Download References 1. Wiatrak BJ. Glottic and subglottic stenosis in children

Survey
yes no Was this document useful for you?
   Thank you for your participation!

* Your assessment is very important for improving the work of artificial intelligence, which forms the content of this project

Document related concepts
no text concepts found
Transcript
References
1. Wiatrak BJ. Glottic and subglottic stenosis in children. In: Ossoff RH, Shapsahy SM,
Woodson GE, Netterville JL (eds) The Larynx. Philadelphia; Lippincott Williams &
Wilkins;2002, pp. 451–69.
2. Weber TR, Connors RH, Tracy TF, Jr. Acquired tracheal stenosis in infants and children. J
Thorac Cardiovasc Surg 1991;102:29–34.
3. Main E, Castle R, Stocks J, et al. The influence of endotracheal tube leak on the
assessment of respiratory function in ventilated children. Intensive Care Med
2001;27:1788–97.
4. Khine HH, Corddry DH, Kettrick RG et al. Comparison of cuffed and uncuffed
endotracheal tubes in young children during general anesthesia. Anesthesiology
1997;86:627–631.
5. Murat I. Cuffed tubes in children: a 3-year experience in a single institution. Paediatr
Anaesth 2001;11:748–9.
6. Deakers TW, Reynolds G, Stretton M, Newth CJ. Cuffed endotracheal tubes in pediatric
intensive care. J Pediatr 1994;125:57–62.
7. Weiss M, Dullenkopf A, Fischer JE, et al. Prospective randomized controlled multi-centre
trial of cuffed or uncuffed endotracheal tubes in small children. Br J Anaesth
2009;103:867–73.
8. Mossad E, Youssef G. Subglottic stenosis in children undergoing repair of congenital heart
defects. J Cardiothorac Vasc Anesth 2009;23:658–62.
9. Azarfarin R, Seyedhejazi M, Golzari SE, et al. Do pediatric patients undergoing cardiac
surgeries require larger-size cuffed endotracheal tubes? A prospective study. Paediatr
Anaesth 2013;23:228–32.
10. Dullenkopf A. Gerber AC, Weiss M. Tracheal sealing characteristics of a new paediatric
tracheal tube with high volume-low pressure polyurethane cuff. Acta Anaesthesiol
Scand 2005;49:232–7.
11. Salgo G, Schmitz G, Henze K, Stutz A. Evaluation of a new recommendation for
improved cuff tracheal tube size selection in infants and small children. Acta
Anaesthesiol Scand 2006;50:557–61.
12. Litman RS, Maxwell LG. Cuffed versus uncuffed endotracheal tubes in pediatric
anesthesia: the debate should finally end. Anesthesiology 2013;118:500–1.
13. Stevenson JG. Incidence of complications in pediatric transesophageal echocardiography:
experience in 1650 cases. J Am Soc Echocardiogr 1999;12:527–32.
14. Holzapfel L, Chevret S, Madinier G, et al. Influence of long-term oro- or nasotracheal
intubation on nosocomial maxillary sinusitis and pneumonia: results of a prospective,
randomized, clinical trial. Crit Care Med 1993;21:1132–38.
15. Bos AP, Tibboel D, Hazebroek FW, et al. Sinusitis: hidden source of sepsis in
postoperative pediatric intensive care patients. Crit Care Med 1989;17:886–8.
16. Hickey PR, Hansen DD, Norwood WI, Castaneda AR. Anesthetic complications in
surgery for congenital heart disease. Anesth Analg 1984;63:657–64.
17. Elwood T, Stillions DM, Woo DW, et al. Nasotracheal intubation: a randomized trial of
two methods. Anesthesiology 2002;96:51–3.
18. Akpek EA, Mutlu H, Kayhan Z. Difficult intubation in pediatric cardiac anesthesia. J
Cardiothorac Vasc Anesth 2004;18:610–2.
19. Heinrich S, Birkholz T, Ihmsen H, et al. Incidence and predictors of difficult
laryngoscopy in 11,219 pediatric anesthesia procedures. Paediatr Anaesth
2012;22:729–36.
