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  1. Singer M, Deutschman CS, Seymour CW, Shankar-Hari M, Annane D, Bauer M, Bellomo R, Bernard GR, Chiche JD, Coopersmith CM, Hotchkiss RS, Levy MM, Marshall JC, Martin GS, Opal SM, Rubenfeld GD, van der Poll T, Vincent JL, Angus DC. The Third International Consensus Definitions for Sepsis and Septic Shock (Sepsis-3). JAMA. 2016 Feb 23;315(8):801-10. doi: 10.1001/jama.2016.0287.
  2. Schlapbach LJ, Watson RS, Sorce LR, Argent AC, Menon K, Hall MW, Akech S, Albers DJ, Alpern ER, Balamuth F, Bembea M, Biban P, Carrol ED, Chiotos K, Chisti MJ, DeWitt PE, Evans I, Flauzino de Oliveira C, Horvat CM, Inwald D, Ishimine P, Jaramillo-Bustamante JC, Levin M, Lodha R, Martin B, Nadel S, Nakagawa S, Peters MJ, Randolph AG, Ranjit S, Rebull MN, Russell S, Scott HF, de Souza DC, Tissieres P, Weiss SL, Wiens MO, Wynn JL, Kissoon N, Zimmerman JJ, Sanchez-Pinto LN, Bennett TD; Society of Critical Care Medicine Pediatric Sepsis Definition Task Force. International Consensus Criteria for Pediatric Sepsis and Septic Shock. JAMA. 2024 Feb 27;331(8):665-674. doi: 10.1001/jama.2024.0179.
  3. Лекманов А.У., Миронов П.И., Александрович Ю.С., Азовский Д.К., Попов Д.А., Пшениснов К.В., Музуров А.Л., Дегтярева Е.А. Сепсис у детей: федеральные клинические рекомендации (проект) // Российский вестник детской хирургии, анестезиологии и реаниматологии. - 2021. - Т. 11. - №2. - C. 241-292. doi: 10.17816/psaic969
  4. Matics TJ, Sanchez-Pinto LN. Adaptation and Validation of a Pediatric Sequential Organ Failure Assessment Score and Evaluation of the Sepsis-3 Definitions in Critically Ill Children. JAMA Pediatr. 2017;171(10):e172352. doi:10.1001/jamapediatrics.2017.2352
  5. Rudd K.E., Johnson S.C., Agesa K.M., et al. Global, regional, and national sepsis incidence and mortality, 1990–2017: analysis for the Global Burden of Disease Study // The Lancet. 2020. Vol. 396. P. 200–211. DOI: 10.1016/S0140-6736(19)32989-7
  6. Kumar A., Roberts D., Wood K.E., et al. Duration of hypotension before initiation of effective antimicrobial therapy is the critical determinant of survival in human septic shock // Crit Care Med. 2006. Vol. 34. No. 6. P. 1589–1596. DOI: 10.1097/01.CCM.0000217961.75225.E9
  7. Agyeman P.K.A., Schlapbach L.J., Giannoni E., et al. Epidemiology of blood culture-proven bacterial sepsis in children in Switzerland: a population-based cohort study // Lancet Child Adolesc Health. 2017. Vol. 1. No. 2. P. 124–133. DOI: 10.1016/S2352-4642(17)30010-X
  8. Martischang R., Pires D., Masson-Roy S., et al. Promoting and sustaining a historical and global effort to prevent sepsis: the 2018 World Health Organization SAVE LIVES, Clean Your Hands campaign // Crit Care. 2018. Vol. 22. P. 7–9. DOI: 10.1186/s13054-018-2011-3
  9. Hotchkiss R.S., Karl I.E. The pathophysiology and treatment of sepsis // N Engl J Med. 2003. Vol. 348. No. 2. P. 138–150. DOI: 10.1056/NEJMra021333
  10. Legrand M., De Backer D., Dépret F., Ait-Oufella H. Recruiting the microcirculation in septic shock // Ann Intensive Care. 2019. Vol. 9. 102. DOI: 10.1186/s13613-019-0577-9
  11. Sinert R.H. Fast Five Quiz: Refresh Your Knowledge on Key Aspects of Sepsis // Medscape. 2018. Vol. 172. P. 312–314
  12. Schlapbach L.J., Kissoon N. Defining pediatric sepsis // JAMA Pediatr. 2018. Vol. 172. No. 4. P. 312–314. DOI: 10.1001/jamapediatrics.2017.5208
  13. de Souza D.C., Machado F.R. Epidemiology of Pediatric Septic Shock // J Pediatr Intensive Care. 2019. Vol. 8. No. 1. P. 3–10. DOI: 10.1055/s-0038-1676634
  14. Balamuth F., Weiss S.L., Neuman M.I., et al. Pediatric severe sepsis in U.S. children’s hospitals // Pediatr Crit Care Med. 2014. Vol. 15. No. 9. P. 798–805. DOI: 10.1097/PCC.0000000000000225
  15. Weiss S.L., Fitzgerald J.C., Pappachan J., et al. Sepsis Prevalence, Outcomes, and Therapies (SPROUT) Study Investigators and Pediatric Acute Lung Injury and Sepsis Investigators (PALISI) Network. Global epidemiology of pediatric severe sepsis: the sepsis prevalence, outcomes, and therapies study // Am J Respir Crit Care Med. 2015. Vol. 191. No. 10. P. 1147–115. DOI: 10.1164/rccm.201412-2323OC
  16. Boeddha N., Schlapbach N., Driessen G., et al. Mortality and morbidity in community-acquired sepsis in European pediatric intensive care units: a prospective cohort study from the European Childhood Life-threatening Infectious Disease Study (EUCLIDS) // Crit Care. 2018. Vol. 22. P. 143. DOI: 10.1186/s13054-018- 2052-7
  17. Weiss S.L., Peters M.J., Alhazzani W., et al. Surviving sepsis campaign international guidelines for the management of septic shock and sepsis-associated organ dysfunction in children // Intensive Care Med. 2020. Vol. 46. No. 1. P. 10–67. DOI: 10.1007/s00134-019-05878-6
  18. Killien E.Y., Farris R.W.D., Watson R.S., et al. Health-Related Quality of Life Among Survivors of Pediatric Sepsis // Pediatr Crit Care Med. 2019. Vol. 20. No. 6. P. 501–509. DOI: 10.1097/PCC.0000000000001886
  19. WHO releases new International Classification of Diseases (ICD 11). [Internet]. Доступ по ссылке: https://www.who.int/news/item/18-06-2018-who-releases-new-international-classification-of-diseases-(icd-11).
  20. Davis A.L., Carcillo J.A., Aneja R.K., et al. American College of Critical Care Medicine Clinical practice parameters for hemodynamic support of pediatric and neonatal septic shock // Crit Care Med. 2017. Vol. 45. No. 9. P. 1061–1093. DOI: 10.1097/CCM.00do00000000002425
  21. Заболотских, И. Б. Интенсивная терапия: национальное руководство: в 2 т. Т. II. / под ред. И.Б. Заболотских, Д.Н. Проценко. – 2-е изд., перераб. и доп. – М.: ГЭОТАР-Медиа, 2020. – 1072 с. 
  22. Malik A, Taksande A, Meshram R. Pediatric Sequential Organ Assessment Score: A Comprehensive Review of the Prognostic Marker in the Pediatric Intensive Care Unit. Cureus. 2024 May 10;16(5):e60034. doi: 10.7759/cureus.60034.
  23. Трембач А.В., Бгане Н.М., Трембач И.А., Миронов П.И., Александрович Ю.С. Сравнительная оценка прогностической способности шкал органной дисфункции paediatric Sequential Organ Failure Assessment (pSOFA), paediatric logistic organ dysfunction 2 (PELOD 2) и оценочной системы Vasoactive-Inotropic Score (VIS) у детей с септическим шоком: ретроспективное наблюдательное исследование. Вестник интенсивной терапии им. А.И. Салтанова. 2024;1:94–101. https://doi.org/10.21320/1818-474X-2024-1-94-101 
  24. Loberger JM, Aban IB, Prabhakaran P. Exploration of Sepsis-Associated Coagulopathy Severity and Pediatric Septic Shock Outcomes. J Pediatr Intensive Care. 2021 Mar;10(1):38-44. doi: 10.1055/s-0040-1713436. 
  25. Jhang WK, Park SJ. Evaluation of Sepsis-Induced Coagulopathy in Critically Ill Pediatric Patients with Septic Shock. Thromb Haemost. 2021 Apr;121(4):457-463. doi: 10.1055/s-0040-1718736.
