Care of the critically ill neonate with hypoxemic respiratory failure and acute pulmonary hypertension: framework for practice based on consensus opinion of neonatal hemodynamics working group.


Journal

Journal of perinatology : official journal of the California Perinatal Association
ISSN: 1476-5543
Titre abrégé: J Perinatol
Pays: United States
ID NLM: 8501884

Informations de publication

Date de publication:
01 2022
Historique:
received: 11 06 2021
accepted: 02 12 2021
revised: 17 11 2021
pubmed: 12 1 2022
medline: 20 4 2022
entrez: 11 1 2022
Statut: ppublish

Résumé

Circulatory transition after birth presents a critical period whereby the pulmonary vascular bed and right ventricle must adapt to rapidly changing loading conditions. Failure of postnatal transition may present as hypoxemic respiratory failure, with disordered pulmonary and systemic blood flow. In this review, we present the biological and clinical contributors to pathophysiology and present a management framework.

Identifiants

pubmed: 35013586
doi: 10.1038/s41372-021-01296-z
pii: 10.1038/s41372-021-01296-z
doi:

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

3-13

Informations de copyright

© 2021. The Author(s), under exclusive licence to Springer Nature America, Inc.

Références

Lakshminrusimha S, Steinhorn RH. Pulmonary vascular biology during neonatal transition. Clin Perinatol. 1999;26:601–19.
pubmed: 10494467 doi: 10.1016/S0095-5108(18)30039-3
Haworth SG. Development of the normal and hypertensive pulmonary vasculature. Exp Physiol. 1995;80:843–53.
pubmed: 8546873 doi: 10.1113/expphysiol.1995.sp003892
Schittny JC. Development of the lung. Cell Tissue Res. 2017;367:427–44.
pubmed: 28144783 pmcid: 5320013 doi: 10.1007/s00441-016-2545-0
Hall SM, Hislop AA, Pierce CM, Haworth SG. Prenatal origins of human intrapulmonary arteries: formation and smooth muscle maturation. Am J Respir Cell Mol Biol. 2000;23:194–203.
pubmed: 10919986 doi: 10.1165/ajrcmb.23.2.3975
Hislop AA. Airway and blood vessel interaction during lung development. J Anat. 2002;201:325–34.
pubmed: 12430957 pmcid: 1570917 doi: 10.1046/j.1469-7580.2002.00097.x
Belik J, Halayko AJ, Rao K, Stephens NL. Pulmonary and systemic vascular smooth muscle mechanical characteristics in newborn sheep. Am J Physiol. 1992;263:H881–6.
pubmed: 1415615
Lakshminrusimha S. The pulmonary circulation in neonatal respiratory failure. Clin Perinatol. 2012;39:655–83.
pubmed: 22954275 pmcid: 3598629 doi: 10.1016/j.clp.2012.06.006
Lewis AB, Heymann MA, Rudolph AM. Gestational changes in pulmonary vascular responses in fetal lambs in utero. Circ Res. 1976;39:536–41.
pubmed: 963838 doi: 10.1161/01.RES.39.4.536
Morin FC 3rd, Egan EA. Pulmonary hemodynamics in fetal lambs during development at normal and increased oxygen tension. J Appl Physiol (1985). 1992;73:213–8.
doi: 10.1152/jappl.1992.73.1.213
Storme L, Rairigh RL, Parker TA, Kinsella JP, Abman SH. In vivo evidence for a myogenic response in the fetal pulmonary circulation. Pediatr Res. 1999;45:425–31.
pubmed: 10088665 doi: 10.1203/00006450-199903000-00022
Mathew R, Altura BM. Physiology and pathophysiology of pulmonary circulation. Microcirc Endothelium Lymphatics. 1990;6:211–52.
pubmed: 1980714
Fediuk J, Dakshinamurti S. A role for actin polymerization in persistent pulmonary hypertension of the newborn. Can J Physiol Pharm. 2015;93:185–94.
doi: 10.1139/cjpp-2014-0413
Basu S, Datta BN, Khandelwal N. Morphologic changes in pulmonary vasculature with arteriographic correlation. Angiology. 1996;47:375–80.
pubmed: 8619510 doi: 10.1177/000331979604700408
Allen K, Haworth SG. Human postnatal pulmonary arterial remodeling. Ultrastructural studies of smooth muscle cell and connective tissue maturation. Lab Invest. 1988;59:702–9.
