1. Trang chủ
  2. » Tất cả

Đề ôn thi thử môn hóa (137)

6 0 0

Đang tải... (xem toàn văn)

THÔNG TIN TÀI LIỆU

Thông tin cơ bản

Định dạng
Số trang 6
Dung lượng 410,13 KB

Nội dung

878 43 cm 23 cm 44 cm Filter holder Ultrafiltration scale Heparin pump Ultrafiltrate pump Arterial pressure connector Blood pump Prefilter pressure connector Venous electroclamp Infusion pump Bubble d[.]

C Mammen and D Askenazi 878 Filter holder b 15 Control panel Infusion scale Ultrafiltration scale 13 Ultrafiltrate pump Venous pressure connector Drip chamber holder 11 Bubble detector Blood leakage detector (BLD) 12 Infusion pump Arterial pressure connector Blood pump Venous electroclamp Prefilter pressure connector 44 cm c Fig 44.2 (continued) 23 cm 43 cm Heparin pump 14 44  Neonatal Acute Kidney Injury the desired length prior has led to fewer complications and longer duration of use compared to other hemodialysis catheters (author personal communication) Clearly, as these devices become mainstream, there will be lower risks associated with performing extracorporeal forms of RRT in neonates The risk/benefit ratio will allow for more judicious use and earlier intervention and will likely serve as a profound improvement in the care of critically ill neonates With the development of smaller filters, it has already become possible to use CRRT in neonates when they require it This area of investigation and clinical use is exciting, and we anticipate that CRRT for infants will be greatly enhanced with the use of these safer devices References Bellomo R, Ronco C, Kellum JA, Mehta RL, Palevsky P, Workgroup ADQI.  Acute renal failure  – definition, outcome measures, animal models, fluid therapy and information technology needs: the Second International Consensus Conference of the Acute Dialysis Quality Initiative (ADQI) Group Crit Care 2004;8(4):R204–12 Mehta RL, Kellum JA, Shah SV, Molitoris BA, Ronco C, Warnock DG, et al Acute kidney injury network: report of an initiative to improve outcomes in acute kidney injury Crit Care 2007;11(2):R31 Kellum JA, Lameire N, Work KAG.  Diagnosis, evaluation, and management of acute kidney injury: a KDIGO summary (part 1) Crit Care 2013;17(1):204 Veille JC, Hanson RA, Tatum K, Kelley K. Quantitative assessment of human fetal renal blood flow Am J Obstet Gynecol 1993;169(6):1399–402 Chevalier RL.  Developmental renal physiology of the low birth weight pre-term newborn J Urol 1996;156(2 pt 2):714–9 Bueva A, Guignard JP. Renal function in preterm neonates Pediatr Res 1994;36(5):572–7 Gallini F, Maggio L, Romagnoli C, Marrocco G, Tortorolo G. Progression of renal function in preterm neonates with gestational age < or = 32 weeks Pediatr Nephrol 2000;15(1–2):119–24 Zappitelli M, Ambalavanan N, Askenazi DJ, Moxey-­ Mims MM, Kimmel PL, Star RA, et al Developing a neonatal acute kidney injury research definition: a report from the NIDDK neonatal AKI workshop Pediatr Res 2017;82(4):569–73 Jetton JG, Boohaker LJ, Sethi SK, Wazir S, Rohatgi S, Soranno DE, et al Incidence and outcomes of neonatal acute kidney injury (AWAKEN): a multicentre, 879 multinational, observational cohort study Lancet Child Adolesc Health 2017;1(3):184–94 10 Tóth-Heyn P, Drukker A, Guignard JP.  