20. Heinrich S, Birkholz T, Ihmsen H, et al. Incidence and predictors of poor laryngoscopic
view in children undergoing pediatric cardiac surgery. J Cardiothorac Vasc Anesth
2013;27:516–21.
21. Mallampati SR, Gatt SP, Gugino LD et al. A clinical sign to predict difficult tracheal
intubation: a prospective study. Can Anaesth Soc J 1985;32:429–34.
22. Apfelbaum JL, Hagberg CA. Caplan RA, et. al. Practice Guidelines for Management of
the Difficult Airway: An Updated Report by the American Society of
Anesthesiologists Task Force on Management of the Difficult Airway.
Anesthesiology 2013;118:251–70.
23. Markakis DA, Sayson SC, Schreiner MS. Insertion of the laryngeal mask airway in awake
infants with the Robin sequence. Anesth Analg 1992;75:822–4.
24. Park C, Bahk JH, Ahn WS, et al. The laryngeal mask airway in infants and children. Can
J Anaesth 2001;48:413–7.
25. Marraro GA. Chapter 72. Airway management. In : Bissonnette B, Dalens BJ (eds)
Pediatric Anesthesia: Principles and Practice. New York: McGraw-Hill, 2011, pp.
1177–9.
26. Holzman RS. Chapter 10. Induction of anesthesia, and maintenance of the airway in
infants and children. In: Davis PJ, Cladis FP, Motoyama EK (eds) Smith's Anesthesia
For Infants And Children, 8th edn. St. Louis: Mosby, 2011, pp. 357–63.
27. Fiadjoe JE, Stricker PA, Litman RS. Pediatric airway management. In: Gregory GA,
Andropoulos DB (eds) Gregory’s Pediatric Anesthesia, 5th edn. Oxford UK, Wiley
Blackwell, 2012, pp. 300–29.
28. Toursarkissian B, Fowler CL, Zweng TN, Kearney PA. Percutaneous dilational
tracheostomy in children and teenagers. J Pediatr Surg 1994;29:1421–4.
29. Dellinger RP. Fiberoptic bronchoscopy in adult airway management. Crit Care Med
1990;18:882–7.
30. Robles B, Hester J, Brock-Utne JG. Remember the gum-elastic bougie at extubation.
J.Clin.Anesth 1993; 5: 329–31.
31. Bedger RC, Jr., Chang JL. A jet-stylet endotracheal catheter for difficult airway
management. Anesthesiology 1987;66:221–3.
32. Hammer GB, Funck N, Rosenthal DN, Feinstein JA. A technique for maintenance of
airway access in infants with a difficult airway following tracheal extubation. Paediatr
Anaesth 2001;11:622–5.
33. Walker RW, Allen DL, Rothera MR. A fibreoptic intubation technique for children with
mucopolysaccharidoses using the laryngeal mask airway. Paediatr Anaesth 1997;7:
421–6.
34. Nitahara K, Watanabe R, Katori K, et al. Intubation of a child with a difficult airway
using a laryngeal mask airway and a guidewire and jet stylet. Anesthesiology
1999;91:330–1.
35. Remolina C, Khan AU, Santiago TV, Edelman NH. Positional hypoxemia in unilateral
lung disease. N Engl J Med 1981;304:523–5.
36. Heaf DP, Helms P, Gordon I, Turner HM. Postural effects on gas exchange in infants. N
Engl J Med 1983;308:1505–8.
37. Mansell A, Bryan C, Levison H. Airway closure in children. J Appl Physiol
1972;33:711–4.
38. Polgar G, Weng TR. The functional development of the respiratory system from the
period of gestation to adulthood. Am Rev Respir Dis 1979;120:625–95.
39. Weatherford DA, Stephenson JE, Taylor SM, Blackhurst D. Thoracoscopy versus
thoracotomy: indications and advantages. Am Surg 1995;61:83–6.