pubmed: 3184869
Michel RP, Gordon JB, Chu K. Development of the pulmonary vasculature in newborn lambs: structure-function relationships. J Appl Physiol (1985). 1991;70:1255–64.
doi: 10.1152/jappl.1991.70.3.1255
Haworth SG, Hislop AA. Adaptation of the pulmonary circulation to extra-uterine life in the pig and its relevance to the human infant. Cardiovasc Res. 1981;15:108–19.
pubmed: 7260976 doi: 10.1093/cvr/15.2.108
Harting MT. Congenital diaphragmatic hernia-associated pulmonary hypertension. Semin Pediatr Surg. 2017;26:147–53.
pubmed: 28641752 doi: 10.1053/j.sempedsurg.2017.04.008
Sluiter I, van der Horst I, van der Voorn P, Boerema-de Munck A, Buscop-van Kempen M, de Krijger R, et al. Premature differentiation of vascular smooth muscle cells in human congenital diaphragmatic hernia. Exp Mol Pathol. 2013;94:195–202.
pubmed: 23018129 doi: 10.1016/j.yexmp.2012.09.010
Mous DS, Kool HM, Wijnen R, Tibboel D, Rottier RJ. Pulmonary vascular development in congenital diaphragmatic hernia. Eur Respir Rev. 2018;27:170104 https://doi.org/10.1183/16000617.0104-2017 .
de Lagausie P, de Buys-Roessingh A, Ferkdadji L, Saada J, Aisenfisz S, Martinez-Vinson C, et al. Endothelin receptor expression in human lungs of newborns with congenital diaphragmatic hernia. J Pathol. 2005;205:112–8.
pubmed: 15546126 doi: 10.1002/path.1677
Keller RL, Tacy TA, Hendricks-Munoz K, Xu J, Moon-Grady AJ, Neuhaus J, et al. Congenital diaphragmatic hernia: endothelin-1, pulmonary hypertension, and disease severity. Am J Respir Crit Care Med. 2010;182:555–61.
pubmed: 20413632 pmcid: 2937245 doi: 10.1164/rccm.200907-1126OC
Price LC, McAuley DF, Marino PS, Finney SJ, Griffiths MJ, Wort SJ. Pathophysiology of pulmonary hypertension in acute lung injury. Am J Physiol Lung Cell Mol Physiol. 2012;302:L803–15.
pubmed: 22246001 pmcid: 3362157 doi: 10.1152/ajplung.00355.2011
Dunham-Snary KJ, Wu D, Sykes EA, Thakrar A, Parlow LRG, Mewburn JD, et al. Hypoxic pulmonary vasoconstriction: from molecular mechanisms to medicine. Chest 2017;151:181–92.
pubmed: 27645688 doi: 10.1016/j.chest.2016.09.001
Sommer N, Strielkov I, Pak O, Weissmann N. Oxygen sensing and signal transduction in hypoxic pulmonary vasoconstriction. Eur Respir J. 2016;47:288–303.
pubmed: 26493804 doi: 10.1183/13993003.00945-2015
Zapol WM, Kobayashi K, Snider MT, Greene R, Laver MB. Vascular obstruction causes pulmonary hypertension in severe acute respiratory failure. Chest. 1977;71:306–7.
pubmed: 836381 doi: 10.1378/chest.71.2_Supplement.306
Brimioulle S, LeJeune P, Naeije R. Effects of hypoxic pulmonary vasoconstriction on pulmonary gas exchange. J Appl Physiol (1985). 1996;81:1535–43.
doi: 10.1152/jappl.1996.81.4.1535
Rossi P, Persson B, Boels PJ, Arner A, Weitzberg E, Oldner A. Endotoxemic pulmonary hypertension is largely mediated by endothelin-induced venous constriction. Intensive Care Med. 2008;34:873–80.
pubmed: 18214440 doi: 10.1007/s00134-007-0980-9
Kuebler WM, Ying X, Singh B, Issekutz AC, Bhattacharya J. Pressure is proinflammatory in lung venular capillaries. J Clin Invest. 1999;104:495–502.
pubmed: 10449441 pmcid: 408527 doi: 10.1172/JCI6872
Tomashefski JF Jr., Davies P, Boggis C, Greene R, Zapol WM, Reid LM. The pulmonary vascular lesions of the adult respiratory distress syndrome. Am J Pathol. 1983;112:112–26.
pubmed: 6859225 pmcid: 1916312
Kulik TJ. Pulmonary hypertension caused by pulmonary venous hypertension. Pulm circulation. 2014;4:581–95.
doi: 10.1086/678471
Haddad F, Hunt SA, Rosenthal DN, Murphy DJ. Right ventricular function in cardiovascular disease, part I: anatomy, physiology, aging, and functional assessment of the right ventricle. Circulation. 2008;117:1436–48.
pubmed: 18347220 doi: 10.1161/CIRCULATIONAHA.107.653576