The stressed neonatal kidney: from pathophysiology to clinical management of neonatal vasomotor nephropathy Pediatr Nephrol 2000;14(3):227–39 11 Goldstein SL, Currier H, Cd G, Cosio CC, Brewer ED, Sachdeva R.  Outcome in children receiving continuous venovenous hemofiltration Pediatrics 2001;107(6):1309–12 12 Selewski DT, Cornell TT, Lombel RM, Blatt NB, Han YY, Mottes T, et  al Weight-based determination of fluid overload status and mortality in pediatric intensive care unit patients requiring continuous renal replacement therapy Intensive Care Med 2011;37(7):1166–73 13 van Asperen Y, Brand PL, Bekhof J.  Reliability of the fluid balance in neonates Acta Paediatr 2012;101(5):479–83 14 Askenazi DJ, Koralkar R, Hundley HE, Montesanti A, Patil N, Ambalavanan N.  Fluid overload and mortality are associated with acute kidney injury in sick near-term/term neonate Pediatr Nephrol 2013;28(4):661–6 15 Lee ST, Cho H. Fluid overload and outcomes in neonates receiving continuous renal replacement therapy Pediatr Nephrol 2016;31(11):2145–52 16 Wilder NS, Yu S, Donohue JE, Goldberg CS, Blatt NB. Fluid overload is associated with late poor outcomes in neonates following cardiac surgery Pediatr Crit Care Med 2016;17(5):420–7 17 Mah KE, Hao S, Sutherland SM, Kwiatkowski DM, Axelrod DM, Almond CS, et al Fluid overload independent of acute kidney injury predicts poor outcomes in neonates following congenital heart surgery Pediatr Nephrol 2018;33(3):511–20 18 Selewski DT, Askenazi DJ, Bridges BC, Cooper DS, Fleming GM, Paden ML, et  al The impact of fluid overload on outcomes in children treated with extracorporeal membrane oxygenation: a multicenter retrospective cohort study Pediatr Crit Care Med 2017;18(12):1126–35 19 Selewski DT, Akcan-Arikan A, Bonachea EM, Gist KM, Goldstein SL, Hanna M, et  al The impact of fluid balance on outcomes in critically ill near-term/ term neonates: a report from the AWAKEN study group Pediatr Res 2018; 20 Lai WW, Mertens L, Cohen M, Geva T Echocardiography in pediatric and congenital heart disease: from fetus to adult 2nd ed Chichester, West Sussex; Hoboken, NJ: Wiley; 2016 p. 785 21 Carlotti AP, Carvalho WB.  Abdominal compart ment syndrome: a review Pediatr Crit Care Med 2009;10(1):115–20 22 Mathew OP, Jones AS, James E, Bland H, Groshong T.  Neonatal renal failure: usefulness of diagnostic indices Pediatrics 1980;65(1):57–60 23 Gubhaju L, Sutherland MR, Horne RS, Medhurst A, Kent AL, Ramsden A, et  al Assessment of renal functional maturation and injury in preterm neonates 880 during the first month of life Am J Physiol Renal Physiol 2014;307(2):F149–58 24 Ishizaki Y, Isozaki-Fukuda Y, Kojima T, Sasai M, Matsuzaki S, Kobayashi Y.  Evaluation of diagnostic criteria of acute renal failure in premature infants Acta Paediatr J 1993;35(4):311–5 25 Cantarovich F, Rangoonwala B, Lorenz H, Verho M, Esnault VL, Group H-DFiARFS.  