – Vol. 20, № 2. – Р. 172–179. DOI:10.1111/pedi.12809.; Forestell B., Battaglia F., Sharif S. et al. Insulin infusion dosing in pediatric diabetic ketoacidosis: a systematic review and meta-analysis of randomized controlled trials // Crit Care Explor. – 2023. – Vol. 17, № 5. – Р. 0857. DOI:10.1097/CCE.0000000000000857.; Gershkovich B., English S. W., Doyle M. A. et al. Choice of crystalloid fluid in the treatment of hyperglycemic emergencies: a systematic review protocol // Syst Rev – 2019. – Vol. 8, № 1. – Р. 228. DOI:10.1186/s13643–019–1130–5.; Glaser N., Fritsch M., Priyambada L. et al. ISPAD clinical practice consensus guidelines 2022: Diabetic ketoacidosis and hyperglycemic hyperosmolar state // Pediatr Diabetes. – 2022. – Vol. 23. – P. 835–856. DOI:10.1111/pedi.13406.; Glaser N. S., Stoner M. J., Garro A. et al. Serum sodium concentration and mental status in children with diabetic ketoacidosis // Pediatrics. – 2021. – Vol. 148, № 3. – Р. 2021050243. DOI:10.1542/2021-050243.; Guise R., Ausherman K., Vazifedan T. Potassium-containing fluids for diabetic ketoacidosis // J Pediatr Pharmacol Ther. – 2021. – Vol. 26, № 6. – Р. 592–596. DOI:10.5863/1551-6776-26.6.592.; Hadgu F. B., Sibhat G. G., Gebretsadik L. G. Diabetic ketoacidosis in children and adolescents with newly diagnosed type 1 diabetes in Tigray, Ethiopia: retrospective observational study // Pediatric Health Med Ther. – 2019. – Vol. 23. – P. 49–55. DOI:10.2147/PHMT.S207165.; Hasan R. A., Hamid K., Dubre D. et al. The two-bag system for intravenous fluid management of children with diabetic ketoacidosis: experience from a community-based hospital // Glob Pediatr Health. – 2021. – Vol. 8. – P. 2333794X21991532. DOI:10.1177/2333794X21991532.; Jayashree M., Williams V., Iyer R. Fluid therapy for pediatric patients with diabetic ketoacidosis: current perspectives // Diabetes Metab Syndr Obes. – 2019. – Vol. 12. – P. 2355–2361. DOI:10.2147/DMSO.S194944.; Jensen E. T., Stafford J. M., Saydah S. et al. Increase in prevalence of diabetic ketoacidosis at diagnosis among youth with type 1 diabetes: the SEARCH for diabetes in youth study // Diabetes Care. – 2021. – Vol. 44. – P. 1573–1578. DOI:10.2337/dc20-0389.; Kangin M., Talay M. N., Yilmaz S. T. et al. retrospective analysis of children and adolescents with diabetic ketoacidosis in the intensive care unıt: is it significant that the blood ketone level becomes negative in diabetic ketoacidosis? // Cureus. – 2020. –Vol. 12, № 10. – Р. e10844. DOI:10.7759/cureus.10844.; Kostopoulou E., Sinopidis X., Fouzas S. et al. Diabetic ketoacidosis in children and adolescents; diagnostic and therapeutic pitfalls // Diagnostics (Basel). – 2023. – Vol. 13, № 15. – Р. 2602. DOI:10.3390/diagnostics13152602.; Kuppermann N., Ghetti S., Schunk J. E. et al. Clinical trial of fluid infusion rates for pediatric diabetic ketoacidosis // N Engl J Med. – 2018. – Vol. 378. – P. 2275–2287. DOI:10.1056/NEJMoa1716816.; Lapolla A., Amaro F., Bruttomesso D. et al. Diabetic ketoacidosis: A consensus statement of the Italian Association of Medical Diabetologists (AMD), Italian Society of Diabetology (SID), Italian Society of Endocrinology and Pediatric Diabetoloy (SIEDP) // Nutr Metab Cardiovasc Dis. – 2020. – Vol. 30. – P. 1633–1644. DOI:10.1016/j.numecd.2020.06.006.; Long B., Koyfman A. Emergency medicine myths: cerebral edema in pediatric diabetic ketoacidosis and intravenous fluids // J. Emerg. Med. – 2017. – Vol. 53. – P. 