  26. Schlapbach L.J., MacLaren G., Festa M., et al. Australian & New Zealand Intensive Care Society (ANZICS) Centre for Outcomes & Resource Evaluation (CORE) and Australian & New Zealand Intensive Care Society (ANZICS) Paediatric Study Group: Prediction of pediatric sepsis mortality within 1h of intensive care admission // Intensive Care Med. 2017. Vol. 43. P. 1085–1096. DOI: 10.1007/s00134-017-4701-8
  27. Schlapbach L.J., MacLaren G., Straney L. Venous vs arterial lactate and 30-day mortality in pediatric sepsis // JAMA Pediatr. 2017. Vol. 171. No. 8. P. 813. DOI: 10.1001/jamapediatrics.2017.1598
  28. Scott H.F., Brou L., Deakyne S.J., et al. Association between early lactate levels and 30-day mortality in clinically suspected sepsis in children // JAMA Pediatr. 2017. Vol. 171. No. 3. P. 249–255. DOI: 10.1001/jamapediatrics.2016.3681
  29. Nguyen H.B., Rivers E.P., Knoblich B.P., et al. Early lactate clearance is associated with improved outcome in severe sepsis and septic shock // Crit Care Med. 2004. Vol. 32. No. 8. P. 1637–1642. DOI: 10.1097/01.CCM.0000132904.35713.A7
  30. Morin L., Ray S., Wilson C., et al. Refractory septic shock in children: a European Society of Paediatric and Neonatal Intensive Care definition. ESPNIC Refractory Septic Shock Definition Taskforce the Infection Systemic Inflammation Sepsis section of ESPNIC // Intensive Care Med. 2016. Vol. 42. No. 12. P. 1948–1957. DOI: 10.1007/s00134-016-4574-2
  31. Gorgis N., Asselin J.M., Fontana C., et al. Evaluation of the association of early elevated lactate with outcomes in children with severe sepsis or septic shock // Pediatr Emerg Care. 2019. Vol. 35. P. 661–665. DOI: 10.1097/PEC.0000000000001021
  32. Bai Z., Zhu X., Li M., et al. Effectiveness of predicting in-hospital mortality in critically ill children by assessing blood lactate levels at admission // BMC Pediatr. 2014. Vol. 14. P. 83. DOI: 10.1186/1471-2431-14-83
  33. Scott H.F., Brou L., Deakyne S.J., et al. Lactate Clearance and Normalization and Prolonged Organ Dysfunction in Pediatric Sepsis // J Pediatr. 2016. Vol. 170. P. 149–55.e1-4. DOI: 10.1016/j.jpeds.2015.11.071 J Pediatr
  34. Bakker J., Maarten W.N., Jansen T.C. Clinical use of lactate monitoring in critically ill patients // Annals of Intensive Care. 2013. Vol. 3. P. 12. DOI: 10.1186/2110-5820-3-12
  35. Mazloom A, Sears SM, Carlton EF, Bates KE, Flori HR. Implementing Pediatric Surviving Sepsis Campaign Guidelines: Improving Compliance With Lactate Measurement in the PICU. Crit Care Explor 2023;5:e0906
  36. Downes K.J., Fitzgerald J.C., Schriver E., et al. Implementation of a pragmatic biomarker-driven algorithm to guide antibiotic use in the pediatric intensive care unit: the Optimizing Antibiotic Strategies in Sepsis (OASIS) II Study // J Pediatr Infect Dis Soc. 2020. Vol. 9. No. 1. P. 36–43. DOI: 10.1093/jpids/piy113
  37. Memar MY, Varshochi M, Shokouhi B, Asgharzadeh M, Kafil HS. Procalcitonin: The marker of pediatric bacterial infection. Biomed Pharmacother. 2017;96:936-943. doi: 10.1016/j.biopha.2017.11.149.
  38. Westwood M, Ramaekers B, Whiting P, Tomini F, Joore M, Armstrong N, Ryder S, Stirk L, Severens J, Kleijnen J. Procalcitonin testing to guide antibiotic therapy for the treatment of sepsis in intensive care settings and for suspected bacterial infection in emergency department settings: a systematic review and cost-effectiveness analysis. Health Technol Assess. 2015 Nov;19(96):v-xxv, 1-236. doi: 10.3310/hta19960
  39. Anugu NR, Khan S. Comparing the Diagnostic Accuracy of Procalcitonin and C-Reactive Protein in Neonatal Sepsis: A Systematic Review. Cureus. 2021 Nov 11;13(11):e19485. doi: 10.7759/cureus.19485
  40. Gonsalves WI, Cornish N, Moore M, et al. Effects of volume and site of blood draw on blood culture results. J Clin Microbiol. 2009;47:3482–3485. DOI: 10.1128/JCM.02107-08
  41. Freedman S.B., Roosevelt G.E. Utility of anaerobic blood cultures in a pediatric emergency department // Pediatr Emerg Care. 2004. Vol. 20. No. 7. P. 433–436. DOI: 10.1097/01.pec.0000132215.57976.99
  42. Woods-Hill CZ, Koontz DW, Voskertchian A, Xie A, Shea J, Miller MR, Fackler JC, Milstone AM; Bright Star Consensus Authorship Group. Consensus Recommendations for Blood Culture Use in Critically Ill Children Using a Modified Delphi Approach. Pediatr Crit Care Med. 2021;22(9):774-784. doi: 10.1097/PCC.0000000000002749.
  43. Попов Д.А., Надточей Е.А., Вострикова Т.Ю., Овсеенко С.Т. Ускоренные методы идентификации положительных гемокультур с применением MALDI-ToF масс-спектрометрии // Клиническая микробиология и антимикробная химиотерапия. 2016. Т. 18, № 4. С. 296–307.
  44. Bjorklund A, Resch J, Slusher T. Pediatric Shock Review. Pediatr Rev. 2023 Oct 1;44(10):551-565. doi: 10.1542/pir.2022-005630.
  45. NICE. Suspected sepsis: recognition, diagnosis and early management // https://www.ncbi.nlm.nih.gov/books/NBK553314/
  46. Bedetti L. et al. Lumbar Puncture and Meningitis in Infants with Proven Early- or Late-Onset Sepsis: An Italian Prospective Multicenter Observational Study // Microorganisms. 2023. Vol. 11, № 6.
  47. Bedetti L. et al. Safety and Success of Lumbar Puncture in Young Infants: A Prospective Observational Study // Front Pediatr. 2021. Vol. 9.
  48. Singh Y, Villaescusa JU, da Cruz EM, Tibby SM, Bottari G, Saxena R, Guillén M, Herce JL, Di Nardo M, Cecchetti C, Brierley J, de Boode W, Lemson J. Recommendations for hemodynamic monitoring for critically ill children-expert consensus statement issued by the cardiovascular dynamics section of the European Society of Paediatric and Neonatal Intensive Care (ESPNIC). Crit Care. 2020 Oct 22;24(1):620. doi: 10.1186/s13054-020-03326-2.
  49. El-Nawawy AA, Abdelmohsen AM, Hassouna HM. Role of echocardiography in reducing shock reversal time in pediatric septic shock: a randomized controlled trial. J Pediatr (Rio J). 2018 Jan-Feb;94(1):31-39. doi: 10.1016/j.jped.2017.02.005. 
  50. Miyagi SJ, Lam E, Tang Girdwood S. Partnering with Clinical Pharmacologists to Improve Medication Use in Children. J Pediatr. 2020 Dec;227:5-8. doi: 10.1016/j.jpeds.2020.03.061.
  51. Loni, Ramaning; Charki, Siddu1; Kulkarni, Trimal1; Kamale, Mahesh2; Bidari, Laxman H2. Utility of a clinical pharmacist in the pediatric intensive care unit to identify and prevent medication errors. Journal of Pediatric Critical Care 7(5):p 249-254, Sep–Oct 2020. | DOI: 10.4103/JPCC.JPCC_68_20
  52. Blowey B, Resendiz KV, Grachen A, Srinivasan V. Prevention is better than cure: The vital role of the clinical pharmacist in the pediatric intensive care unit to prevent medication errors. J Pediatr Crit Care 2020;7:235-6.
  53. Schlapbach L.J., Weiss S.L., Wolf J. Reducing collateral damage from mandates for time to antibiotics in pediatric sepsis-primum non nocere // JAMA Pediatr. 2019. Vol. 173. No. 5. P. 409–410. DOI: 10.1001/jamapediatrics.2019.0174
  54. Tuuri R.E., Gehrig M.G., Busch C.E., et al. «Beat the Shock Clock»: An interprofessional team improves pediatric septic shock care // Clin Pediatr (Phila). 2016. Vol. 55. P. 626–638. DOI: 10.1177/0009922815601984
  55. Evans I.V.R., Phillips G.S., Alpern E.R. et al. Association between the New York sepsis care mandate and in-hospital mortality for pediatric sepsis. JAMA. 2018;320(4):358-367. doi:10.1001/jama.2018.9071
  56. Weiss S.L., Fitzgerald J.C., Balamuth F., et al. Delayed antimicrobial therapy increases mortality and organ dysfunction duration in pediatric sepsis // Crit Care Med. 2014. Vol. 42. No. 11. P. 2409–2417. DOI: 10.1097/CCM.0000000000000509
  57. Сухорукова М.В., Эйдельштейн М.В., Склеенова Е.Ю. и др. Антибиотикорезистентность нозокомиальных штаммов Enterobacterales в стационарах России: результаты многоцентрового эпидемиологического исследования МАРАФОН 2015–2016 // Клиническая микробиология и антимикробная химиотерапия. 2019. Т. 21, № 2. С. 147–159.
  58. Белобородов В.Б., Голощапов О.В., Гусаров В.Г. и др. Методические рекомендации Российской некоммерческой общественной организации «Ассоциация анестезиологов-реаниматологов», Межрегиональной общественной организации «Альянс клинических химиотерапевтов и микробиологов», Межрегиональной ассоциации по клинической микробиологии и антимикробной химиотерапии (МАКМАХ), общественной организации «Российский Сепсис Форум» «Диагностика и антимикробная терапия инфекций, вызванных полирезистентными штаммами микроорганизмов» (обновление 2022 г.) Вестник анестезиологии и реаниматологии. 2022;19(2):84-114. DOI: 10.21292/2078-5658-2022-19-2-84-114.