High-dose ­furosemide for established ARF: a prospective, randomized, double-blind, placebo-controlled, multicenter trial Am J Kidney Dis 2004;44(3):402–9 26 van der Voort PH, Boerma EC, Koopmans M, Zandberg M, de Ruiter J, Gerritsen RT, et  al Furosemide does not improve renal recovery after hemofiltration for acute renal failure in critically ill patients: a double blind randomized controlled trial Crit Care Med 2009;37(2):533–8 27 Kleinknecht D, Ganeval D, Gonzalez-Duque LA, Fermanian J. Furosemide in acute oliguric renal failure A controlled trial Nephron 1976;17(1):51–8 28 Bagshaw SM, Bellomo R, Kellum JA. Oliguria, volume overload, and loop diuretics Crit Care Med 2008;36(4 Suppl):S172–8 29 Laudignon N, Ciampi A, Coupal L, Chemtob S, Aranda JV. Furosemide and ethacrynic acid: risk factors for the occurrence of serum electrolyte abnormalities and metabolic alkalosis in newborns and infants Acta Paediatr Scand 1989;78(1):133–5 30 Brater DC. The In vivo study of drug action: principles and applications of kinetic-dynamic modelling In In: van Boxtel CJ, Holford NH, Danhof M, editors Diuretic pharmacokinetics and pharmacodynamics Amsterdam: Elsevier Science; 1992 p. 253–75 31 Prandota J. High doses of furosemide in children with acute renal failure A preliminary retrospective study Int Urol Nephrol 1991;23(4):383–92 32 Mirochnick MH, Miceli JJ, Kramer PA, Chapron DJ, Raye JR.  Furosemide pharmacokinetics in very low birth weight infants J Pediatr 1988;112(4):653–7 33 Singh NC, Kissoon N, al Mofada S, Bennett M, Bohn DJ.  Comparison of continuous versus intermittent furosemide administration in postoperative pediatric cardiac patients Crit Care Med 1992;20(1):17–21 34 Luciani GB, Nichani S, Chang AC, Wells WJ, Newth CJ, Starnes VA. Continuous versus intermittent furosemide infusion in critically ill infants after open heart operations Ann Thorac Surg 1997;64(4):1133–9 35 Wilson NJ, Adderley RJ, McEniery JA Supraventricular tachycardia associated with continuous furosemide infusion Can J Anaesth 1991;38(4 Pt 1):502–5 36 Bagshaw SM, Darmon M, Ostermann M, Finkelstein FO, Wald R, Tolwani AJ, et  al Current state of the art for renal replacement therapy in critically ill patients with acute kidney injury Intensive Care Med 2017;43(6):841–54 37 Delgado MM, Rohatgi R, Khan S, Holzman IR, Satlin LM. Sodium and potassium clearances by the matur- C Mammen and D Askenazi ing kidney: clinical-molecular correlates Pediatr Nephrol 2003;18(8):759–67 38 Sulyok E, Németh M, Tényi I, Csaba IF, Varga F, Györy E, et al Relationship between maturity, electrolyte balance and the function of the renin-­angiotensin-­ aldosterone system in newborn infants Biol Neonate 1979;35(1–2):60–5 39 Stefano JL, Norman ME, Morales MC, Goplerud JM, Mishra OP, Delivoria-Papadopoulos M.  Decreased erythrocyte Na+,K(+)-ATPase activity associated with cellular potassium loss in extremely low birth weight infants with nonoliguric hyperkalemia J Pediatr 1993;122(2):276–84 40 Sato K, Kondo T, Iwao H, Honda S, Ueda K. Internal potassium shift in premature infants: cause of nonoliguric hyperkalemia J Pediatr 1995;126(1):109–13 41 Lui K, Thungappa U, Nair A, John E.  Treatment with hypertonic dextrose and insulin in severe hyperkalaemia of immature infants Acta Paediatr 1992;81(3):213–6 42 Greenough A, Emery EF, Brooker R, Gamsu HR. Salbutamol infusion to treat neonatal hyperkalaemia J Perinat Med 1992;20(6):437–41 43 Ohlsson A, Hosking M.  Complications follow ing oral administration of exchange resins in extremely low-birth-weight infants Eur J Pediatr 1987;146(6):571–4 44 Rugolotto S, Gruber M, Solano PD, Chini L, Gobbo S, Pecori S.  