Sarnoff SJ, Mitchell JH, Gilmore JP, Remensnyder JP. Homeometric autoregulation in the heart. Circ Res. 1960;8:1077–91.
pubmed: 13746560 doi: 10.1161/01.RES.8.5.1077
Brinker JA, Weiss JL, Lappe DL, Rabson JL, Summer WR, Permutt S, et al. Leftward septal displacement during right ventricular loading in man. Circulation. 1980;61:626–33.
pubmed: 7353253 doi: 10.1161/01.CIR.61.3.626
Bronicki RA, Anas NG. Cardiopulmonary interaction. Pediatr Crit Care Med. 2009;10:313–22.
pubmed: 19307810 doi: 10.1097/PCC.0b013e31819887f0
Brooks H, Kirk ES, Vokonas PS, Urschel CW, Sonnenblick EH. Performance of the right ventricle under stress: relation to right coronary flow. J Clin Invest. 1971;50:2176–83.
pubmed: 5116207 pmcid: 292152 doi: 10.1172/JCI106712
Naeije R, Manes A. The right ventricle in pulmonary arterial hypertension. Eur Respir Rev. 2014;23:476–87.
pubmed: 25445946 doi: 10.1183/09059180.00007414
Hirsch LJ, Rooney MW, Wat SS, Kleinmann B, Mathru M. Norepinephrine and phenylephrine effects on right ventricular function in experimental canine pulmonary embolism. Chest. 1991;100:796–801.
pubmed: 1889275 doi: 10.1378/chest.100.3.796
Schreuder WO, Schneider AJ, Groeneveld AB, Thijs LG. Effect of dopamine vs norepinephrine on hemodynamics in septic shock. Emphasis on right ventricular performance. Chest. 1989;95:1282–8.
pubmed: 2721267 doi: 10.1378/chest.95.6.1282
Tourneux P, Rakza T, Bouissou A, Krim G, Storme L. Pulmonary circulatory effects of norepinephrine in newborn infants with persistent pulmonary hypertension. J Pediatr. 2008;153:345–9.
pubmed: 18534241 doi: 10.1016/j.jpeds.2008.03.007
Vlahakes GJ, Turley K, Hoffman JI. The pathophysiology of failure in acute right ventricular hypertension: hemodynamic and biochemical correlations. Circulation 1981;63:87–95.
pubmed: 7438411 doi: 10.1161/01.CIR.63.1.87
Mebazaa A, Karpati P, Renaud E, Algotsson L. Acute right ventricular failure–from pathophysiology to new treatments. Intensive Care Med. 2004;30:185–96.
pubmed: 14618229 doi: 10.1007/s00134-003-2025-3
Cheung PY, Barrington K. The effects of dopamine and epinephrine on hemodynamics and oxygen metabolism in hypoxic anesthetized piglets. Crit Care. 2001;5:158–66.
pubmed: 11353933 pmcid: 31580 doi: 10.1186/cc1016
Spong CY. Preterm premature rupture of the fetal membranes complicated by oligohydramnios. Clin Perinatol. 2001;28:753–9 vi.
pubmed: 11817187 doi: 10.1016/S0095-5108(03)00075-7
Niles KM, Blaser S, Shannon P, Chitayat D. Fetal arthrogryposis multiplex congenita/fetal akinesia deformation sequence (FADS) - Aetiology, diagnosis and management. Prenat Diagn. 2019;39:720–31.
pubmed: 31218730 doi: 10.1002/pd.5505
Waters TP, Mercer B. Preterm PROM: prediction, prevention, principles. Clin Obstet Gynecol. 2011;54:307–12.
pubmed: 21508700 doi: 10.1097/GRF.0b013e318217d4d3
Lindenskov PH, Castellheim A, Saugstad OD, Mollnes TE. Meconium aspiration syndrome: possible pathophysiological mechanisms and future potential therapies. Neonatology. 2015;107:225–30.
doi: 10.1159/000369373
Pedra SR, Smallhorn JF, Ryan G, Chitayat D, Taylor GP, Khan R, et al. Fetal cardiomyopathies: pathogenic mechanisms, hemodynamic findings, and clinical outcome. Circulation. 2002;106:585–91.
pubmed: 12147541 doi: 10.1161/01.CIR.0000023900.58293.FE
Huybrechts KF, Bateman BT, Palmsten K, Desai RJ, Patorno E, Gopalakrishnan C, et al. Antidepressant use late in pregnancy and risk of persistent pulmonary hypertension of the newborn. JAMA. 2015;313:2142–51.
pubmed: 26034955 pmcid: 4761452 doi: 10.1001/jama.2015.5605
Barberi I, Calabro MP, Cordaro S, Gitto E, Sottile A, Prudente D, et al. Myocardial ischaemia in neonates with perinatal asphyxia. Electrocardiographic, echocardiographic and enzymatic correlations. Eur J Pediatr. 1999;158:742–7.
pubmed: 10485308 doi: 10.1007/s004310051192