  59. Dou W, Liu X, An P, Zuo W, Zhang B. Real-world safety profile of tetracyclines in children younger than 8 years old: an analysis of FAERS database and review of case report. Expert Opin Drug Saf. 2024;23(7):885-892
  60. Iosifidis E, Violaki A, Michalopoulou E, Volakli E, Diamanti E, Koliouskas D, Antachopoulos C, Drossou-Agakidou V, Sdougka M, Roilides E. Use of Tigecycline in Pediatric Patients With Infections Predominantly Due to Extensively Drug-Resistant Gram-Negative Bacteria. J Pediatric Infect Dis Soc. 2017;6(2):123-128
  61. Pacifici G.M. Clinical Pharmacology of Tigecycline in Children. Ann Clin Pharmacol Toxicol. 2021. Vol. 2. P. 033-038.
  62. Godbout E.J., Pakyz A.L., Markley J.D., et al. Pediatric antimicrobial stewardship: State of the art // Curr Infect Dis Rep. 2018. Vol. 20. P. 39. DOI: 10.1007/s11908-018-0644-7
  63. Weiss CH, Persell SD, Wunderink RG, et al. Empiric antibiotic, mechanical ventilation, and central venous catheter duration as potential factors mediating the effect of a checklist prompting intervention on mortality: An exploratory analysis. BMC Health Serv Res. 2012;12:198. DOI: 10.1186/1472-6963-12-198
  64. Weiss CH, Moazed F, McEvoy CA, et al. Prompting physicians to address a daily checklist and process of care and clinical outcomes: A single-site study. Am J Respir Crit Care Med. 2011;184(6):680–686. DOI: 10.1164/rccm.201101-0037OC
  65. Public Health England: Start Smart - Then Focus. 2015. United Kingdom, Public Health England [Internet]. [Cited 15 March 2021] Available from: https://www.gov.uk/government/publications/ antimicrobial-stewardship-start-smart-then-focus#history.
  66. Lehrnbecher T., Robinson P., Fisher B., et al. Guideline for the management of fever and neutropenia in children with cancer and hematopoietic stem-cell transplantation recipients: 2017 update // J Clin Oncol. 2017. Vol. 35. No. 18. P. 2082–2094. DOI: 10.1200/JCO.2016.71.7017
  67. Santhanam I., Sangareddi S., Venkataraman S., et al. A prospective randomized controlled study of two fluid regimens in the initial management of septic shock in the emergency department // Pediatr Emerg Care. 2008. Vol. 24. No. 10. P. 647–655. DOI: 10.1097/PEC.0b013e31818844cf.
  68. Inwald D.P., Canter R., Woolfall K., et al. Restricted fluid bolus volume in early septic shock: Results of the Fluids in Shock pilot trial // Arch Dis Child. 2019. Vol. 104. No. 5. P. 426–431. DOI: 10.1136/archdischild-2018-314924
  69. Sankar J., Javed M.D., Sankar M., et al. Fluid bolus over 15-20 versus 5-10 minutes each in the first hour of resuscitation in children with septic shock: A randomized controlled trial // Pediatr Crit Care Med. 2017. Vol. 18. No. 10. e435–e445. DOI: 10.1097/PCC.0000000000001269
  70. Arikan A.A.A., Zappitelli M., Goldstein S.L.L. et al. Fluid overload is associated with impaired oxygenation and morbidity in critically ill children // Pediatric Critical Care Medicine. 2012. № 3 (13). P. 253–258.
  71. Alobaidi R., Morgan C., Basu R.K., et al. Association between fluid balance and outcomes in critically ill children: A systematic review and meta-analysis // JAMA Pediatrics. 2018. № 3 (172). P. 257–268.
  72. Han Y.Y., Carcillo J.A., Dragotta M.A., et al. Early Reversal of Pediatric-Neonatal Septic Shock by Community Physicians Is Associated With Improved Outcome // PEDIATRICS. 2003. № 4 (112). P. 793–799.
  73. Samransamruajkit R., Uppala R., Pongsanon K., et al. Clinical outcomes after utilizing surviving sepsis campaign in children with septic shock and prognostic value of initial plasma NT-proBNP // Indian Journal of Critical Care Medicine. 2014. № 2 (18). P. 70–76.
  74. Chen J., Li X., Bai Z., et al. Association of fluid accumulation with clinical outcomes in critically ill children with severe sepsis // PLoS ONE. 2016. № 7 (11). P. 1–17.
  75. Fernández-Sarmiento J., Sierra-Zuñiga M.F., Salazar González M.P., et al. Association between fluid overload and mortality in children with sepsis: A systematic review and meta-analysis // BMJ Paediatrics Open. 2023. № 1 (7).
  76. Emrath E.T., Fortenberry J.D., Travers C., et al. Resuscitation with Balanced Fluids Is Associated with Improved Survival in Pediatric Severe Sepsis Lippincott Williams and Wilkins, 2017. P.1177–1183
  77. Weiss S.L., Keele L., Balamuth F., et al. Crystalloid Fluid Choice and Clinical Outcomes in Pediatric Sepsis: A Matched Retrospective Cohort Study // The Journal of Pediatrics. 2017. (182). P. 304-310.e10.
  78. Voorde P. Van de, Turner N.M., Djakow J., et al. European Resuscitation Council Guidelines 2021: Paediatric Life Support // Resuscitation. 2021. (161). P. 327–387.
  79. Lehr A.R., Rached-D’astous S., Barrowman N., et al. Balanced Versus Unbalanced Fluid in Critically Ill Children: Systematic Review and Meta-Analysis∗ // Pediatric Critical Care Medicine. 2022. № 3 (23). P. 181–191.
  80. Sankar J., Muralidharan J., Lalitha A. V., et al. Multiple Electrolytes Solution Versus Saline as Bolus Fluid for Resuscitation in Pediatric Septic Shock: A Multicenter Randomized Clinical Trial // Critical Care Medicine. 2023. № 11 (51). P. 1449–1460.
  81. Maitland K., Kiguli S., Opoka R.O., et al. Mortality after Fluid Bolus in African Children with Severe Infection // New England Journal of Medicine. 2011. № 26 (364). P. 2483–2495.
  82. Qian S.Y., Liu J. Relationship between serum albumin level and prognosis in children with sepsis, severe sepsis or septic shock. // Zhonghua Er Ke Za Zhi. 2012. Vol. 50. No.3. P. 184-187.
  83. Horowitz I.N., Tai K. Hypoalbuminemia in critically ill children. // Arch Pediatr Adolesc Med. 2007. Vol.161. No.11. P.1048-1052. doi: 10.1001/archpedi.161.11.1048.
  84. Singh Y, Villaescusa JU, da Cruz EM, Tibby SM, Bottari G, Saxena R, Guillén M, Herce JL, Di Nardo M, Cecchetti C, Brierley J, de Boode W, Lemson J. Recommendations for hemodynamic monitoring for critically ill children-expert consensus statement issued by the cardiovascular dynamics section of the European Society of Paediatric and Neonatal Intensive Care (ESPNIC). Crit Care. 2020 Oct 22;24(1):620. doi: 10.1186/s13054-020-03326-2.
  85. Pollack M.M., Fields A.I., Ruttimann U.E. Distributions of cardiopulmonary variables in pediatric survivors and nonsurvivors of septic shock // Critical Care Medicine. 1985. Т. 13. № 6. P.454–459
  86. Ranjit S., Natraj R., Kandath S.K., et al. Early norepinephrine decreases fluid and ventilatory requirements in pediatric vasodilatory septic shock // Indian J Crit Care Med. 2016. Vol. 20. No. 10. P. 561–569. DOI: 10.4103/0972-5229.192036
  87. Iramain R, Ortiz J, Jara A, et al. (October 07, 2022) Fluid Resuscitation and Inotropic Support in Patients With Septic Shock Treated in Pediatric Emergency Department: An Open-Label Trial. Cureus 14(10): e30029. DOI 10.7759/cureus.3002
  88. Karanvir, Gupta S, Kumar V. Practices of Initiation of Vasoactive Drugs in Relation to Resuscitation Fluids in Children with Septic Shock: A Prospective Observational Study. Indian J Crit Care Med 2021;25(8):928–933  DOI:0.5005/jp-journals-10071-23954.
  89. Ventura A.M., Shieh H.H., Bousso A., Góes P.F., de Cássia F.O. Fernandes I., de Souza D.C., Paulo R.L., Chagas F., Gilio A.E. Double-blind prospective randomized controlled trial of dopamine versus epinephrine as first-line vasoactive drugs in pediatric septic shock. Crit Care Med. 2015;43(11):2292-302. DOI: 10.1097/CCM.0000000000001260.
  90. Walsh B.K., Smallwood C.D. Pediatric Oxygen Therapy: A Review and Update // Respir Care. 2017. Vol. 62. No. 6. P. 645–661. DOI: 10.4187/respcare.05245
  91. Aubier M., Viires N., Syllie G., et al. Respiratory muscle contribution to lactic acidosis in low cardiac output // Am Rev Respir Dis. 1982. Vol. 126. No. 4. P. 648–652. DOI: 10.1164/arrd.1982.126.4.648
  92. Cheifetz I.M. Invasive and noninvasive pediatric mechanical ventilation // Respir Care. 2003. Vol. 48. No. 4. P. 442–453.