Necrotizing enterocolitis in a 850 gram infant receiving sorbitol-free sodium polystyrene sulfonate (Kayexalate): clinical and histopathologic findings J Perinatol 2007;27(4):247–9 45 Bennett LN, Myers TF, Lambert GH. Cecal perforation associated with sodium polystyrene sulfonate-­sorbitol enemas in a 650 gram infant with hyperkalemia Am J Perinatol 1996;13(3):167–70 46 Grammatikopoulos T, Greenough A, Pallidis C, Davenport M.  Benefits and risks of calcium resonium therapy in hyperkalaemic preterm infants Acta Paediatr 2003;92(1):118–20 47 Thompson K, Flynn J, Okamura D, Zhou L.  Pretreatment of formula or expressed breast milk with sodium polystyrene sulfonate (Kayexalate(®)) as a treatment for hyperkalemia in infants with acute or chronic renal insufficiency J Ren Nutr 2013;23(5):333–9 48 Cameron JC, Kennedy D, Feber J, Wong E, Geier P, Vaillancourt R.  Pretreatment of infant formula with sodium polystyrene sulfonate: focus on optimal amount and contact time Paediatr Drugs 2013;15(1):43–8 49 Taylor JM, Oladitan L, Carlson S, Hamilton-­ Reeves JM.  Renal formulas pretreated with medications alters the nutrient profile Pediatr Nephrol 2015;30(10):1815–23 50 Edelmann CM, Soriano JR, Boichis H, Gruskin AB, Acosta MI.  Renal bicarbonate reabsorption and hydrogen ion excretion in normal infants J Clin Invest 1967;46(8):1309–17 44  Neonatal Acute Kidney Injury 51 Brodehl J. Assessment and interpretation of the tubular threshold for phosphate in infants and children Pediatr Nephrol 1994;8(5):645 52 Ferrara E, Lemire J, Reznik VM, Grimm PC. Dietary phosphorus reduction by pretreatment of human breast milk with sevelamer Pediatr Nephrol 2004;19(7):775–9 53 Raaijmakers R, Houkes LM, Schroder CH, Willems JL, Monnens LA.  Pre-treatment of dairy and breast milk with sevelamer hydrochloride and sevelamer carbonate to reduce phosphate Perit Dial Int 2013;33(5):565–72 54 Spinozzi NS, Nelson P.  Nutrition support in the newborn intensive care unit J Ren Nutrition 1996;6(4):188–97 55 Nutrition of the preterm infant: Scientific basis and practical guidelines ed Tsang RC, Uauy R, Koletzko B, Zlotkin S, editors Cincinnati: Digital Education Publishing, Inc; 2005 56 Fivez T, Kerklaan D, Mesotten D, Verbruggen S, Wouters PJ, Vanhorebeek I, et  al Early versus late parenteral nutrition in critically ill children N Engl J Med 2016;374(12):1111–22 57 Clark RH, Bloom BT, Spitzer AR, Gerstmann DR. Empiric use of ampicillin and cefotaxime, compared with ampicillin and gentamicin, for neonates at risk for sepsis is associated with an increased risk of neonatal death Pediatrics 2006;117(1): 67–74 58 Rhone ET, Carmody JB, Swanson JR, Charlton JR.  Nephrotoxic medication exposure in very low birth weight infants J Matern Fetal Neonatal Med 2014;27(14):1485–90 59 Rao SC, Srinivasjois R, Hagan R, Ahmed M.  One dose per day compared to multiple doses per day of gentamicin for treatment of suspected or proven sepsis in neonates Cochrane Database Syst Rev 2011;11:CD005091 60 Eslami Z, Shajari A, Kheirandish M, Heidary A. Theophylline for prevention of kidney dysfunction in neonates with severe asphyxia Iran J Kidney Dis 2009;3(4):222–6 61 Cattarelli D, Spandrio M, Gasparoni A, Bottino R, Offer C, Chirico G. A randomised, double blind, placebo controlled trial of the effect of theophylline in prevention of vasomotor nephropathy in very preterm neonates with respiratory distress syndrome Arch Dis Child Fetal Neonatal Ed 2006;91(2):F80–4 62 Bakr AF.  