212–221. DOI:10.1016/j.jemermed.2017.03.014.; McGregor S., Metzger D. L., Amed S. et al. Fluid management in children with diabetic ketoacidosis // Can Fam Physician. – 2020. – Vol. 66, № 11. – Р. 817–819.; Miszczuk K., Mroczek-Wacinska J., Piekarskiet R. al. Ventricular bigeminy and trigeminy caused by hypophosphataemia during diabetic ketoacidosis treatment: a case report // Ital J Pediatr. – 2019. – Vol. 45, № 1. – Р. 42. DOI:10.1186/s13052-019-0633-y.; Namatame K., Igarashi Y., Nakae R. et al. Cerebral edema associated with diabetic ketoacidosis: Two case reports // Acute Med Surg. – 2023. – Vol. 10, № 1. – Р. e860. DOI:10.1002/ams2.860.; Passanisi S., Salzano G., Basile P. et al. Prevalence and clinical features of severe diabetic ketoacidosis treated in pediatric intensive care unit: a 5-year monocentric experience // Ital J Pediatr. – 2023. – Vol. 49, № 1. – Р. 58. DOI:10.1186/s13052-023-01448-1.; Patel M. P., Ahmed A., Gunapalan T. et al. Use of sodium bicarbonate and blood gas monitoring in diabetic ketoacidosis: A review // World J. Diabetes. – 2018. – Vol. 9. – P. 199–205. DOI:10.4239/wjd.v9.i11.199.; Peng W., Yuan J., Chiavaroli V. et al. 10-year incidence of diabetic ketoacidosis at type 1 diabetes diagnosis in children aged less than 16 years from a large regional center (Hangzhou, China) // Front. Endocrinol. – 2021. – Vol. 27. – P. 653519. DOI:10.3389/fendo.2021.653519.; Pruitt L. G., Jones G., Musso M. et al. Intravenous fluid bolus rates and pediatric diabetic ketoacidosis resolution // Am J Emerg Med. – 2019. – Vol. 37, № 12. – Р. 2239–2241. DOI:10.1016/j.ajem.2019.03.039.; Rameshkumar R., Satheesh P., Jain P. et al. Low-dose (0.05 Unit/kg/hour) vs. Standard-dose (0.1 unit/kg/hour) insulin in the management of pediatric diabetic ketoacidosis: a randomized double–blind controlled trial // Indian Pediatr. – 2021. – Vol. 58. – P. 617–623. DOI:10.1007/s13312–021–2255–x.; Rami-Merhar B., Fröhlich-Reiterer E., Hofer S. E. et al. Diabetes mellitus in childhood and adolescence (Update 2023) // Wien Klin Wochenschr. – 2023. – Vol. 135, № 1. – Р. 106–114. DOI:10.1007/s00508-023-02169-5.; Ravikumar N., Bansal A. Application of bench studies at the bedside to improve outcomes in the management of severe diabetic ketoacidosis in children – a narrative review // Transl Pediatr. – 2021. – Vol. 10, № 10. – Р. 2792–2798. DOI:10.21037/tp-21-5.; Rewers A., Kuppermann N., Stoner M. J. et al. Effects of fluid rehydration strategy on correction of acidosis and electrolyte abnormalities in children with diabetic ketoacidosis // Diabetes Care. – 2021. – Vol. 44, № 9. – Р. 2061–2068. DOI:10.2337/dc20-3113.; Robinson M. E., Li P., Rahme E. et al. Increasing prevalence of diabetic ketoacidosis at diabetes diagnosis among children in Quebec: a population-based retrospective cohort study // CMAJ Open. – 2019. – Vol. 7, № 2. – Р. E300–305. DOI:10.9778/cmajo.20190047.; Saikia D., Mittal M., Kanakaraju C. et al. Efficacy and safety of low dose insulin infusion against standard dose insulin infusion in children with diabetic ketoacidosis– an open labelled randomized controlled trial // Indian J Endocrinol Metab. – 2022. – Vol. 26, № 2. – Р. 173–179. DOI:10.4103/ijem.ijem_50_22.; Self W. H., Christopher S. E., Jenkins C. A. et al. Clinical effects of balanced crystalloids vs saline in adults with diabetic ketoacidosis: a subgroup analysis of cluster randomized clinical trials // JAMA Netw Open. – 2020. – Vol. 3, № 11. – Р. e2024596. DOI:10.1001/jamanetworkopen.2020.24596.; Tomulić