Lakshminrusimha S, Konduri GG, Steinhorn RH. Considerations in the management of hypoxemic respiratory failure and persistent pulmonary hypertension in term and late preterm neonates. J Perinatol. 2016;36:S12–9.
pubmed: 27225960 doi: 10.1038/jp.2016.44
Lakshminrusimha S, Saugstad OD. The fetal circulation, pathophysiology of hypoxemic respiratory failure and pulmonary hypertension in neonates, and the role of oxygen therapy. J Perinatol. 2016;36:S3–s11.
pubmed: 27225963 doi: 10.1038/jp.2016.43
Corredera A, Rodriguez MJ, Arevalo P, Llorente B, Moro M, Arruza L. [Functional echocardiography in neonatal intensive care: 1 year experience in a unit in Spain]. Pediatr (Barc). 2014;81:167–73.
doi: 10.1016/j.anpedi.2013.11.026
Mertens L, Seri I, Marek J, Arlettaz R, Barker P, McNamara P, et al. Targeted neonatal echocardiography in the neonatal intensive care unit: practice guidelines and recommendations for training. Eur J Echocardiogr. 2011;12:715–36.
pubmed: 21998460 doi: 10.1093/ejechocard/jer181
Musewe NN, Poppe D, Smallhorn JF, Hellman J, Whyte H, Smith B, et al. Doppler echocardiographic measurement of pulmonary artery pressure from ductal Doppler velocities in the newborn. J Am Coll Cardiol. 1990;15:446–56.
pubmed: 2299086 doi: 10.1016/S0735-1097(10)80076-2
Musewe NN, Smallhorn JF, Benson LN, Burrows PE, Freedom RM. Validation of Doppler-derived pulmonary arterial pressure in patients with ductus arteriosus under different hemodynamic states. Circulation. 1987;76:1081–91.
pubmed: 2959394 doi: 10.1161/01.CIR.76.5.1081
Parasuraman S, Walker S, Loudon BL, Gollop ND, Wilson AM, Lowery C, et al. Assessment of pulmonary artery pressure by echocardiography-A comprehensive review. Int J Cardiol Heart Vasc. 2016;12:45–51.
pubmed: 28616542 pmcid: 5454185
Smith A, Purna JR, Castaldo MP, Ibarra-Rios D, Giesinger RE, Rios DR, et al. Accuracy and reliability of qualitative echocardiography assessment of right ventricular size and function in neonates. Echocardiography. 2019;36:1346–52.
pubmed: 31246348 pmcid: 6685067 doi: 10.1111/echo.14409
Ryan T, Petrovic O, Dillon JC, Feigenbaum H, Conley MJ, Armstrong WF. An echocardiographic index for separation of right ventricular volume and pressure overload. J Am Coll Cardiol. 1985;5:918–27.
pubmed: 3973294 doi: 10.1016/S0735-1097(85)80433-2
Aggarwal S, Natarajan G. Echocardiographic correlates of persistent pulmonary hypertension of the newborn. Early Hum Dev. 2015;91:285–9.
pubmed: 25782054 doi: 10.1016/j.earlhumdev.2015.02.008
McCrary AW, Malowitz JR, Hornick CP, Hill KD, Cotten CM, Tatum GH, et al. Differences in eccentricity index and systolic-diastolic ratio in extremely low-birth-weight infants with bronchopulmonary dysplasia at risk of pulmonary hypertension. Am J Perinatol. 2016;33:57–62.
pubmed: 26171597 doi: 10.1055/s-0035-1556757
Skinner JR, Boys RJ, Heads A, Hey EN, Hunter S. Estimation of pulmonary arterial pressure in the newborn: study of the repeatability of four Doppler echocardiographic techniques. Pediatr Cardiol. 1996;17:360–9.
pubmed: 8781085 doi: 10.1007/s002469900080
Levy PT, Patel MD, Singh GK. Reply. J Pediatr. 2018;202:336–7.
pubmed: 30195560 doi: 10.1016/j.jpeds.2018.07.059
Reller MD, Morton MJ, Reid DL, Thornburg KL. Fetal lamb ventricles respond differently to filling and arterial pressures and to in utero ventilation. Pediatr Res. 1987;22:621–6.
pubmed: 3431944 doi: 10.1203/00006450-198712000-00001
Pinson CW, Morton MJ, Thornburg KL. An anatomic basis for fetal right ventricular dominance and arterial pressure sensitivity. J Dev Physiol. 1987;9:253–69.
pubmed: 3611640
Jain A, Mohamed A, El-Khuffash A, Connelly KA, Dallaire F, Jankov RP, et al. A comprehensive echocardiographic protocol for assessing neonatal right ventricular dimensions and function in the transitional period: normative data and z scores. J Am Soc Echocardiogr. 2014;27:1293–304.