40. Mouroux J, Clary-Meinesz C, Padovani B, et al. Efficacy and safety of
videothoracoscopic lung biopsy in the diagnosis of interstitial lung disease. Eur J
Cardiothorac Surg 1997;11:22–6.
41. Angelillo-Mackinlay TA, Lyons GA, Chimondeguy DJ. VATS debridement versus
thoracotomy in the treatment of loculated postpneumonia empyema. Ann Thorac Surg
1996;61:1626–30.
42. Kubota H, Kubota Y, Toyoda Y. Selective blind endobronchial intubation in children and
adults. Anesthesiology 1987;67:587–9.
43. Lammers CR, Hammer GB, Brodsky JB, Cannon WB. Failure to separate and isolate the
lungs with an endotracheal tube positioned in the bronchus. Anesth Analg
1997;85:946–7.
44. Cullum AR, English IC, Branthwaite MA. Endobronchial intubation in infancy.
Anaesthesia 1973;28:66–70.
45. McLellan I. Endobronchial intubation in children. Anaesthesia 1974;29:757–8.
46. Yeh TF, Pildes RS, Salem MR. Treatment of persistent tension pneumothorax in a
neonate by selective bronchial intubation. Anesthesiology 1978;49:37–8.
47. Watson CB, Bowe EA, Burk W. One-lung anesthesia for pediatric thoracic surgery: a
new use for the fiberoptic bronchoscope. Anesthesiology 1982;56:314–5.
48. Hammer GB, Manos SJ, Smith BM. Single-lung ventilation in pediatric patients.
Anesthesiology1996;84:1503–6.
49. Ginsberg RJ. New technique for one-lung anesthesia using an endobronchial blocker. J
Thorac Cardiovasc Surg 1981;82:542–6.
50. Lin YC, Hackel A. Paediatric selective bronchial blocker. Paediatr Anaesth 1994; 4: 391–
2.
51. Hammer GB. Single-lung ventilation in infants and children. Paediatr Anaesth
2004;14:98–102.
52. Borchardt RA, LaQuaglia MP, McDowall RH, Wilson RS. Bronchial injury during lung
isolation in a pediatric patient. Anesth Analg 1998;87:324–5.
53. Guyton DC, Besselievre TR, Devidas M. A comparison of two different bronchial cuff
designs and four different bronchial cuff inflation methods. J Cardiothorac Vasc
Anesth 1997;11:599–603.
54. Takahashi M, Horinouchi T, Kato M, Hashimoto Y. Double-access-port endotracheal
tube for selective lung ventilation in pediatric patients. Anesthesiology 2000;93:308–
9.
55. Arndt GA, DeLessio ST, Kranner PW. One-lung ventilation when intubation is difficult –
presentation of a new endobronchial blocker. Acta Anaesthesiol Scand 1999;43:356–
8.
56. Hammer GB, Harrison TK, Vricella LA. Single lung ventilation in children using a new
paediatric bronchial blocker. Paediatr Anaesth 2002;12:69–72.
57. Kamaya H, Krishna PR. New endotracheal tube (Univent tube) for selective blockade of
one lung. Anesthesiology 1985;63:342–3.
58. Karwande SV. A new tube for single lung ventilation. Chest 1987;92:761–763.
59. Gayes JM. Pro: one-lung ventilation is best accomplished with the Univent endotracheal
tube. J Cardiothorac Vasc Anesth 1993; 7:103–7.
60. Hammer GB, Brodsky JB, Redpath JH, Cannon WB. The Univent tube for single-lung
ventilation in paediatric patients. Paediatr Anaesth 1998; 8: 55–7.
61. Slinger PD, Lesiuk L. Flow resistances of disposable double-lumen, single-lumen, and
Univent tubes. J Cardiothorac Vasc Anesth 1998;12:142–4.
62. Kelley JG, Gaba DM, Brodsky JB. Bronchial cuff pressures of two tubes used in thoracic
surgery. J Cardiothorac Vasc Anesth 1992; 6: 190–2.