  93. Pham T., Brochard L.J., Slutsky A.S. Mechanical ventilation: state of the art // Mayo Clin Proc. 2017. Vol. 92. No. 9. P. 1382–1400. DOI: 10.1016/j.mayocp.2017.05.004
  94. Ghuman A.K., Newth C.J., Khemani R.G. The association between the end tidal alveolar dead space fraction and mortality in pediatric acute hypoxemic respiratory failure // Pediatr Crit Care Med. 2012. Vol. 13. No. 1. P. 11–15. DOI: 10.1097/PCC.0b013e3182192c42
  95. Khemani R.G., Smith L., Lopez-Fernandez Y.M., et al. Paediatric acute respiratory distress syndrome incidence and epidemiology (PARDIE): an international, observational study // Lancet Respir Med. 2019. Vol. 7. No. 2. P. 115–128. DOI: 10.1016/S2213-2600(18)30344-8
  96. Jones P., Dauger S., Denjoy I., et al. The effect of atropine on rhythm and conduction disturbances during 322 critical care intubations // Pediatr Crit Care Med. 2013. Vol. 14. No. 9. P. e289–e297. DOI: 10.1097/PCC.0b013e31828a8624
  97. Jabre P., Avenel A., Combes X., et al: Morbidity related to emergency endotracheal intubation–a substudy of the KETAmine SEDation trial // Resuscitation. 2011. Vol. 82. No. 5. P. 517–522. DOI: 10.1016/j.resuscitation.2011.01.015
  98. Abadesso C., Nunes P., Silvestre C., et al. Non-invasive ventilation in acute respiratory failure in children // Pediatr Rep. 2012. Vol. 4. No. 2. P. e16. DOI: 10.4081/pr.2012.e16
  99. Piastra M., De Luca D., Pietrini D., et al. Noninvasive pressure support ventilation in immunocompromised children with ARDS: a feasibility study // Intensive Care Med. 2009. Vol. 35. P. 1420–1427. DOI: 10.1007/s00134-009-1558-5
  100. Piastra M., De Luca D., Marzano L., et al. The number of failing organs predicts non-invasive ventilation failure in children with ALI/ARDS // Intensive Care Med. 2011. Vol. 37. P. 1510–1516. DOI: 10.1007/s00134-011-2308-z
  101. Emeriaud G, López-Fernández YM, Iyer NP, Bembea MM, Agulnik A, Barbaro RP, Baudin F, Bhalla A, Brunow de Carvalho W, Carroll CL, Cheifetz IM, Chisti MJ, Cruces P, Curley MAQ, Dahmer MK, Dalton HJ, Erickson SJ, Essouri S, Fernández A, Flori HR, Grunwell JR, Jouvet P, Killien EY, Kneyber MCJ, Kudchadkar SR, Korang SK, Lee JH, Macrae DJ, Maddux A, Modesto I Alapont V, Morrow BM, Nadkarni VM, Napolitano N, Newth CJL, Pons-Odena M, Quasney MW, Rajapreyar P, Rambaud J, Randolph AG, Rimensberger P, Rowan CM, Sanchez-Pinto LN, Sapru A, Sauthier M, Shein SL, Smith LS, Steffen K, Takeuchi M, Thomas NJ, Tse SM, Valentine S, Ward S, Watson RS, Yehya N, Zimmerman JJ, Khemani RG; Second Pediatric Acute Lung Injury Consensus Conference (PALICC-2) Group on behalf of the Pediatric Acute Lung Injury and Sepsis Investigators (PALISI) Network. Executive Summary of the Second International Guidelines for the Diagnosis and Management of Pediatric Acute Respiratory Distress Syndrome (PALICC-2). Pediatr Crit Care Med. 2023 Feb 1;24(2):143-168. doi: 10.1097/PCC.0000000000003147. 
  102. Khemani R.G., Smith L.S., Zimmerman J.J., et al. Pediatric acute respiratory distress syndrome: definition, incidence, and epidemiology: proceedings from the Pediatric Acute Lung Injury Consensus Conference // Pediatr Crit Care Med. 2015. Vol. 5. No. 1. P. S23–40. DOI: 10.1097/PCC.0000000000000432
  103. Kneyber M.C.J., de Luca D., Calderini E., et al. Recommendations for mechanical ventilation of critically ill children from the Paediatric Mechanical Ventilation Consensus Conference (PEMVECC) // Intensive Care Med. 2017. Vol. 43. No. 12. P. 1764–1780. DOI: 10.1007/s00134-017-4920-z
  104. Александрович Ю.С., Пшениснов К.В. Респираторная поддержка при критических состояниях в педиатрии и неонатологии (руководство для врачей). М.: ГЭОТАР-Медиа, 2020. 272 с.
  105. Newth C.J., Rachman B., Patel N., et al. The use of cuffed versus uncuffed endotracheal tubes in pediatric intensive care // J Pediatr. 2004. Vol. 144. No. 3. P. 333–337. DOI: 10.1016/j.jpeds.2003.12.018
  106. Weiss M., Dullenkopf A., Fischer J.E., et al. European Paediatric Endotracheal Intubation Study Group: Prospective randomized controlled multi-centre trial of cuffed or uncuffed endotracheal tubes in small children // Br J Anaesth. 2009. Vol. 103. No. 6. P. 867–873. DOI: 10.1093/bja/aep290
  107. Topjian A.A., Raymond T.T., Atkins D., et al. Part 4: Pediatric Basic and Advanced Life Support: 2020 American Heart Association Guidelines for Cardiopulmonary Resuscitation and Emergency Cardiovascular Care // Circulation. 2020. Vol. 142. No. 16, suppl 2. P. S469–S523. DOI: 10.1161/CIR.0000000000000918
  108. Abdelsalam M., Cheifetz I.M. Goal-directed therapy for severely hypoxic patients with acute respiratory distress syndrome: Permissive hypoxemia // Respir Care. 2010. Vol. 55. No. 11. P. 1483–1490
  109. Randolph A.G. Management of acute lung injury and acute respiratory distress syndrome in children // Crit Care Med. 2009. Vol. 37. No. 8. P. 2448–2454. DOI: 10.1097/CCM.0b013e3181aee5dd
  110. Santini A., Protti A., Langer T., et al. Prone position ameliorates lung elastance and increases functional residual capacity independently from lung recruitment // Int Care Med Exp. 2015. Vol. 3. P. 55. DOI: 10.1186/s40635-015-0055-0
  111. Rudolph MW, Kneyber MCJ, Asaro LA, Cheifetz IM, Wypij D, Curley MAQ; for the Randomized Evaluation of Sedation Titration for Respiratory Failure (RESTORE) Study Investigators. Early neuromuscular blockade in moderate-to-severe pediatric acute respiratory distress syndrome. Crit Care Med. 2022. Vol. 50, No 5. P. 445-e457. DOI: 10.1097/CCM.0000000000005426. 
  112. Mikhailov T.A., Kuhn E.M., Manzi J., et al. Early enteral nutrition is associated with lower mortality in critically ill children // JPEN J Parenter Enteral Nutr. 2014. Vol. 38. No. 4. P. 459–466. DOI: 10.1177/0148607113517903
  113. Prakash V., Parameswaran N., Biswal N. Early versus late enteral feeding in critically ill children: a randomized controlled trial // Int Care Med. 2016. Vol. 42. P. 481–482. DOI: 10.1007/s00134-015-4176-4
  114. Mehta N.M., Bechard L.J., Zurakowski D., et al. Adequate enteral protein intake is inversely associated with 60-d mortality in critically ill children: a multicenter, prospective, cohort study // Am J Clin Nutr. 2015. Vol. 102. No. 1. P. 199–206. DOI: 10.3945/ajcn.114.104893
  115. Jotterand C.C., Laure D.J., Longchamp D., et al. How much protein and energy are needed to equilibrate nitrogen and energy balances in ventilated critically ill children? // Clin Nutr. 2016. Vol. 35. No. 2. P. 460–467. DOI: 10.1016/j.clnu.2015.03.015
  116. Manaf A.Z., Kassim N., Hamzaid N.H., Razali N.H. Delivery of enteral nutrition for critically ill children // Nutr Diet. 2013. Vol. 70. P. 120–125. DOI: 10.1111/1747-0080.12007
  117. Bagci S., Keles E., Girgin F., et al. Early initiated feeding versus early reached target enteral nutrition in critically ill children: an observational study in pediatric intensive care units in Turkey // J Paediatr Child Health. 2018. Vol. 54. P. 480–486. DOI: 10.1111/jpc.13810
  118. Mikhailov T.A., Gertz S.J., Kuhn E.M., et al. Early enteral nutrition is associated with signifcantly lower hospital charges in critically ill children // JPEN J Parenter Enter Nutr. 2018. Vol. 42. P. 920–925. DOI: 10.1002/jpen.1025
  119. Carpenito K.R., Prusinski R., Kirchner K., et al. Results of a feeding protocol in patients undergoing the hybrid procedure // Pediatr Cardiol. 2016. Vol. 37. P. 852–859. DOI: 10.1007/s00246-016-1359-x
  120. Лекманов А.У., Ерпулева Ю.В. Раннее энтеральное питание при критических состояниях у детей // Вестник интенсивной терапии. 2012. № 3. С. 53–55.