pubmed: 25260435 doi: 10.1016/j.echo.2014.08.018
Slama M, Susic D, Varagic J, Ahn J, Frohlich ED. Echocardiographic measurement of cardiac output in rats. Am J Physiol Heart Circ Physiol. 2003;284:H691–7.
pubmed: 12414447 doi: 10.1152/ajpheart.00653.2002
Jardin F, Vieillard-Baron A. Right ventricular function and positive pressure ventilation in clinical practice: from hemodynamic subsets to respirator settings. Intensive Care Med. 2003;29:1426–34.
pubmed: 12910335 doi: 10.1007/s00134-003-1873-1
Creamer KM, McCloud LL, Fisher LE, Ehrhart IC. Ventilation above closing volume reduces pulmonary vascular resistance hysteresis. Am J Respir Crit Care Med. 1998;158:1114–9.
pubmed: 9769269 doi: 10.1164/ajrccm.158.4.9711081
Hoffman GM, Nelin LD. Mean airway pressure and response to inhaled nitric oxide in neonatal and pediatric patients. Lung. 2005;183:441–53.
pubmed: 16465603 doi: 10.1007/s00408-005-2555-2
Whittenberger JL, Mc GM, Berglund E, Borst HG. Influence of state of inflation of the lung on pulmonary vascular resistance. J Appl Physiol. 1960;15:878–82.
pubmed: 13784949 doi: 10.1152/jappl.1960.15.5.878
Reller MD, Donovan EF, Kotagal UR. Influence of airway pressure waveform on cardiac output during positive pressure ventilation of healthy newborn dogs. Pediatr Res. 1985;19:337–41.
pubmed: 3889813 doi: 10.1203/00006450-198519040-00003
El Shahed AI, Dargaville PA, Ohlsson A, Soll R. Surfactant for meconium aspiration syndrome in term and late preterm infants. The Cochrane database of systematic reviews. 2014;2014:Cd002054.
Natarajan CK, Sankar MJ, Jain K, Agarwal R, Paul VK. Surfactant therapy and antibiotics in neonates with meconium aspiration syndrome: a systematic review and meta-analysis. J Perinatol. 2016;36:S49–54.
pubmed: 27109092 pmcid: 4848739 doi: 10.1038/jp.2016.32
Tarawneh A, Kaczmarek J, Bottino MN, Sant’anna GM. Severe airway obstruction during surfactant administration using a standardized protocol: a prospective, observational study. J Perinatol. 2012;32:270–5.
pubmed: 21738121 doi: 10.1038/jp.2011.89
Mokra D, Mokry J. Glucocorticoids in the treatment of neonatal meconium aspiration syndrome. Eur J Pediatr. 2011;170:1495–505.
pubmed: 21465122 pmcid: 3221844 doi: 10.1007/s00431-011-1453-2
Nakwan N, Chaiwiriyawong P. An international survey on persistent pulmonary hypertension of the newborn: a need for an evidence-based management. J neonatal-Perinat Med. 2016;9:243–50.
doi: 10.3233/NPM-16915133
Alapati D, Jassar R, Shaffer TH. Management of supplemental oxygen for infants with persistent pulmonary hypertension of newborn: a survey. Am J Perinatol. 2017;34:276–82.
pubmed: 27490772
Hauge A. Hypoxia and pulmonary vascular resistance. The relative effects of pulmonary arterial and alveolar PO2. Acta Physiol Scand. 1969;76:121–30.
pubmed: 5823367 doi: 10.1111/j.1748-1716.1969.tb04456.x
Rudolph AM, Yuan S. Response of the pulmonary vasculature to hypoxia and H+ ion concentration changes. J Clin Invest. 1966;45:399–411.
pubmed: 5904557 pmcid: 292711 doi: 10.1172/JCI105355
Belik J, Jankov RP, Pan J, Tanswell AK. Peroxynitrite inhibits relaxation and induces pulmonary artery muscle contraction in the newborn rat. Free Radic Biol Med. 2004;37:1384–92.
pubmed: 15454277 doi: 10.1016/j.freeradbiomed.2004.07.029
Stadler SS, Macri CJ, Kopelman JN, Mitchell A, Chakraborty PK, Satin AJ. Effect of meconium on the hemoglobin-oxygen association curve. J Matern Fetal Med. 1999;8:253–5.
pubmed: 10582858
Walsh BK. Oxygen Administration. Neonatal and Pediatric Respiratory Care. St. Louis, Missouri: Elsevier Health Sciences; 2014. p. 148–62.