K. L., Matko L., Verbić A. et al. Epidemiologic characteristics of children with diabetic ketoacidosis treated in a pediatric intensive care unit in a 10-year-period: single centre experience in croatia // Medicina (Kaunas). – 2022. – Vol. 58, № 5. – Р. 638. DOI:10.3390/medicina58050638.; Vellanki P., Umpierrez G. E. Increasing hospitalizations for DKA: a need for prevention programs // Diabetes Care. – 2018. – Vol. 41. – P. 1839–1841. DOI:10.2337/dci18-0004.; Welter K. J., Marquez J. L., Marshik P. L. et al. Evaluation of early insulin glargine administration in the treatment of pediatric diabetic ketoacidosis // J Pediatr Pharmacol Ther. – 2023. – Vol. 28, № 2. – Р. 149–155. DOI:10.5863/1551-6776-28.2.149.; Williams V., Jayashree M., Nallasamy K. et al. 0.9 % saline versus Plasma-Lyte as initial fluid in children with diabetic ketoacidosis (SPinK trial): a double-blind randomized controlled trial // Critical Care. – 2020. – Vol. 24. – P. 1. DOI:10.1186/s13054-019-2683-3.; Wolfsdorf J. I., Glaser N., Agus M. et al. ISPAD Clinical Practice Consensus Guidelines 2018: Diabetic ketoacidosis and the hyperglycemic hyperosmolar state // Pediatr Diabetes. – 2018. – Vol.19, № 27. – Р. 155–177. DOI:10.1111/pedi.12701.; Yung M., Letton G., Keeley S. Controlled trial of Hartmann’s solution versus 0.9 % saline for diabetic ketoacidosis // J Paediatr Child Health. – 2017. – Vol. 53. – P. 12–17. DOI:10.1111/jpc.13436.; Zucchini S., Bonfanti R., Schiaffini R. et al. Editorial: Diabetic ketoacidosis in children and adolescents: From epidemiological data to clinical aspects // Front Pediatr. – 2023. –Vol. 11. – P. 1164946. DOI:10.3389/fped.2023.1164946.

  2. 2
    Academic Journal

    Source: Rossiyskiy Vestnik Perinatologii i Pediatrii (Russian Bulletin of Perinatology and Pediatrics); Том 68, № 1 (2023); 11-15 ; Российский вестник перинатологии и педиатрии; Том 68, № 1 (2023); 11-15 ; 2500-2228 ; 1027-4065

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    Relation: https://www.ped-perinatology.ru/jour/article/view/1770/1336; Bockenhauer D., Zieg J. Electrolyte disorders. Clin Perinatol 2014; 41(3): 575–590. DOI:10.1016/j.clp.2014.05.007; Прометной Д.В., Александрович Ю.С., Пшениснов К.В. Перегрузка жидкостью как предиктор летального исхода у детей в критическом состоянии. Общая реаниматология 2019; 15(1): 12–26. DOI:10.15360/1813–9779–2019–1–12–26; Тепаев Р.Ф. Гипонатриемия у детей. В фокусе — неврологические осложнения. Педиатрическая фармакология 2011; 8 (4): 69–75.; Кирилочев О.К, Белопасов В.В., Тарасова З.Г. Неврологические исходы у детей, перенесших синдром полиорганной недостаточности в неонатальном периоде. Лечащий врач 2019; 5: 26–29.; Иванов Д.О., Мавропуло Т.К., Сурков Д.Н. Практические аспекты водно-электролитных и эндокринных нарушений у детей раннего возраста. Под ред. Д.О. Иванова СПб: Информ-Навигатор, 2014; 368.; Оу В., Гиняр Ж.-П., Баумгарт Ш. Нефрология и водноэлектролитный обмен. Проблемы и противоречия в неонатологии. Под ред. Р.А. Полина; пер. с англ. под ред. О.Л. Чугуновой. М.: Логосфера, 2015; 344.; Nagelhus E.A., Ottersen O.P. Physiological roles of aquaporin-4 in brain. Physiol Rev 2013; 93(4): 1543–1562. DOI:10.1152/physrev.00011.2013; Кеттайл В.М., Арки Р.А. Патофизиология эндокринной системы. Пер. с англ. М.: БИНОМ, 2016; 336.; Шейман Д.А. Патофизиология почки. Пер. с англ. М.: БИНОМ, 2019; 190.; Шанин В.