  121. Wong J.J., Han W.M., Sultana R., et al. Nutrition delivery affects outcomes in pediatric acute respiratory distress syndrome // JPEN J Parenter Enteral Nutr. 2017. Vol. 41. No. 6. P. 1007–1013. DOI: 10.1177/0148607116637937
  122. Rajalakshmi I., Arun B. What do we know about optimal nutritional strategies in children with pediatric acute respiratory distress syndrome? // Ann Transl Med. 2019. Vol. 7. No. 19. P. 510–518. DOI: 10.21037/atm.2019.08.25
  123. Panchal A.K., Manzi J., Connolly S., et al. Safety of enteral feedings in critically ill children receiving vasoactive agents // JPEN J Parenter Enter Nutr. 2016. Vol. 40. No. 2. P. 236–241. DOI: 10.1177/0148607114546533
  124. King W., Petrillo T., Pettignano R. Enteral nutrition and cardiovascular medications in the pediatric intensive care unit // JPEN J Parenter Enteral Nutr. 2004. Vol. 28. No. 5. P. 334–338. DOI: 10.1177/0148607104028005334
  125. López-Herce J., Santiago M.J., Sánchez C., et al. Risk factors for gastrointestinal complications in critically ill children with transpyloric enteral nutrition // Eur J Clin Nutr. 2008. Vol. 62. P. 395–400. DOI: 10.1038/sj.ejcn.1602710
  126. Mehta N.M. Feeding the Gut During Critical Illness – It Is About Time // JPEN J Parenter Enteral Nutr May. 2014. Vol. 38. No. 4. P. 410–414. DOI: 10.1177/0148607114522489
  127. Шмаков А.Н., Александрович Ю.С., Степаненко С.М. Нутритивная терапия детей в критических состояниях // Анестезиология и реаниматология. 2017. Т. 62, № 1. С. 14–23. DOI: 10.18821/0201-7563-2017-62-1-14-23
  128. Meyer R., Harrison S., Sargent S., et al: The impact of enteral feeding protocols on nutritional support in critically ill children // J Hum Nutr Diet. 2009. Vol. 22. No. 5. P. 428–436. DOI: 10.1111/j.1365-277X.2009.00994.x
  129. Petrillo-Albarano T., Pettignano R., Asfaw M., et al. Use of a feeding protocol to improve nutritional support through early, aggressive, enteral nutrition in the pediatric intensive care unit // Pediatr Crit Care Med. 2006. Vol. 7. No. 4. P. 340–344. DOI: 10.1097/01.PCC.0000225371.10446.8F
  130. Yoshimura S., Miyazu M., Yoshizawa S., et al. Efficacy of an enteral feeding protocol for providing nutritional support after paediatric cardiac surgery // Anaesth Intensive Care. 2015. Vol. 43. No. 5. P. 587–593. DOI: 10.1177/0310057X1504300506
  131. Hamilton S., McAleer D.M., Ariagno K., et al. A stepwise enteral nutrition algorithm for critically ill children helps achieve nutrient delivery goals // Pediatr Crit Care Med. 2014. Vol. 15. No. 7. P. 583–589. DOI: 10.1097/PCC.0000000000000179
  132. López-Herce J., Mencía S., Sánchez C., et al. Postpyloric enteral nutrition in the critically ill child with shock: a prospective observational study // Nutr J. 2008. Vol. 7. P. 6. DOI: 10.1186/1475-2891-7-6
  133. Sonmez D.D., Yildiz S. Effect of two different feeding methods on preventing ventilator associated pneumonia in the pediatric intensive care unit (PICU): a randomised controlled study // Aust Crit Care. 2016. Vol. 29. P. 139–145. DOI: 10.1016/j.aucc.2015.11.001
  134. Лекманов А.У., Рыжов Е.А., Ерпулева Ю.В., Россаус П.А. Опыт энтерального питания через еюнальный зонд у детей в критических состояниях // Анестезиология и реаниматология. 2012. № 1. С. 41–43.
  135. Meert K.L., Daphtary K.M., Metheny N.A. Gastric vs small-bowel feeding in critically ill children receiving mechanical ventilation: a randomized controlled trial // Chest. 2004. Vol. 126. No. 3. P. 872–878. DOI: 10.1378/chest.126.3.872
  136. Kamat P., Favaloro-Sabatier J., Rogers K., Stockwell J.A. Use of methylene blue spectrophotometry to detect subclinical aspiration in enterally fed intubated pediatric patients // Pediatr Crit Care Med. 2008. Vol. 9. No. 3. P. 299–303. DOI: 10.1097/PCC.0b013e318172d500
  137. Mehta N.M., Bechard L.J., Zurakowski D., et al. Heyland Adequate enteral protein intake is inversely associated with 60-d mortality in critically ill children: a multicenter, prospective, cohort study // Am J Clin Nutr. 2015. Vol. 102. No. 1. P. 199–206.
  138. Fivez T., Kerklaan D., Mesotten D., et al. Early versus late parenteral nutrition in critically ill children // N Engl J Med. 2016. Vol. 374. P. 1111–1122. DOI: 10.1056/NEJMoa1514762
  139. Koletzko B., Bhatia J., Bhutta Z., et al. Pediatric Nutrition in Practice, 2nd, revised edition. Basel: Karger, 2015. DOI: 10.1159/isbn.978-3-318-02691-7
  140. Koletzko B., Goulet O., Hunt J., et al. 1. Guidelines on Paediatric Parenteral Nutrition of the European Society of Paediatric Gastroenterology, Hepatology and Nutrition (ESPGHAN) and the European Society for Clinical Nutrition and Metabolism (ESPEN), supported by the European Society of Paediatric Research (ESPR) // J Pediatr Gastroenterol Nutr. 2005. Vol. 41. No. 2. P. S1–S87
  141. Koletzko B., Goulet O., Sobotka L., ed. Nutritional support in infants, children and adolescents // Basics in Clinical Nutrition, ed 4. Prague: Gelén, 2011. 625–653 pp.
  142. Ista E., Joosten K. Nutritional assessment and enteral support of critically ill children // Crit Care Nurs Clin North Am. 2005. Vol. 17. No. 4. P. 385–393. DOI: 10.1016/j.ccell.2005.07.011
  143. de Menezes F.S., Leite H.P., Nogueira P.C. What are the factors that influence the attainment of satisfactory energy intake in pediatric intensive care unit patients receiving enteral or parenteral nutrition? // Nutrition. 2013. Vol. 29. No. 1. P. 76–80. DOI: 10.1016/j.nut.2012.04.003
  144. Nilesh M.M. Parenteral Nutrition in Critically Ill Children // N Engl J Med. 2016. Vol. 374. P. 1190–1192. DOI: 10.1056/NEJMe1601140
  145. Лекманов А.У., Ерпулева Ю.В., Суворов С.Г. Практика клинического питания в детских отделениях реанимации и интенсивной терапии: результаты исследования НутриПед-2015 // Анестезиология и реаниматология. 2016. Т.61, № 5. С. 376–380. DOI: 10.18821/0201-7563-2016-61-5-376-380
  146. Goulet O., Jochum F., Koletzko B. Early or Late Parenteral Nutrition in Critically Ill Children: Practical Implications of the PEPaNIC Trial // Ann Nutr Metab. 2017. Vol. 70. P. 34–38. DOI: 10.1159/000455336
  147. Koletzko B., Goulet O., Jochum F., Shamir R. Use of parenteral nutrition in the pediatric ICU: should we panic because of PEPaNIC? // Curr Opin Clin Nutr Metab Care. 2017. Vol. 20. No. 3. P. 201–203. DOI: 10.1097/MCO.0000000000000371
  148. Peters M.J., Argent A., Festa M., et al. The intensive care medicine clinical research agenda in paediatrics // Int Care Med. 2017. Vol. 43. No. 9. P. 1210–1224. DOI: 10.1007/s00134-017-4729-9
  149. Nilesh M.M., Skillman H.E., Irving S.Y., et al. Goday, and Carol Braunschweig Guidelines for the Provision and Assessment of Nutrition Support Therapy in the Pediatric Critically Ill Patient: Society of Critical Care Medicine and American Society for Parenteral and Enteral Nutrition // JPEN J Parenter Enteral Nutr. 2017. Vol. 41. No. 5. P. 706–742. DOI: 10.1177/0148607117711387
  150. Sutherland S.M., Goldstein S.L., Alexander S.R. The prospective pediatric continuous renal replacement therapy (ppCRRT) registry: a critical appraisal. Pediatr Nephrol. 2014;29(11):2069-76. doi: 10.1007/s00467-013-2594-5.
  151. Guzzo I, de Galasso L, Mir S, Bulut IK, Jankauskiene A, Burokiene V, Cvetkovic M, Kostic M, Bayazit AK, Yildizdas D, Schmitt CP, Paglialonga F, Montini G, Yilmaz E, Oh J, Weber L, Taylan C, Hayes W, Shroff R, Vidal E, Murer L, Mencarelli F, Pasini A, Teixeira A, Afonso AC, Drozdz D, Schaefer F, Picca S; ESCAPE Network. Acute dialysis in children: results of a European survey. J Nephrol. 2019;32(3):445-451. doi: 10.1007/s40620-019-00606-1. 
  152. Tomar A, Kumar V, Saha A. Peritoneal dialysis in children with sepsis-associated AKI (SA-AKI): an experience in a low- to middle-income country. Paediatr Int Child Health. 2021 May;41(2):137-144. doi: 10.1080/20469047.2021.1874201.
  153. Nourse P, Cullis B, Finkelstein F, Numanoglu A, Warady B, Antwi S, McCulloch M. ISPD guidelines for peritoneal dialysis in acute kidney injury: 2020 Update (paediatrics). Perit Dial Int. 2021 Mar;41(2):139-157. doi: 10.1177/0896860820982120. 
  154. Menon S, Krallman KA, Arikan AA, Fuhrman DY, Gorga SM, Mottes T, Ollberding N, Ricci Z, Stanski NL, Selewski DT, Soranno DE, Zappitelli M, Zang H, Gist KM; WE-ROCK Investigators. Worldwide Exploration of Renal Replacement Outcomes Collaborative in Kidney Disease (WE-ROCK). Kidney Int Rep. 2023 Jun 5;8(8):1542-1552. doi: 10.1016/j.ekir.2023.05.026. Erratum in: Kidney Int Rep. 2024 Jan 12;9(3):732. doi: 10.1016/j.ekir.2024.01.022. 