Gien J, Kinsella JP. Differences in preductal and postductal arterial blood gas measurements in infants with severe congenital diaphragmatic hernia. Arch Dis Child Fetal Neonatal Ed. 2016;101:F314–8.
pubmed: 26514398 doi: 10.1136/archdischild-2014-307714
Mora GA, Pizarro C, Jacobs ML, Norwood WI. Experimental model of single ventricle. Influence of carbon dioxide on pulmonary vascular dynamics. Circulation. 1994;90:Ii43–6.
pubmed: 7955280
Peckham GJ, Fox WW. Physiologic factors affecting pulmonary artery pressure in infants with persistent pulmonary hypertension. J Pediatr. 1978;93:1005–10.
pubmed: 722410 doi: 10.1016/S0022-3476(78)81239-6
Barrington KJ, Finer N, Pennaforte T, Altit G. Nitric oxide for respiratory failure in infants born at or near term. Cochrane database Syst Rev. 2017;1:Cd000399.
pubmed: 28056166
Mónica FZ, Bian K, Murad F. The endothelium-dependent nitric oxide-cGMP pathway. Adv Pharm. 2016;77:1–27.
doi: 10.1016/bs.apha.2016.05.001
Creagh-Brown BC, Griffiths MJ, Evans TW. Bench-to-bedside review: Inhaled nitric oxide therapy in adults. Crit Care. 2009;13:221.
pubmed: 19519946 pmcid: 2717403 doi: 10.1186/cc7734
Robbins CG, Davis JM, Merritt TA, Amirkhanian JD, Sahgal N, Morin FC 3rd, et al. Combined effects of nitric oxide and hyperoxia on surfactant function and pulmonary inflammation. Am J Physiol. 1995;269:L545–50.
pubmed: 7485528
Clementi E, Brown GC, Feelisch M, Moncada S. Persistent inhibition of cell respiration by nitric oxide: crucial role of S-nitrosylation of mitochondrial complex I and protective action of glutathione. Proc Natl Acad Sci USA. 1998;95:7631–6.
pubmed: 9636201 pmcid: 22706 doi: 10.1073/pnas.95.13.7631
Ahearn J, Panda M, Carlisle H, Chaudhari T. Impact of inhaled nitric oxide stewardship programme in a neonatal intensive care unit. J Paediatr Child Health. 2020;56:265–71.
pubmed: 31368171 doi: 10.1111/jpc.14580
Elmekkawi A, More K, Shea J, Sperling C, Da Silva Z, Finelli M, et al. Impact of stewardship on inhaled nitric oxide utilization in a neonatal ICU. Hosp Pediatr. 2016;6:607–15.
pubmed: 27599869 doi: 10.1542/hpeds.2016-0003
Hasenfuss G, Schillinger W, Lehnart SE, Preuss M, Pieske B, Maier LS, et al. Relationship between Na+-Ca2+-exchanger protein levels and diastolic function of failing human myocardium. Circulation. 1999;99:641–8.
pubmed: 9950661 doi: 10.1161/01.CIR.99.5.641
Pieske B, Trost S, Schutt K, Minami K, Just H, Hasenfuss G. Influence of forskolin on the force-frequency behavior in nonfailing and end-stage failing human myocardium. Basic Res Cardiol. 1998;93:66–75.
pubmed: 9833133 doi: 10.1007/s003950050222
Pelletier JS, LaBossiere J, Dicken B, Gill RS, Sergi C, Tahbaz N, et al. Low-dose vasopressin improves cardiac function in newborn piglets with acute hypoxia-reoxygenation. Shock (Augusta, Ga). 2013;40:320–6.
doi: 10.1097/SHK.0b013e3182a4284e
Mohamed A, Nasef N, Shah V, McNamara PJ. Vasopressin as a rescue therapy for refractory pulmonary hypertension in neonates: case series. Pediatr Crit Care Med. 2014;15:148–54.
pubmed: 24141655 doi: 10.1097/PCC.0b013e31829f5fce
Shivananda S, Ahliwahlia L, Kluckow M, Luc J, Jankov R, McNamara P. Variation in the management of persistent pulmonary hypertension of the newborn: a survey of physicians in Canada, Australia, and New Zealand. Am J Perinatol. 2012;29:519–26.
pubmed: 22495900
Tulloh RM, Dyamenahalli U, Stuart-Smith K, Haworth SG. Adrenoceptor-stimulated endothelium-dependent relaxation in porcine intrapulmonary arteries. Pulm Pharm. 1994;7:299–303.
doi: 10.1006/pulp.1994.1035
Lakshminrusimha S, Russell JA, Wedgwood S, Gugino SF, Kazzaz JA, Davis JM, et al. Superoxide dismutase improves oxygenation and reduces oxidation in neonatal pulmonary hypertension. Am J respiratory Crit care Med. 2006;174:1370–7.
doi: 10.1164/rccm.200605-676OC