Ю. Патофизиология критических состояний. СПб.: Элби-СПб., 2003; 436.; Бер М., Фротшер М. Топический диагноз в неврологии по Петеру Дуусу: Анатомия, физиология, клиника. Пер. с англ.; под ред. О.С. Левина М.: Практическая медицина, 2014; 584.; Zieg J. Pathophysiology of Hyponatremia in Children. Front Pediatr 2017; 5: 213. DOI:10.3389/fped.2017.00213; Jung H.J., Kwon T.H. Molecular mechanisms regulating aquaporin-2 in kidney collecting duct. Am J Physiol Renal Physiol 2016; 311(6): F1318–F1328. DOI:10.1152/ajprenal.00485.2016; Suarez-Rivera M., Bonilla-Felix M. Fluid and electrolyte disorders in the newborn: sodium and potassium. Curr Pediatr Rev 2014; 10(2):115–122. DOI:10.2174/157339631002140513102053; Fu S., Ping P., Wang F., Luo L. Synthesis, secretion, function, metabolism and application of natriuretic peptides in heart failure. J Biol Eng 2018; 12: 2. DOI:10.1186/s13036–017–0093–0; Mir T.S., Laux R., Hellwege H.H., Liedke B., Heinze C., von Buelow H. et al. Plasma concentrations of aminoterminal pro atrial natriuretic peptide and aminoterminal pro brain natriuretic peptide in healthy neonates: marked and rapid increase after birth. Pediatrics 2003; 112(4): 896–899. DOI:10.1542/peds.112.4.896; Porzionato A., Macchi V., Rucinski M., Malendowicz L.K., De Caro R. Natriuretic peptides in the regulation of the hypothalamic-pituitary-adrenal axis. Int Rev Cell Mol Biol 2010; 280: 1–39. 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Inappropriate Antidiuretic Hormone Secretion and Cerebral Salt-Wasting Syndromes in Neurological Patients. Front Neurosci 2019; 13: 1170. DOI:10.3389/fnins.2019.01170; Cuesta M., Hannon M.J., Thompson C.J. Diagnosis and treatment of hyponatraemia in neurosurgical patients. Endocrinol Nutr 2016; 63(5): 230–238. English, Spanish. DOI:10.1016/j.endonu.2015.12.007; Yuen K.C.J., Ajmal A., Correa R., Little A.S. Sodium Perturbations After Pituitary Surgery. Neurosurg Clin N Am 2019; 30(4): 515–524. DOI:10.1016/j.nec.2019.05.011; Peri A. Morbidity and Mortality of Hyponatremia. Front Horm Res 2019; 52: 36–48. DOI:10.1159/000493235; Nathan B.R. Cerebral correlates of hyponatremia. Neurocrit Care 2007; 6(1): 72–78. DOI:10.1385/NCC:6:1:72; Von Saint Andre-von Arnim A., Farris R., Roberts J.S., Yanay O., Brogan T.V., Zimmerman J.J. Common endocrine issues in the pediatric intensive care unit. Crit Care Clin 2013; 29(2): 335–358. DOI:10.1016/j.ccc.2012.11.006; Adrogué H.J., Madias N.E. Hyponatremia. N Engl J Med 2000; 342(21): 1581–1589. DOI:10.1056/NEJM200005253422107; Lambeck J., Hieber M., Drebing A., Niesen W.D. Central Pontine Myelinosis and Osmotic Demyelination Syndrome. Dtsch Arztebl Int 2019; 116(35–36): 600– 606. DOI:10.3238/arztebl.2019.0600; Zheng F., Ye X., Shi X., Lin Z., Yang Z., Jiang L. Hyponatremia in Children with Bacterial Meningitis. Front Neurol 2019; 10: 421. DOI:10.3389/fneur.2019.00421; Moritz M.L. Syndrome of Inappropriate Antidiuresis. Pediatr Clin North Am 2019; 66(1): 209–226. DOI:10.1016/j.pcl.2018.09.005; Williams C.N., Riva-Cambrin J., Bratton S.L. Etiology of post-operative hyponatremia following pediatric intracranial tumor surgery. J Neurosurg Pediatr 2016; 17(3): 303–309. DOI:10.3171/2015.7.PEDS15277; Kasim N., Bagga B., Diaz-Thomas A. Intracranial pathologies associated with central diabetes insipidus in infants. J Pediatr Endocrinol Metab 2018; 31(9): 951–958. DOI:10.1515/jpem-2017–0300; Verbalis J.G. The Curious Story of Cerebral Salt Wasting: Fact or Fiction? Clin J Am Soc Nephrol 2020; 15(11): 1666–1668. DOI:10.2215/CJN.00070120; Kamel