Prophylactic theophylline to prevent renal dysfunction in newborns exposed to perinatal asphyxia–a study in a developing country Pediatr Nephrol 2005;20(9):1249–52 63 Jenik AG, Ceriani Cernadas JM, Gorenstein A, Ramirez JA, Vain N, Armadans M, et al A randomized, double-blind, placebo-controlled trial of the effects of prophylactic theophylline on renal function in term neonates with perinatal asphyxia Pediatrics 2000;105(4):E45 64 Raina A, Pandita A, Harish R, Yachha M, Jamwal A.  Treating perinatal asphyxia with theophylline at 881 birth helps to reduce the severity of renal dysfunction in term neonates Acta Paediatr 2016;105(10):e448–51 65 Carmody JB, Swanson JR, Rhone ET, Charlton JR.  Recognition and reporting of AKI in very low birth weight infants Clin J Am Soc Nephrol 2014;9(12):2036–43 66 Aviles-Otero N, Kumar R, Khalsa DD, Green G, Carmody JB.  Caffeine exposure and acute kidney injury in premature infants with necrotizing enterocolitis and spontaneous intestinal perforation Pediatr Nephrol 2019;34(4):729–36 67 Harer MW, Askenazi DJ, Boohaker LJ, Carmody JB, Griffin RL, Guillet R, et al Association between early caffeine citrate administration and risk of acute kidney injury in preterm neonates: results from the AWAKEN study JAMA Pediatr 2018;172(6):e180322 68 Sinha R, Dugar P. Rasburicase for acute kidney injury Indian Pediatr 2013;50(11):1051–2 69 Canpolat FE, Cekmez F. Rasburicase for hyperuricemia in an extremely low birth weight infant Indian Pediatr 2011;48(7):573–4 70 Hobbs DJ, Steinke JM, Chung JY, Barletta GM, Bunchman TE. Rasburicase improves hyperuricemia in infants with acute kidney injury Pediatr Nephrol 2010;25(2):305–9 71 Nguyen AP, Ness GL.  Hemolytic anemia following rasburicase administration: a review of published reports J Pediatr Pharmacol Ther 2014;19(4):310–6 72 Batshaw ML, Brusilow SW.  Treatment of hyperammonemic coma caused by inborn errors of urea synthesis J Pediatr 1980;97(6):893–900 73 Gortner L, Leupold D, Pohlandt F, Bartmann P.  Peritoneal dialysis in the treatment of metabolic crises caused by inherited disorders of organic and amino acid metabolism Acta Paediatr Scand 1989;78(5):706–11 74 Selewski DT, Charlton JR, Jetton JG, Guillet R, Mhanna MJ, Askenazi DJ, et al Neonatal acute kidney injury Pediatrics 2015;136(2):e463–73 75 Moghal NE, Embleton ND.  Management of acute renal failure in the newborn Semin Fetal Neonatal Med 2006;11(3):207–13 76 Jetton JG, Boohaker LJ, Sethi SK, Wazir S, Rohatgi S, Soranno DE, et al Incidence and outcomes of neonatal acute kidney injury (AWAKEN): a multicentre, multinational, observational cohort study Lancet Child Adolesc Health 2017;1(3):184–94 77 Kaddourah A, Basu RK, Bagshaw SM, Goldstein SL, Investigators A. Epidemiology of acute kidney injury in critically ill children and young adults N Engl J Med 2017;376(1):11–20 78 Raina R, Chauvin AM, Bunchman T, Askenazi D, Deep A, Ensley MJ, et al Treatment of AKI in developing and developed countries: an international survey of pediatric dialysis modalities PLoS One 2017;12(5):e0178233 79 Chan KL, Ip P, Chiu CS, Cheung YF.  