  155. Menon S, Broderick J, Munshi R, Dill L, DePaoli B, Fathallah-Shaykh S, Claes D, Goldstein SL, Askenazi DJ. Kidney Support in Children using an Ultrafiltration Device: A Multicenter, Retrospective Study. Clin J Am Soc Nephrol. 2019;14(10):1432-1440. doi: 10.2215/CJN.03240319.
  156. Basu B, Mahapatra TK, Roy B, Schaefer F. Efficacy and outcomes of continuous peritoneal dialysis versus daily intermittent hemodialysis in pediatric acute kidney injury. Pediatr Nephrol. 2016 Oct;31(10):1681-9. doi: 10.1007/s00467-016-3412-7. 
  157. Chanchlani R, Nash DM, McArthur E, Zappitelli M, Archer V, Kuwornu JP, Garg AX, Greenberg JH, Goldstein SL, Thabane L, Wald R. Secular Trends in Incidence, Modality and Mortality with Dialysis Receiving AKI in Children in Ontario: A Population-Based Cohort Study. Clin J Am Soc Nephrol. 2019 Sep 6;14(9):1288-1296. doi: 10.2215/CJN.08250718.
  158. Hogan J, Ranchin B, Fila M, Harambat J, Krid S, Vrillon I, Roussey G, Fischbach M, Couchoud C. Effect of center practices on the choice of the first dialysis modality for children and young adults. Pediatr Nephrol. 2017 Apr;32(4):659-667. doi: 10.1007/s00467-016-3538-7.
  159. Sutherland SM, Ji J, Sheikhi FH, Widen E, Tian L, Alexander SR, Ling XB. AKI in hospitalized children: epidemiology and clinical associations in a national cohort. Clin J Am Soc Nephrol. 2013;8(10):1661-9. doi: 10.2215/CJN.00270113. 
  160. Rustagi RS, Arora K, Das RR, Pooni PA, Singh D. Incidence, risk factors and outcome of acute kidney injury in critically ill children - a developing country perspective. Paediatr Int Child Health. 2017 Feb;37(1):35-41. doi: 10.1080/20469047.2015.1120409.
  161. Lameire N, Van Biesen W, Vanholder R. Epidemiology of acute kidney injury in children worldwide, including developing countries. Pediatr Nephrol. 2017 Aug;32(8):1301-1314. doi: 10.1007/s00467-016-3433-2.
  162. Goldstein SL, Akcan-Arikan A, Alobaidi R, Askenazi DJ, Bagshaw SM, Barhight M, Barreto E, Bayrakci B, Bignall ONR, Bjornstad E, Brophy PD, Chanchlani R, Charlton JR, Conroy AL, Deep A, Devarajan P, Dolan K, Fuhrman DY, Gist KM, Gorga SM, Greenberg JH, Hasson D, Ulrich EH, Iyengar A, Jetton JG, Krawczeski C, Meigs L, Menon S, Morgan J, Morgan CJ, Mottes T, Neumayr TM, Ricci Z, Selewski D, Soranno DE, Starr M, Stanski NL, Sutherland SM, Symons J, Tavares MS, Vega MW, Zappitelli M, Ronco C, Mehta RL, Kellum J, Ostermann M, Basu RK; Pediatric ADQI Collaborative. Consensus-Based Recommendations on Priority Activities to Address Acute Kidney Injury in Children: A Modified Delphi Consensus Statement. JAMA Netw Open. 2022 Sep 1;5(9):e2229442. doi: 10.1001/jamanetworkopen.2022.29442.
  163. FRANÇA, Joyce Helane Veras; DA SILVA, Thais Pereira Dias; MAIA, Mariana Pacheco; SILVA, Gabriela Santos; TEIXEIRA, Andréia Morais; TEIXEIRA, Paulo Humberto; CUNHA, Tainá Galvão; LEMOS , Karine Cardoso. Epidemiological profile of pediatric patients with acute kidney injury: A literature review. LUMEN ET VIRTUS, [S. l.], v. 15, n. 38, p. 329–338, 2024. DOI: 10.56238/levv15n38-019.
  164. Sutherland SM, Zappitelli M, Alexander SR, Chua AN, Brophy PD, Bunchman TE, Hackbarth R, Somers MJ, Baum M, Symons JM, Flores FX, Benfield M, Askenazi D, Chand D, Fortenberry JD, Mahan JD, McBryde K, Blowey D, Goldstein SL. Fluid overload and mortality in children receiving continuous renal replacement therapy: the prospective pediatric continuous renal replacement therapy registry. Am J Kidney Dis. 2010 Feb;55(2):316-25. doi: 10.1053/j.ajkd.2009.10.048.
  165. Lintz VC, Vieira RA, Carioca FL, Ferraz IS, Silva HM, Ventura AMC, de Souza DC, Brandão MB, Nogueira RJN, de Souza TH. Fluid accumulation in critically ill children: a systematic review and meta-analysis. EClinicalMedicine. 2024 Jul 3;74:102714. doi: 10.1016/j.eclinm.2024.102714. 
  166. Fernández-Sarmiento J, Sierra-Zuñiga MF, Salazar González MP, Lucena N, Soares Lanziotti V, Agudelo S. Association between fluid overload and mortality in children with sepsis: a systematic review and meta-analysis. BMJ Paediatr Open. 2023 Nov;7(1):e002094. doi: 10.1136/bmjpo-2023-002094.
  167. Alobaidi R, Morgan C, Basu RK, Stenson E, Featherstone R, Majumdar SR, Bagshaw SM. Association Between Fluid Balance and Outcomes in Critically Ill Children: A Systematic Review and Meta-analysis. JAMA Pediatr. 2018 Mar 1;172(3):257-268. doi: 10.1001/jamapediatrics.2017.4540.
  168. Snow TAC, Littlewood S, Corredor C, Singer M, Arulkumaran N. Effect of Extracorporeal Blood Purification on Mortality in Sepsis: A Meta-Analysis and Trial Sequential Analysis. Blood Purif. 2021;50(4-5):462-472. doi: 10.1159/000510982.
  169. Fayad AII, Buamscha DG, Ciapponi A. Timing of renal replacement therapy initiation for acute kidney injury. Cochrane Database Syst Rev. 2018 Dec 18;12(12):CD010612. doi: 10.1002/14651858.CD010612.pub2. 
  170. Khwaja A. KDIGO clinical practice guidelines for acute kidney injury. Nephron Clin Pract. 2012;120(4):c179-84. doi: 10.1159/000339789. 
  171. Лобзин Ю.В., Музуров А.Л., Середняков К.В., Попа А.В., Кварацхелия М.В., Абасеева Т.Ю., Панкратенко Т.Е. Сорбционные и диализные технологии экстракорпоральной гемокоррекции в терапии критических состояний у детей. Анестезиология и реаниматология. 2020;(5):56 62.
  172. Kawai Y, Cornell TT, Cooley EG, Beckman CN, Baldridge PK, Mottes TA, Luckritz KE, Plomaritas KS, Meade JM, Odetola FO, Han YY, Blatt NB, Annich GM. Therapeutic plasma exchange may improve hemodynamics and organ failure among children with sepsis-induced multiple organ dysfunction syndrome receiving extracorporeal life support. Pediatr Crit Care Med. 2015 May;16(4):366-74. doi: 10.1097/PCC.0000000000000351.
  173. Stahl K, Bikker R, Seeliger B, Schmidt JJ, Schenk H, Schmidt BMW, Welte T, Haller H, Hoeper MM, Brand K, David S. Effect of Therapeutic Plasma Exchange on Immunoglobulin Deficiency in Early and Severe Septic Shock. J Intensive Care Med. 2021 Dec;36(12):1491-1497. doi: 10.1177/0885066620965169. 
  174. Rimmer E, Houston BL, Kumar A, Abou-Setta AM, Friesen C, Marshall JC, Rock G, Turgeon AF, Cook DJ, Houston DS, Zarychanski R. The efficacy and safety of plasma exchange in patients with sepsis and septic shock: a systematic review and meta-analysis. Crit Care. 2014 Dec 20;18(6):699. doi: 10.1186/s13054-014-0699-2. 
  175. Putzu A, Schorer R, Lopez-Delgado JC, Cassina T, Landoni G. Blood Purification and Mortality in Sepsis and Septic Shock: A Systematic Review and Meta-analysis of Randomized Trials. Anesthesiology. 2019 Sep;131(3):580-593. doi: 10.1097/ALN.0000000000002820. 
  176. Long EJ, Taylor A, Delzoppo C, Shann F, Pearson G, Buckley D, Butt W. A randomised controlled trial of plasma filtration in severe paediatric sepsis. Crit Care Resusc. 2013 Sep;15(3):198-204. Erratum in: Crit Care Resusc. 2016 Dec;18(4):289. 
  177. Keith PD, Wells AH, Hodges J, Fast SH, Adams A, Scott LK. The therapeutic efficacy of adjunct therapeutic plasma exchange for septic shock with multiple organ failure: a single-center experience. Crit Care. 2020 Aug 24;24(1):518. doi: 10.1186/s13054-020-03241-6. 
  178. Knaup H, Stahl K, Schmidt BMW, Idowu TO, Busch M, Wiesner O, Welte T, Haller H, Kielstein JT, Hoeper MM, David S. Early therapeutic plasma exchange in septic shock: a prospective open-label nonrandomized pilot study focusing on safety, hemodynamics, vascular barrier function, and biologic markers. Crit Care. 2018 Oct 30;22(1):285. doi: 10.1186/s13054-018-2220-9. 
