Skip to main content
Top
Published in: Pediatric Cardiology 7/2020

01-10-2020 | Mitral Valve Replacement | Original Article

Mitral Valve Replacement in Pediatrics Using an Extracellular Matrix Cylinder Valve: A Case Series

Published in: Pediatric Cardiology | Issue 7/2020

Login to get access

Abstract

Mitral valve replacement (MVR) in children under 2 years is associated with significant morbidity and mortality. Decellularized porcine intestinal submucosa is a commercially available formulation of an extracellular matrix (ECM) with an indication for cardiac tissue repair. The present study reports our experience using ECM cylinder valves in patients for MVR. A retrospective review of patients under 2 years who underwent ECM custom-made cylinder mitral valve (ECM-MV) replacement was performed. Clinical, demographic, operative and post-operative follow-up data, including serial echocardiographic data are presented. Eight patients (age 5.6 ± 1.6 months; weight: 6.0 ± 1.1 kg) were identified who underwent ECM-MVR. There was one in-hospital death and no major neurological events. Six patients underwent replacement of their cylinder valve with either a Melody valve inside the ECM-MVR (n = 3), a mechanical valve (n = 2), or a decellularized bovine pericardial cylinder valve (n = 1). The mean time to replacement surgery was 8.4 ± 2.6 months after ECM-MV. The indications for replacement of ECM-MV included mitral stenosis/regurgitation (n = 4) or dehiscence (n = 2). One remaining patient is 24 months from ECM-MV, with trivial regurgitation and no stenosis. Mitral valve creation using ECM is an option for MVR in pediatrics, avoiding anticoagulation, and provides a suitable construct for later placement of a Melody valve, extending surgical and non-surgical options. However, the durability of the native ECM-MV in the mitral position is concerning considering the high re-intervention rate in a relatively short time period. Further studies are needed to determine the longer-term outcomes of this valve in this complex patient population.
Literature
1.
go back to reference Sawan EB, Brink J, Soquet J, Liava AM, Brizard CP, Konstantinov IE et al (2017) The ordeal of left atrioventricular valve replacement in children under 1 year of age. Interact Cardiovasc Thorac Surg 25(2):317–322PubMed Sawan EB, Brink J, Soquet J, Liava AM, Brizard CP, Konstantinov IE et al (2017) The ordeal of left atrioventricular valve replacement in children under 1 year of age. Interact Cardiovasc Thorac Surg 25(2):317–322PubMed
2.
go back to reference Selamet Tierney ES, Pigula FA, Berul CI, Lock JE, del Nido PJ, McElhinney DB (2008) Mitral valve replacement in infants and children 5 years of age or younger: evolution in practice and outcome over three decades with a focus on supra-annular prosthesis implantation. J Thorac Cardiovasc Surg. 136(4):954–961PubMed Selamet Tierney ES, Pigula FA, Berul CI, Lock JE, del Nido PJ, McElhinney DB (2008) Mitral valve replacement in infants and children 5 years of age or younger: evolution in practice and outcome over three decades with a focus on supra-annular prosthesis implantation. J Thorac Cardiovasc Surg. 136(4):954–961PubMed
3.
go back to reference Beierlein W, Becker V, Yates R, Tsang V, Elliott M, de Leval M et al (2007) Long-term follow-up after mitral valve replacement in childhood: poor event-free survival in the young child. Eur J Cardiothorac Surg 31(5):860–865PubMed Beierlein W, Becker V, Yates R, Tsang V, Elliott M, de Leval M et al (2007) Long-term follow-up after mitral valve replacement in childhood: poor event-free survival in the young child. Eur J Cardiothorac Surg 31(5):860–865PubMed
4.
go back to reference Abdullah I, Ramirez FB, McElhinney DB, Lock JE, del Nido PJ, Emani S (2012) Modification of a stented bovine jugular vein conduit (melody valve) for surgical mitral valve replacement. Ann Thorac Surg 94(4):e97–e98PubMed Abdullah I, Ramirez FB, McElhinney DB, Lock JE, del Nido PJ, Emani S (2012) Modification of a stented bovine jugular vein conduit (melody valve) for surgical mitral valve replacement. Ann Thorac Surg 94(4):e97–e98PubMed
5.