Deb B, Bradford K, Pearl RG. Additive effects of inhaled nitric oxide and intravenous milrinone in experimental pulmonary hypertension. Crit Care Med. 2000;28:795–9.
pubmed: 10752832 doi: 10.1097/00003246-200003000-00031
Rao S, Bartle D, Patole S. Current and future therapeutic options for persistent pulmonary hypertension in the newborn. Expert Rev Cardiovasc Ther. 2010;8:845–62.
pubmed: 20528642 doi: 10.1586/erc.09.186
Ogawa S, Nakanishi T, Kamata K, Takao A. Effect of milrinone on myocardial mechanical function and cyclic AMP content in the fetal rabbit. Pediatr Res. 1987;22:282–5.
pubmed: 2443896 doi: 10.1203/00006450-198709000-00009
Sys SU, Goenen MJ, Chalant CH, Brutsaert DL. Inotropic effects of amrinone and milrinone on contraction and relaxation of isolated cardiac muscle. Circulation. 1986;73:Iii25–35.
pubmed: 3002662
McNamara PJ, Laique F, Muang-In S, Whyte HE. Milrinone improves oxygenation in neonates with severe persistent pulmonary hypertension of the newborn. J Crit Care. 2006;21:217–22.
pubmed: 16769471 doi: 10.1016/j.jcrc.2006.01.001
Bischoff AR, Habib S, McNamara PJ, Giesinger RE. Hemodynamic response to milrinone for refractory hypoxemia during therapeutic hypothermia for neonatal hypoxic ischemic encephalopathy. J Perinatol. 2021;41:2345–54.
pubmed: 33850285 doi: 10.1038/s41372-021-01049-y
McNamara PJ, Shivananda SP, Sahni M, Freeman D, Taddio A. Pharmacology of milrinone in neonates with persistent pulmonary hypertension of the newborn and suboptimal response to inhaled nitric oxide. Pediatr Crit Care Med. 2013;14:74–84.
pubmed: 23132395 doi: 10.1097/PCC.0b013e31824ea2cd
Kelly LE, Ohlsson A, Shah PS. Sildenafil for pulmonary hypertension in neonates. Cochrane database Syst Rev. 2017;8:Cd005494.
pubmed: 28777888
El-Ghandour M, Hammad B, Ghanem M, Antonios MAM. Efficacy of milrinone plus sildenafil in the treatment of neonates with persistent pulmonary hypertension in resource-limited settings: results of a randomized, double-blind trial. Paediatr Drugs. 2020;22:685–93.
pubmed: 32856285 doi: 10.1007/s40272-020-00412-4 pmcid: 7453074
Lakshminrusimha S, Mathew B, Leach CL. Pharmacologic strategies in neonatal pulmonary hypertension other than nitric oxide. Semin Perinatol. 2016;40:160–73.
pubmed: 26778236 pmcid: 4808469 doi: 10.1053/j.semperi.2015.12.004
Ruffolo RR Jr. The pharmacology of dobutamine. Am J Med Sci. 1987;294:244–8.
pubmed: 3310640 doi: 10.1097/00000441-198710000-00005
Barrington KJ, Finer NN, Chan WK. A blind, randomized comparison of the circulatory effects of dopamine and epinephrine infusions in the newborn piglet during normoxia and hypoxia. Crit Care Med. 1995;23:740–8.
pubmed: 7712765 doi: 10.1097/00003246-199504000-00024
Cassin S, Tyler T, Leffler C, Wallis R. Pulmonary and systemic vascular responses of perinatal goats to prostaglandins E1 and E2. Am J Physiol. 1979;236:H828–32.
pubmed: 443446
Graham EM, Bradley SM, Atz AM. Preoperative management of hypoplastic left heart syndrome. Expert Opin Pharmacother. 2005;6:687–93.
pubmed: 15934895 doi: 10.1517/14656566.6.5.687
Badano LP, Ginghina C, Easaw J, Muraru D, Grillo MT, Lancellotti P, et al. Right ventricle in pulmonary arterial hypertension: haemodynamics, structural changes, imaging, and proposal of a study protocol aimed to assess remodelling and treatment effects. Eur J Echocardiogr. 2010;11:27–37.
pubmed: 19815539 doi: 10.1093/ejechocard/jep152
Jain A, McNamara PJ. Persistent pulmonary hypertension of the newborn: advances in diagnosis and treatment. Semin Fetal Neonatal Med. 2015;20:262–71.
pubmed: 25843770 doi: 10.1016/j.siny.2015.03.001
Giesinger RE, More K, Odame J, Jain A, Jankov RP, McNamara PJ. Controversies in the identification and management of acute pulmonary hypertension in preterm neonates. Pediatr Res. 2017;82:901–14.