  179. Guo XH, Sun YF, Han SZ, Miao J, Cui M, Wang JB. Continuous blood purification in children with severe sepsis. J Biol Regul Homeost Agents. 2017 Apr-Jun;31(2):389-394.
  180. Ярустовский М.Б., Абрамян М.В., Солдаткина А.О., Комардина Е.В., Назарова Е.И., Плющ М.Г., Рогальская Е.А. Первый опыт применения селективной ЛПС-адсорбции в комплексной интенсивной терапии детей с грамотрицательным сепсисом после кардиохирургических операций. Анестезиология и реаниматология. 2017;62(5): 376-381
  181. Snow TAC, Littlewood S, Corredor C, Singer M, Arulkumaran N. Effect of Extracorporeal Blood Purification on Mortality in Sepsis: A Meta-Analysis and Trial Sequential Analysis. Blood Purif. 2021;50(4-5):462-472. doi: 10.1159/000510982.
  182. Ankawi G, Neri M, Zhang J, Breglia A, Ricci Z, Ronco C. Extracorporeal techniques for the treatment of critically ill patients with sepsis beyond conventional blood purification therapy: the promises and the pitfalls. Crit Care. 2018 Oct 25;22(1):262. doi: 10.1186/s13054-018-2181-z.
  183. Saetang P, Samransamruajkit R, Singjam K, Deekajorndech T. Polymyxin B Hemoperfusion in Pediatric Septic Shock: Single-Center Observational Case Series. Pediatr Crit Care Med. 2022 Aug 1;23(8):e386-e391. doi: 10.1097/PCC.0000000000002969. 
  184. Ying J, Cai X, Lu G, Chen W. The Use of Membranes (ST-100, oXiris, and M60) for Continuous Renal Replacement Therapy in a Child with Sepsis. Case Rep Crit Care. 2023 Jun 6;2023:2000781. doi: 10.1155/2023/2000781. 
  185. Morin L, Charbel R, Cousin VL, Marais C, Claude C, Barreault S, Durand P, Miatello J, Tissières P. Blood Purification with oXiris© in Critically Ill Children with Vasoplegic Shock. Blood Purif. 2023;52(6):541-548. doi: 10.1159/000530147. 
  186. Aleksandrovich, Yu.S.; Serednyakov, K.V.; Rybyanov, V.V.; Pshenisnov, K.V. Prediction of Septic Shock Outcome in Children Requiring Extracorporeal Hemocorrection. Anaes. i reanim. 2022, 44, doi:10.17116/anaesthesiology202206144
  187. Maede Y, Ibara S, Tokuhisa T, Ishihara C, Hirakawa E, Matsui T, Takahashi D, Machigashira S, Minakami H. Polymyxin B-immobilized fiber column direct hemoperfusion and continuous hemodiafiltration in premature neonates with systemic inflammatory response syndrome. Pediatr Int. 2016 Nov;58(11):1176-1182. doi: 10.1111/ped.13006. 
  188. Nishizaki N, Hara T, Obinata K, Nakagawa M, Shimizu T. Clinical Effects and Outcomes After Polymyxin B-Immobilized Fiber Column Direct Hemoperfusion Treatment for Septic Shock in Preterm Neonates. Pediatr Crit Care Med. 2020 Feb;21(2):156-163. doi: 10.1097/PCC.0000000000002132. 
  189. Chaudhuri D, Nei AM, Rochwerg B, Balk RA, Asehnoune K, Cadena R, Carcillo JA, Correa R, Drover K, Esper AM, Gershengorn HB, Hammond NE, Jayaprakash N, Menon K, Nazer L, Pitre T, Qasim ZA, Russell JA, Santos AP, Sarwal A, Spencer-Segal J, Tilouche N, Annane D, Pastores SM. 2024 Focused Update: Guidelines on Use of Corticosteroids in Sepsis, Acute Respiratory Distress Syndrome, and Community-Acquired Pneumonia. Crit Care Med. 2024 May 1;52(5):e219-e233. doi: 10.1097/CCM.0000000000006172.
  190. Agus M.S., Wypij D., Hirshberg E.L., et al. Tight glycemic control in critically ill children // N Engl J Med. 2017. Vol. 376. No 8. P. 729-741. DOI: 10.1056/NEJMoa1612348.
  191. Macrae D., Grieve R., Allen E., et al. A randomized trial of hyperglycemic control in pediatric intensive care // N Engl J Med. 2014. Vol. 370 No 2. P. 107-18. DOI: 10.1056/NEJMoa1302564.
  192. Dotson B., Larabell P., Patel J.U., et al. Calcium administration is associated with adverse outcomes in critically ill patients receiving parenteral nutrition: results from a natural experiment created by a calcium gluconate shortage // Pharmacotherapy. 2016. Vol. 36. No 11. P. 1185-1190. DOI: 10.1002/phar.1849. 
  193. Dias C.R., Leite H.P., Nogueira P.C., et al. Ionized hypocalcemia is an early event and is associated with organ dysfunction in children admitted to the intensive care unit // J Crit Care. 2013. Vol. 28 No 5. P. 810-5. DOI: 10.1016/j.jcrc.2013.03.019.
  194. Karam O., Tucci M., Ducruet T., et al. Red blood cell transfusion thresholds in pediatric patients with sepsis // Pediatr Crit Care Med. 2011. Vol. 12. No. 5. P. 512-8. DOI: 10.1097/PCC.0b013e3181fe344b.
  195. Hébert P.C., Wells G., Blajchman M.A. et al. A multicenter, randomized, controlled clinical trial of transfusion requirements in critical care. Transfusion Requirements in Critical Care Investigators, Canadian Critical Care Trials Group // N Engl J Med. 1999. Vol. 340. No 6. P. 409-17. DOI: 10.1056/NEJM199902113400601.
  196. Yang L., Stanworth S., Hopewell S., et al. Is fresh-frozen plasma clinically effective? An update of a systematic review of randomized controlled trials // Transfusion. 2012. Vol. 52. No 8. P. 1673-86; quiz 1673. DOI: 10.1111/j.1537-2995.2011.03515.x.
  197. Karam O., Lacroix J., Robitaille N., et al. Association between plasma transfusions and clinical outcome in critically ill children: a prospective observational study // Vox Sang. 2013. Vol. 104. No 4. P. 342-9. DOI: 10.1111/vox.12009.
  198. Du Pont-Thibodeau G., Tucci M., Robitaille N., et al. Platelet transfusions in pediatric intensive care // Pediatr Crit Care Med. 2016. Vol. 17. No 9. e420-9. DOI: 10.1097/PCC.0000000000000879.
  199. Kreymann K.G., de Heer G., Nierhaus A., Kluge S. Use of polyclonal immunoglobulins as adjunctive therapy for sepsis or septic shock // Crit Care Med. 2007. Vol. 35. No. 12. P. 2677–2685. DOI: 10.1097/00003246-200712000-00001
  200. Kakoullis L., Pantzaris N.D., Platanaki C., et al. The use of IgM-enriched immunoglobulin in adult patients with sepsis // J Crit Care. 2018. Vol. 47. P. 30–35. DOI: 10.1016/j.jcrc.2018.06.005
  201. Cui J., Wei X., Lv H., et al. The clinical efficacy of intravenous IgM-enriched immunoglobulin (pentaglobin) in sepsis or septic shock: a meta-analysis with trial sequential analysis // Ann Intensive Care. 2019. Vol. 9. No. 1. P. 27. DOI: 10.1186/s13613-019-0501-3
  202. Aukrust P., Frøland S.S., Liabakk N.B., et al. Release of cytokines, soluble cytokine receptors, and interleukin-1 receptor antagonist after intravenous immunoglobulin administration in vivo // Blood. 1994. Vol. 84. No. 7. P. 2136–2143. DOI: 10.1182/blood.V84.7.2136.2136
  203. Rieben R., Roos A., Muizert Y., et al. Immunoglobulin M-enriched human intravenous immunoglobulin prevents complement activation in vitro and in vivo in a rat model of acute inflammation // Blood. 1999. Vol. 93. No. 3. P. 942–951. DOI: 10.1182/blood.V93.3.942
  204. Bermejo-Martín J.F., Rodriguez-Fernandez A., Herrán-Monge R., et al. GRECIA Group (Grupo de Estudios y Análisis en Cuidados Intensivos). Immunoglobulins IgG1, IgM and IgA: a synergistic team influencing survival in sepsis // J Intern Med. 2014. Vol. 276. No. 4. P. 404–412. DOI: 10.1111/joim.12265
  205. Hotchkiss R.S., Monneret G., Payen D. Immunosuppression in sepsis: a novel understanding of the disorder and a new therapeutic approach // Lancet Infect Dis. 2013. Vol. 13. No. 3. P. 260–268. DOI: 10.1016/S1473-3099(13)70001
  206. Alejandria M.M., Lansang M.A., Dans L.F., Mantaring J.B. 3rd. Intravenous immunoglobulin for treating sepsis, severe sepsis and septic shock // Cochrane Database Syst Rev. 2013. No. 9. P. CD001090. DOI: 10.1002/14651858.CD001090.pub2
  207. El-Nawawy A., El-Kinany H., Hamdy El-Sayed M., et al. Intravenous polyclonal immunoglobulin administration to sepsis syndrome patients: A prospective study in a pediatric intensive care unit // J Trop Pediatr. 2005. Vol. 51. No. 5. P. 271–278. DOI: 10.1093/tropej/fmi011
  208. Белобородова Н.В., Попов Д.А., Шаталов К.В., и др. Заместительная иммунотерапия под контролем теста на прокальцитонин – новый подход к предупреждению манифестации инфекции в послеоперационном периоде у детей со сложными врожденными пороками сердца // Детские болезни сердца и сосудов. 2005. Т. 3. С. 62–68.