63. Benumof JL, Gaughan SD, Ozaki G. The relationship among bronchial blocker cuff
inflation volume, proximal airway pressure, and seal of the bronchial blocker cuff. J
Cardiothorac Vasc Anesth 1992; 6: 404–8.
64. Brodsky, JB and Mark, JBD. A simple technique for accurate placement of double-lumen
endobronchial tubes. Anesth Review 1983;10, 26–30.
65. Brodsky JB, Macario A, Mark JB. Tracheal diameter predicts double-lumen tube size: a
method for selecting left double-lumen tubes. Anesth Analg 1996;82:861–4.
66. Slinger PD. Fiberoptic bronchoscopic positioning of double-lumen tubes. J Cardiothorac
Anesth 1989; 3: 486–496.
67. Benumof JL, Partridge BL, Salvatierra C, Keating J. Margin of safety in positioning
modern double-lumen endotracheal tubes. Anesthesiology 1987;67:729–38.
68. Knoll H, Ziegeler S, Schreiber JU, et al. Airway injuries after one-lung ventilation: a
comparison between double-lumen tube and endobronchial blocker: a randomized,
prospective, controlled trial. Anesthesiology 2006;105:471–7.
69. Benumof JL, Wahrenbrock EA. Blunted hypoxic pulmonary vasoconstriction by
increased lung vascular pressures. J Appl Physiol 1975;38:846–50.
70. Domino KB, Wetstein L, Glasser SA et al. Influence of mixed venous oxygen tension
(PVO2) on blood flow to atelectatic lung. Anesthesiology 1983;59:428–34.
71. Schwarzkopf K, Klein U, Schreiber T et al. Oxygenation during one-lung ventilation: the
effects of inhaled nitric oxide and increasing levels of inspired fraction of oxygen.
Anesth Analg 2001;92:842–7.
72. Fradj K, Samain E, Delefosse D . Placebo-controlled study of inhaled nitric oxide to treat
hypoxaemia during one-lung ventilation. Br J Anaesth 1999;82:208–12.
73. Byon HJ, Lee JW, Kim JK, et al. Anesthetic management of video-assisted thoracoscopic
surgery (VATS) in pediatric patients: the issue of safety in infant and younger
children. Korean J Anesthesiol 2010;59:99–103.
74. Mukhtar AM, Obayah GM, Elmasry A, Dessouky NM. The therapeutic potential of
intraoperative hypercapnia during video-assisted thoracoscopy in pediatric
patients. Anesth Analg 2008;106:84–8.
75. Yau KI, Fang LJ, Wu MH. Lung mechanics in infants with left-to-right shunt congenital
heart disease. Pediat .Pulmonol 1996;21:42–7.
76. Davies CJ, Cooper SG, Fletcher ME, et al. Total respiratory compliance in infants and
young children with congenital heart disease. Pediatr Pulmonol 1990; 8: 155–61.
77. Greenspan JS, Davis DA, Russo P et al. Infant thoracic surgery: procedure-dependent
pulmonary response. J Pediatr Surg 1996;31:878–80.
78. DiCarlo JV, Raphaely RC, Steven JM, et al. Pulmonary mechanics in infants after cardiac
surgery. Crit Care Med 1992;20:22–7.
79. Schindler MB, Bohn DJ, Bryan AC, et al. Increased respiratory system resistance and
bronchial smooth muscle hypertrophy in children with acute postoperative pulmonary
hypertension. Am J Respir Crit Care Med 1995;152:1347–52.
80. Freezer NJ, Lanteri CJ, Sly PD. Effect of pulmonary blood flow on measurements of
respiratory mechanics using the interrupter technique. J Appl Physiol 1993;74:1083–
8.
81. Stayer SA, Andropoulos DB, East DL, et al. Changes in pulmonary mechanics in infants
undergoing heart surgery. Anesth Analg 2004;98:49–55.
82. Davis DA, Tucker JA, Russo P. Management of airway obstruction in patients with
congenital heart defects. Ann Otol Rhinol Laryngol 1993;102:163–6.