K.S., Halperin M.L. Use of Urine Electrolytes and Urine Osmolality in the Clinical Diagnosis of Fluid, Electrolytes, and Acid-Base Disorders. Kidney Int Rep 2021; 6(5): 1211–1224. DOI:10.1016/j.ekir.2021.02.003; Lin Yu.L., Hung K.L., Lo C.W. Mycoplasma pneumoniae-associated encephalitis complicated by cerebral salt wasting syndrome. Clin Case Rep 2017; 5(11): 1830–1833. DOI:10.1002/ccr3.1192; Han M.J., Kim S.C., Joo C.U., Kim S.J. Cerebral salt-wasting syndrome in a child with Wernicke encephalopathy treated with fludrocortisone therapy: A case report. Medicine (Baltimore) 2016; 95 (36): e4393. DOI:10.1097/MD.0000000000004393; Caffarelli C., Santamaria F., Mirra V., Bacchini E, Santoro A., Bernasconi S. et al. Advances in paediatrics in 2019: current practices and challenges in allergy, endocrinology, gastroenterology, public health, neonatology, nutrition, nephrology, neurology, respiratory diseases and rheumatic diseases. Ital J Pediatr 2020; 46(1): 89. DOI:10.1186/s13052–020–00853–0; Cizmeci M.N., Kanburoglu M.K., Akelma A.Z., Donmez A., Duymaz S., Tatli M.M. Syndrome of inappropriate antidiuretic hormone secretion refractory to treatment in a newborn with alobar holoprosencephaly. Genet Couns 2013; 24(3): 313–318; Dalton J., Dechert R.E., Sarkar S. Assessment of association between rapid fluctuations in serum sodium and intraventricular hemorrhage in hypernatremic preterm infants. Am J Perinatol 2015; 32(8): 795–802. DOI:10.1055/s-0034–1396691; Jani S., Ariss R., Velumula P., Altinok D., Chawla S. Term Infant with Cerebral Venous Sinus Thrombosis. Case Rep Pediatr 2020; 2020: 8883007. DOI:10.1155/2020/8883007; Ranjan R., Lo S.C., Ly S., Krishnananthan V., Lim A.K.H. Progression to Severe Hypernatremia in Hospitalized General Medicine Inpatients: An Observational Study of Hospital-Acquired Hypernatremia. Medicina (Kaunas) 2020; 56(7): 358. DOI:10.3390/medicina56070358; Patti G., Ibba A., Morana G., Napoli F., Fava D., di Iorgi N. et al. Central diabetes insipidus in children: Diagnosis and management. Best Pract Res Clin Endocrinol Metab 2020; 34(5): 101440. DOI:10.1016/j.beem.2020.101440; Thakore P., Dunbar A.E., Lindsay E.B. Central diabetes insipidus: A rare complication of IVH in a very low birth weight preterm infant. J Neonatal Perinatal Med 2019; 12(1):103–107. DOI:10.3233/NPM-1837; Jones G., Muriello M., Patel A., Logan L. Enteroviral Meningoencephalitis Complicated by Central Diabetes Insipidus in a Neonate: A Case Report and Review of the Literature. J Pediatric Infect Dis Soc 2015; 4(2): 155–158. DOI:10.1093/jpids/pit055; Verbalis J.G. Acquired forms of central diabetes insipidus: Mechanisms of disease. Best Pract Res Clin Endocrinol Metab 2020; 34(5): 101449. DOI:10.1016/j.beem.2020.101449

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    Academic Journal

    Relation: Козлова, М. Д. Выявление электролитных нарушений у пациентов с ожирением и без, с подтвержденной инфекцией COVID-19 [Электронный ресурс] / М. Д. Козлова, В. С. Михельсон // Проблемы и перспективы развития современной медицины : сб. науч. ст. XIX Респ. науч.-практ. конф. с междунар. участием студентов и молодых ученых, Гомель, 5–6 мая 2022 г. : в 6 т. / Гомел. гос. мед. ун-т; редкол. : И. О. Стома [и др. ]. – Гомель : ГомГМУ, 2022. – Т. 6. – С. 167–168. – 1 электрон. опт. диск (CD-ROM). Научный руководитель: к.м.н., доцент С. В. Коньков; http://elib.gsmu.by/handle/GomSMU/12139

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