  209. Popov D., Yaroustovsky M., Lobacheva G. Prevention of infectious complications after heart surgery in children: procalcitonin-guided strategy // Kardiochir Torakochirurgia Pol. 2014. Vol. 11. No. 2. P. 140–44. DOI: 10.5114/kitp.2014.43840
  210. Kola E., Çelaj E., Bakalli I., et al. Efficacy of an IgM preparation in the treatment of patients with sepsis: a double-blind randomized clinical trial in a pediatric intensive care unit (Original research) // SEEJPH. 2014. Vol. 40. No. 1. P. 278. DOI: 10.12908/SEEJPH2014-04
  211. Abdullayev E., Kilic O., Bozan G., et al. Clinical, laboratory features and prognosis of children receiving IgM-enriched immunoglobulin (3 days vs. 5 days) as adjuvant treatment for serious infectious disease in pediatric intensive care unit: a retrospective single-center experience (PIGMENT study) // Human Vaccines & Immunotherapeutics. 2020. Vol. 16. No. 8. P. 1997–2002. DOI: 10.1080/21645515.2019.1711298
  212. Berlot G., Vassallo M.C., Busetto N., et al. Relationship between the timing of administration of IgM and IgA enriched immunoglobulins in patients with severe sepsis and septic shock and the outcome: a retrospective analysis // J Crit Care. 2012. Vol. 27. No. 2. P. 167–171. DOI: 10.1016/j.jcrc.2011.05.012
  213. De Rosa F.G., Corcione S., Tascini C., et al. A position paper on IgM-enriched intravenous immunoglobulin adjunctive therapy in severe acute bacterial infections: the TO-PIRO SCORE proposal // New Microbiol. 2019. Vol. 42. No. 3. P. 176–180.
  214. Ponnarmeni S., Angurana S.K., Singhi S., et al. Vitamin D deficiency in critically ill children with sepsis // Paediatr Int Child Health. 2016. Vol. 36. P. 15–21. DOI: 10.1080/20469047.2015.1109274
  215. Reveiz L., Guerrero-Lozano R., Camacho A., et al: Stress ulcer, gastritis, and gastrointestinal bleeding prophylaxis in critically ill pediatric patients: A systematic review // Pediatr Crit Care Med. 2010. Vol. 11. No. 1. P. 124–132. DOI: 10.1097/PCC.0b013e3181b80e70
  216. Jimenez J., Drees M., Loveridge-Lenza B., et al. Exposure to gastric acid-suppression therapy is associated with health care- and community-associated Clostridium difficile infection in children // J Pediatr Gastroenterol Nutr. 2015. Vol. 61. No. 2. P. 208–211. DOI: 10.1097/MPG.0000000000000790
  217. Cook D., Heyland D., Griffith L., et al. Risk factors for clinically important upper gastrointestinal bleeding in patients requiring mechanical ventilation. Canadian Critical Care Trials Group // Crit Care Med. 1999. Vol. 27. No. 12. P. 2812–2817. DOI: 10.1097/00003246-199912000-00034
  218. Duerksen D.R. Stress-related mucosal disease in critically ill patients // Best Pract Res Clin Gastroenterol. 2003. Vol. 17. No. 3. P. 327–344. DOI: 10.1016/S1521-6918(03)00028-3
  219. Massicotte P., Julian J.A., Gent M., et al. PROTEKT Study Group: An open-label randomized controlled trial of low molecular weight heparin for the prevention of central venous line-related thrombotic complications in children: The PROTEKT trial // Thromb Res. 2003. Vol. 109. No. 2-3. P. 101–108.  DOI: 10.1016/S0049-3848(03)00099-9
  220. Lagunes L., Encina B., Ramirez-Estrada S. Current understanding in source control management in septic shock patients: A review // Ann Transl Med. 2016. Vol. 4. No. 17. P. 330. DOI: 10.21037/atm.2016.09.02
  221. Fustes-Morales A., Gutierrez-Castrellon P., Duran-Mckinster C., et al. Necrotizing fasciitis: Report of 39 pediatric cases // Arch Dermatol. 2002. Vol. 138. No. 7. P. 893–899. DOI: 10.1001/archderm.138.7.893
  222. Endorf F.W., Garrison M.M., Klein M.B., et al: Characteristics, therapies, and outcome of children with necrotizing soft tissue infections // Pediatr Infect Dis J. 2012. Vol. 31. No. 3. P. 221–223. DOI: 10.1097/INF.0b013e3182456f02
  223. Vasudevan C., Oddie S.J., McGuire W. Early removal versus expectant management of central venous catheters in neonates with bloodstream infection // Cochrane Database Syst Rev. 2016.Vol. 4. No. 4. CD008436. DOI: 10.1002/14651858
  224. Rodriguez D., Park B.J., Almirante B., et al. Barcelona Candidemia Project Study Group: Impact of early central venous catheter removal on outcome in patients with candidaemia // Clin Microbiol Infect. 2007. Vol. 13. No. 8. P. 788–793. DOI: 10.1111/j.1469-0691.2007.01758.x
  225. Епифанов В.А., Ющук Н.Д., Епифанов А.В. Медико-социальная реабилитация после инфекционных заболеваний. М.: ГЭОТАР-медиа, 2020. 560 с.
  226. Карпов И.А., Горбич Ю.Л., Кулагин А.Е. и др. Сепсис: диагностика, принципы антимикробной и поддерживающей терапии (учебно-методическое пособие). Минск: БГМУ, 2019. 28 с.
  227. Seymour C.W., Wiersinga W.J., ed. Handbook of sepsis. Springer, 2018. 268 p. DOI: 10.1007/978-3-319-73506-1
  228. Odetola F.O., Gebremariam A. Transfer hospitalizations for pediatric severe sepsis or septic shock: resource use and outcomes // BMC Pediatr. 2019. Vol. 19. No. 1. P. 196. DOI: 10.1186/s12887-019-1577-5
  229. Evans I.V.R., Phillips G.S., Alpern E.R. et al. Association between the New York sepsis care mandate and in-hospital mortality for pediatric sepsis. JAMA. 2018;320(4):358-367. doi:10.1001/jama.2018.9071
  230. Ames S.G., Horvat C.M., Zaritsky A., Carcillo J.A. The path to great pediatric septic shock outcomes. Crit Care. 2018;22(1):224. doi:10.1186/s13054-018-2147-1
  231. Lin J.C., Spinella P.C., Fitzgerald J.C. et al. New or progressive multiple organ dysfunction syndrome in pediatric severe sepsis: a sepsis phenotype with higher morbidity and mortality. Pediatr Crit Care Med. 2017;18(1):8-16. doi:10.1097/PCC.0000000000000978
  232. Weiss S.L., Fitzgerald J.C., Pappachan J. et al. Global epidemiology of pediatric severe sepsis: the sepsis prevalence, outcomes, and therapies study [published correction appears in Am J Respir Crit Care Med. 2016;193(2):223-4]. Am J Respir Crit Care Med. 2015;191(10):1147-1157. doi:10.1164/rccm.201412-2323OC
  233. Workman J.K., Ames S.G., Reeder R.W. et al. Treatment of pediatric septic shock with the surviving sepsis campaign guidelines and PICU patient outcomes. Pediatr Crit Care Med. 2016;17(10):e451-e458. doi:10.1097/PCC.0000000000000906
  234. Balamuth F., Scott H.F., Weiss S.L. et al. Validation of the pediatric sequential organ failure assessment score and evaluation of third international consensus definitions for sepsis and septic shock definitions in the pediatric emergency department. JAMA Pediatr. 2022;176(7):672-678. doi:10.1001/jamapediatrics.2022.1301
  235. Shah S., Deshmukh C.T., Tullu M.S. The predictors of outcome and progression of pediatric sepsis and septic shock: A prospective observational study from western India. J Postgrad Med. 2020;66(2):67-72. doi:10.4103/jpgm.JPGM_171_19
  236. Ames S.G., Davis B.S., Angus D.C., Carcillo J.A., Kahn J.M. Hospital variation in risk-adjusted pediatric sepsis mortality. Pediatr Crit Care Med. 2018;19(5):390-396. doi:10.1097/PCC.0000000000001502
  237.  Schlapbach L.J., MacLaren G., Festa M. et al. Prediction of pediatric sepsis mortality within 1 h of intensive care admission. Intensive Care Med. 2017;43(8):1085-1096. doi:10.1007/s00134-017-4701-8
  238. Gilholm P., Gibbons K., Lister P. et al. Validation of a paediatric sepsis screening tool to identify children with sepsis in the emergency department: a statewide prospective cohort study in Queensland, Australia. BMJ Open. 2023;13(1):e061431. doi:10.1136/bmjopen-2022-061431
  239. Peters C., Murthy S., Brant R., Kissoon N., Görges M. Mortality risk using a pediatric quick sequential (sepsis-related) organ failure assessment varies with vital sign thresholds. Pediatr Crit Care Med. 2018;19(8):e394-e402. doi:10.1097/PCC.0000000000001598
  240. Paul R., Niedner M., Brilli R. et al. Metric development for the multicenter improving pediatric sepsis outcomes (IPSO) collaborative. Pediatrics. 2021;147(5):e2020017889. doi:10.1542/peds.2020-017889.