83. Macnaughton PD, Braude S, Hunter DN. Changes in lung function and pulmonary
capillary permeability after cardiopulmonary bypass. Crit Care Med 1992;20:1289–
312.
84. Vincent RN, Lang P, Elixson EM, et al. Measurement of extravascular lung water in
infants and children after cardiac surgery. Am J Cardiol 1984;54:161–5.
85. Vincent RN, Lang P, Elixson EM, et al. Extravascular lung water in children immediately
after operative closure of either isolated atrial septal defect or ventricular septal
defect. Am J Cardiol 1985;56:536–9.
86. Griese M, Wilnhammer C, Jansen S, Rinker C. Cardiopulmonary bypass reduces
pulmonary surfactant activity in infants. J Thorac Cardiovasc Surg 1999;118:237–44.
87. Emhardt JD, Moorthy SS, Brown JW, et al. Chest radiograph changes after
cardiopulmonary bypass in children. J Cardiovasc Surg 1991;32:314–7.
88. Kawahito S, Kitahata H, Tanaka K, et al. Bronchospasm induced by cardiopulmonary
bypass. Ann Thorac Cardiovasc Surg 2001; 7: 49–51.
89. Asimakopoulos G, Smith PL, Ratnatunga CP, Taylor KM. Lung injury and acute
respiratory distress syndrome after cardiopulmonary bypass. Ann Thorac Surg
1999;68:1107–15.
90. Deal C, Osborn JJ, Miller GE, Jr., Gerbode F. Pulmonary compliance in congenital heart
disease and its relation to cardiopulmonary bypass. J Thorac Cardiovasc Surg
1968;55:320–7.
91. Rady MY, Ryan T, Starr NJ. Early onset of acute pulmonary dysfunction after
cardiovascular surgery: risk factors and clinical outcome. Crit Care Med
1997;25:1831–9.
92. Gilliland HE, Armstrong MA, McMurray TJ. The inflammatory response to pediatric
cardiac surgery: correlation of granulocyte adhesion molecule expression with
postoperative oxygenation. Anesth Analg 1999;89:1188–91.
93. Stayer SA, Andropoulos DB, East DL, et al. Predictors of duration of mechanical
ventilation after congenital heart surgery in infants. Anesthesiology 2002;97:A1224
(Abstract).
94. Guyton A.C. Effect of cardiac output by respiration, opening the Chest, and cardiac
tamponade. In: Guyton AC, Jones CE, Coleman CE (eds) Circulatory Physiology:
Cardiac Output And Its Regulation. Philadelphia: WB Saunders, 1991 pp. 378–86.
95. Weber KT, Janicki JS, Shroff S, Fishman AP. Contractile mechanics and interaction of
the right and left ventricles. Am J Cardiol 1981;47:686–95.
96. Lumb AB. The pulmonary circulation. In: Lumb AB (ed.) Nunn's Applied Respiratory
Physiology. Oxford: Butterworth-Heinemann, 2000, pp. 138–62.
97. Malik AB, Kidd BS. Independent effects of changes in H+ and CO2 concentrations on
hypoxic pulmonary vasoconstriction. J Appl Physiol 1973;34:318–23.
98. Berend N, Christopher KL, Voelkel NF. The effect of positive end-expiratory pressure on
functional residual capacity: role of prostaglandin production. Am Rev Respir Dis
1982;126:646–7.
99. Scharf SM, Brown R, Tow DE, Parisi AF. Cardiac effects of increased lung volume and
decreased pleural pressure in man. J Appl Physio 1979l;47:257–62.
100. Scharf SM, Brown R, Saunders N, Green LH. Effects of normal and loaded spontaneous
inspiration on cardiovascular function. J Appl Physiol 1979;47:582–90.
101. Chang AC, Zucker HA, Hickey PR, Wessel DL. Pulmonary vascular resistance in
infants after cardiac surgery: role of carbon dioxide and hydrogen ion. Crit Care Med
1995;23:568–74.
102. Grace MP, Greenbaum DM. Cardiac performance in response to PEEP in patients with
cardiac dysfunction. Crit Care Med 1982;10:358–60.