Auteurs

Amish Jain (A)

Department of Pediatrics, University of Toronto, Toronto, ON, Canada.

Regan E Giesinger (RE)

Department of Pediatrics, University of Iowa, Iowa City, Iowa, USA.

Shyamala Dakshinamurti (S)

Department of Pediatrics, University of Manitoba, Winnipeg, MB, Canada.

Yasser ElSayed (Y)

Department of Pediatrics, University of Manitoba, Winnipeg, MB, Canada.

Robert P Jankov (RP)

Department of Pediatrics, University of Ottawa, Ottawa, ON, Canada.

Dany E Weisz (DE)

Department of Pediatrics, University of Toronto, Toronto, ON, Canada.

Satyan Lakshminrusimha (S)

Department of Pediatrics, University of California Davis, Sacramento, CA, USA.

Souvik Mitra (S)

Department of Pediatrics, Dalhousie University, Halifax, NS, Canada.

Mjaye L Mazwi (ML)

Department of Pediatrics, University of Toronto, Toronto, ON, Canada.

Joseph Ting (J)

Department of Pediatrics, University of British Columbia, Vancouver, BC, Canada.

Michael Narvey (M)

Department of Pediatrics, University of Manitoba, Winnipeg, MB, Canada.

Patrick J McNamara (PJ)

Department of Pediatrics, University of Iowa, Iowa City, Iowa, USA. patrick-mcnamara@uiowa.edu.

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