Peritoneal dialysis after surgery for congenital heart disease in infants and young children Ann Thorac Surg 2003;76(5):1443–9 882 80 Sasser WC, Dabal RJ, Askenazi DJ, Borasino S, Moellinger AB, Kirklin JK, et  al Prophylactic peritoneal dialysis following cardiopulmonary bypass in children is associated with decreased inflammation and improved clinical outcomes Congenit Heart Dis 2014;9(2):106–15 81 Kwiatkowski DM, Goldstein SL, Cooper DS, Nelson DP, Morales DL, Krawczeski CD.  Peritoneal dialysis vs furosemide for prevention of fluid overload in infants after cardiac surgery: a randomized clinical trial JAMA Pediatr 2017;171(4):357–64 82 Yu JE, Park MS, Pai KS. Acute peritoneal dialysis in very low birth weight neonates using a vascular catheter Pediatr Nephrol 2010;25(2):367–71 83 Harshman LA, Muff-Luett M, Neuberger ML, Dagle JM, Shilyansky J, Nester CM, et al Peritoneal dialysis in an extremely low-birth-weight infant with acute kidney injury Clin Kidney J 2014;7(6):582–5 84 Cullis B, Abdelraheem M, Abrahams G, Balbi A, Cruz DN, Frishberg Y, et  al Peritoneal dialysis for acute kidney injury Perit Dial Int 2014;34(5):494–517 85 Daschner M, Schaefer F.  Emergency dialysis in neonatal metabolic crises Adv Ren Replace Ther 2002;9(1):63–9 86 Arbeiter AK, Kranz B, Wingen AM, Bonzel KE, Dohna-Schwake C, Hanssler L, et  al Continuous venovenous haemodialysis (CVVHD) and continuous peritoneal dialysis (CPD) in the acute management of 21 children with inborn errors of metabolism Nephrol Dial Transplant 2010;25(4):1257–65 87 Picca S, Dionisi-Vici C, Bartuli A, De Palo T, Papadia F, Montini G, et  al Short-term survival of hyperammonemic neonates treated with dialysis Pediatr Nephrol 2015;30(5):839–47 88 Auron A, Warady BA, Simon S, Blowey DL, Srivastava T, Musharaf G, et al Use of the multipurpose drainage catheter for the provision of acute peritoneal dialysis in infants and children Am J Kidney Dis 2007;49(5):650–5 C Mammen and D Askenazi 89 Bridges BC, Askenazi DJ, Smith J, Goldstein SL. Pediatric renal replacement therapy in the intensive care unit Blood Purif 2012;34(2):138–48 90 Cullis B, Feehally J.  Locally prepared solutions for treating AKI in low-resource environments Perit Dial Int 2018;38(4):240–1 91 Rajpoot DK, Gargus JJ.  Acute hemodialysis for hyperammonemia in small neonates Pediatr Nephrol 2004;19(4):390–5 92 Fleming GM, Askenazi DJ, Bridges BC, Cooper DS, Paden ML, Selewski DT, et  al A multicenter international survey of renal supportive therapy during ECMO: the Kidney Intervention During Extracorporeal Membrane Oxygenation (KIDMO) group ASAIO J 2012;58(4):407–14 93 Sadowski RH, Harmon WE, Jabs K. Acute hemodialysis of infants weighing less than five kilograms Kidney Int 1994;45(3):903–6 94 Askenazi DJ, Goldstein SL, Koralkar R, Fortenberry J, Baum M, Hackbarth R, et  al Continuous renal replacement therapy for children ≤10 kg: a report from the prospective pediatric continuous renal replacement therapy registry J Pediatr 2013;162(3):587–92 95 Askenazi D, Ingram D, White S, Cramer M, Borasino S, Coghill C, et  al Smaller circuits for smaller patients: improving renal support therapy with Aquadex Pediatr Nephrol 2016;31(5):853–60 96 Coulthard MG, Crosier J, Griffiths C, Smith J, Drinnan M, Whitaker M, et al Haemodialysing babies weighing

Ngày đăng: 28/03/2023, 11:25

w