103. Mathru M, Rao TL, El Etr AA, Pifarre R. Hemodynamic response to changes in
ventilatory patterns in patients with normal and poor left ventricular reserve. Crit Care
Med 1982;10:423–6.
104. Shekerdemian LS, Bush A, Shore DF, et al. Cardiorespiratory responses to negative
pressure ventilation after tetralogy of Fallot repair: a hemodynamic tool for patients
with a low-output state. J Am Coll Cardiol 1999;33:549–5.
105. Habre W. Neonatal ventilation. Best Pract Res Clin Anaesthesiol. 2010;24:353–64.
106. Albuali WH, Singh RN, Fraser DD, et al. Have changes in ventilation practice improved
outcome in children with acute lung injury? Pediatr Crit Care Med. 2007;8:324–30.
107. Ålander M, Peltoniemi O, Saarela T, et al. Current trends in paediatric and neonatal
ventilatory care – a nationwide survey. Acta Paediatr. 2013;102:123–8.
108. Khemani RG, Conti D, Alonzo TA, et al. Effect of tidal volume in children with acute
hypoxemic respiratory failure. Intensive Care Med 2009;35:1428–37.
109. Shekerdemian LS, Bush A, Shore DF, et al. Cardiopulmonary interactions after Fontan
operations: augmentation of cardiac output using negative pressure ventilation.
Circulation 1997;96:3934–42.
110. Meliones JN, Bove EL, Dekeon MK, et al. High-frequency jet ventilation improves
cardiac function after the Fontan procedure. Circulation 1991;84:III364–III368.
111. Pontoppidan H, Wilson RS, Rie MA, Schneider RC. Respiratory intensive care.
Anesthesiology 1977;47:96–116.
112. Stayer SA, Shetty S, Andropoulos DB. Perioperative management of tetalogy of fallot
with absent pulmonary valve. Paediatr Anaesth 2002;12:705–11.
113. Habashi NM. Review Other approaches to open-lung ventilation: airway pressure
release ventilation. Crit Care Med 2005;33:S228–40.
114. Putensen C, Mutz N, Putensen-Himmer G, Zinserling J. Spontaneous breathing during
ventilatory support improves ventilation/perfusion distribution in patients with ARDS.
Am J Respir Crit Care Med 1999;159:1241–8.
115. Kaplan LJ, Bailey H, Formosa V. Airway pressure release ventilation increases cardiac
performance in patients with acute lung injury/adult respiratory distress syndrome.
Crit Care 2001; 5:221–6.
116. Schultz TR, Costarino AT, Durning SM, et al. Airway pressure release ventilation in
pediatrics. Ped Crit Care Med 2001;2:243–6.
117. Walsh MA, Merat M, La Rotta G, Joshi P, et al. Airway pressure release ventilation
improves pulmonary blood flow in infants after cardiac surgery. Crit Care Med
2011;39:2599–604.
118. Berry CB, Butler PJ, Myles PS. Lung management during cardiopulmonary bypass: is
continuous positive airways pressure beneficial? Br J Anaesth 1993;71:864–8.
119. Cogliati AA, Menichetti A, Tritapepe L, Conti G. Effects of three techniques of lung
management on pulmonary function during cardiopulmonary bypass. Acta
Anaesthesiol Belg 1996;47:73–80.
120. Tusman G, Bohm SH, Tempra A, et al. Effects of recruitment maneuver on atelectasis in
anesthetized children. Anesthesiology 2003;98:14–22.
121. Stayer SA, Andropoulos DB, Bent ST, et al. Volume ventilation of infants with
congenital heart disease: a comparison of Drager, NAD 6000 and Siemens, Servo
900C ventilators. Anesth Analg 2001;92:76–79.
122. Bachiller PR, McDonough JM, Feldman JM. Do new anesthesia ventilators deliver
small tidal volumes accurately during volume-controlled ventilation? Anesth Analg
2008;106:1392–4.
123. Dreyfuss D, Soler P, Basset G, Saumon G. High inflation pressure pulmonary edema.
Respective effects of high airway pressure, high tidal volume, and positive endexpiratory pressure. Am Rev Respir Dis 1988;137:1159–64.
124. Davis K, Jr., Branson RD, Campbell RS, Porembka DT. Comparison of volume control
and pressure control ventilation: is flow waveform the difference? J Trauma
1996;41:808–14.
125. Rappaport SH, Shpiner R, Yoshihara G, et al. Randomized, prospective trial of pressurelimited versus volume-controlled ventilation in severe respiratory failure. Crit Care
Med 1994;22:22–32.
126. Badgwell JM, Swan J, Foster AC. Volume-controlled ventilation is made possible in
infants by using compliant breathing circuits with large compression volume. Anesth
Analg 1996;82:719–23.
127. Badgewell JM, McLeod ME, Lerman J, et al. End-tidal PCO2 measurements sampled at
the distal and proximal ends of the endotracheal tube in infants and children. Anesth
Analg 1987;66:959–64.
128. Choudhury M, Kiran U, Choudhary SK, et al. Arterial-to-end-tidal carbon dioxide
tension difference in children with congenital heart disease. J Cardiothorac Vasc
Anesth 2006;20:196–201.
129. Kodali BS. Capnography outside the operating rooms. Anesthesiology 2013;118:192–
201.
130. Stayer SA, Bent ST, Campos CJ. Comparison of NAD 6000 and servo 900C ventilators
in an infant lung model. Anesth Analg 2000;90:315–21.
131. Ramamoorthy C, Tabbutt S, Kurth CD, et al. Effects of inspired hypoxic and
hypercapnic gas mixtures on cerebral oxygen saturation in neonates with
univentricular heart defects. Anesthesiology 2002;96:283–8.
132. Tabbutt S, Ramamoorthy C, Montenegro LM, et al. Impact of inspired gas mixtures on
preoperative infants with hypoplastic left heart syndrome during controlled
ventilation. Circulation 2001;104:I159–64.
133. Stayer S, Gouvion J, Evey L, Andropoulos D. Subambient gas delivery. Anesth Analg
2002;94:1674–5.
134. Kinsella JP, Neish SR, Ivy DD, et al. Clinical responses to prolonged treatment of
persistent pulmonary hypertension of the newborn with low doses of inhaled nitric
oxide. J Pediatr 1993;158:103–8.
135. Roberts JD, Polaner DM, Lang P, Zapol WM. Inhaled nitric oxide in persistent
pulmonary hypertension of the newborn. Lancet 1992;340:818–9.
136. Wessel DL, Adatia I, Giglia TM, et al. Use of inhaled nitric oxide and acetylcholine in
the evaluation of pulmonary hypertension and endothelial function after
cardiopulmonary bypass. Circulation 1993;88:2128–38.
137. Morris K, Beghetti M, Petros A. Comparison of hyperventilation and inhaled nitric
oxide for pulmonary hypertension after repair of congenital heart disease. Crit Care
Med 2000;28:2974–8.
138. Beghetti M, Silkoff PE, Caramori M, et al. Decreased exhaled nitric oxide may be a
marker of cardiopulmonary bypass-induced injury. Ann Thorac Surg 1998;66:532–4.
139. Gothberg S, Edberg KE. Inhaled nitric oxide to newborns and infants after congenital
heart surgery on cardiopulmonary bypass. A dose-response study. Scand Cardiovasc J
2000;34:154–8.
140. Day RW, Hawkins JA, McGough EC. Randomized controlled study of inhaled nitric
oxide after operation for congenital heart disease. Ann Thorac Surg 2000;69:1907–12.
141. Curran RD, Mavroudis C, Backer CL, et al. Inhaled nitric oxide for children with
congenital heart disease and pulmonary hypertension. Ann Thorac Surg
1995;60:1765–71.
142. Sokol J, Jacobs SE, Bohn D. Inhaled nitric oxide for acute hypoxemic respiratory failure
in children and adults. Cochrane Database Syst Rev 2003;1:CD002787.
Related documents