go back to reference Alsoufi B, Manlhiot C, McCrindle BW, Al-Halees Z, Sallehuddin A, Al-Oufi S et al (2010) Results after mitral valve replacement with mechanical prostheses in young children. J Thorac Cardiovasc Surg 139(5):1189–1196PubMed Alsoufi B, Manlhiot C, McCrindle BW, Al-Halees Z, Sallehuddin A, Al-Oufi S et al (2010) Results after mitral valve replacement with mechanical prostheses in young children. J Thorac Cardiovasc Surg 139(5):1189–1196PubMed
6.
go back to reference Caldarone CA, Raghuveer G, Hills CB, Atkins DL, Burns TL, Behrendt DM et al (2001) Long-term survival after mitral valve replacement in children aged <5 years: a multi-institutional study. Circulation 104(12 Suppl 1):I143–I147PubMed Caldarone CA, Raghuveer G, Hills CB, Atkins DL, Burns TL, Behrendt DM et al (2001) Long-term survival after mitral valve replacement in children aged <5 years: a multi-institutional study. Circulation 104(12 Suppl 1):I143–I147PubMed
7.
go back to reference Scholl FG, Boucek MM, Chan KC, Valdes-Cruz L, Perryman R (2010) Preliminary experience with cardiac reconstruction using decellularized porcine extracellular matrix scaffold: human applications in congenital heart disease. World J Pediatr Congenit Heart Surg 1(1):132–136PubMed Scholl FG, Boucek MM, Chan KC, Valdes-Cruz L, Perryman R (2010) Preliminary experience with cardiac reconstruction using decellularized porcine extracellular matrix scaffold: human applications in congenital heart disease. World J Pediatr Congenit Heart Surg 1(1):132–136PubMed
8.
go back to reference Gerdisch MW, Shea RJ, Barron MD (2014) Clinical experience with CorMatrix extracellular matrix in the surgical treatment of mitral valve disease. J Thorac Cardiovasc Surg 148(4):1370–1378PubMed Gerdisch MW, Shea RJ, Barron MD (2014) Clinical experience with CorMatrix extracellular matrix in the surgical treatment of mitral valve disease. J Thorac Cardiovasc Surg 148(4):1370–1378PubMed
9.
go back to reference Fallon AM, Goodchild TT, Cox JL, Matheny RG (2014) In vivo remodeling potential of a novel bioprosthetic tricuspid valve in an ovine model. J Thorac Cardiovasc Surg 148(1):333–40.e1PubMed Fallon AM, Goodchild TT, Cox JL, Matheny RG (2014) In vivo remodeling potential of a novel bioprosthetic tricuspid valve in an ovine model. J Thorac Cardiovasc Surg 148(1):333–40.e1PubMed
10.
go back to reference Woo JS, Fishbein MC, Reemtsen B (2016) Histologic examination of decellularized porcine intestinal submucosa extracellular matrix (CorMatrix) in pediatric congenital heart surgery. Cardiovasc Pathol 25(1):12–17CrossRef Woo JS, Fishbein MC, Reemtsen B (2016) Histologic examination of decellularized porcine intestinal submucosa extracellular matrix (CorMatrix) in pediatric congenital heart surgery. Cardiovasc Pathol 25(1):12–17CrossRef
11.
go back to reference Cua CL, Kollins K, McConnell PI (2014) Echocardiographic analysis of an extracellular matrix tricuspid valve. Echocardiography 31(8):E264–E266CrossRef Cua CL, Kollins K, McConnell PI (2014) Echocardiographic analysis of an extracellular matrix tricuspid valve. Echocardiography 31(8):E264–E266CrossRef
12.
go back to reference Gilbert CL, Gnanapragasam J, Benhaggen R, Novick WM (2011) Novel use of extracellular matrix graft for creation of pulmonary valved conduit. World J Pediatr Congenit Heart Surg 2(3):495–501CrossRef Gilbert CL, Gnanapragasam J, Benhaggen R, Novick WM (2011) Novel use of extracellular matrix graft for creation of pulmonary valved conduit. World J Pediatr Congenit Heart Surg 2(3):495–501CrossRef
13.
go back to reference Zaidi AH, Nathan M, Emani S, Baird C, del Nido PJ, Gauvreau K et al (2014) Preliminary experience with porcine intestinal submucosa (CorMatrix) for valve reconstruction in congenital heart disease: histologic evaluation of explanted valves. J Thorac Cardiovasc Surg 148(5):2216–25.e1CrossRef Zaidi AH, Nathan M, Emani S, Baird C, del Nido PJ, Gauvreau K et al (2014) Preliminary experience with porcine intestinal submucosa (CorMatrix) for valve reconstruction in congenital heart disease: histologic evaluation of explanted valves. J Thorac Cardiovasc Surg 148(5):2216–25.e1CrossRef
14.
go back to reference Bibevski S, Levy A, Scholl FG (2017) Mitral valve replacement using a handmade construct in an infant. Interact Cardiovasc Thorac Surg 24(4):639–640PubMed Bibevski S, Levy A, Scholl FG (2017) Mitral valve replacement using a handmade construct in an infant. Interact Cardiovasc Thorac Surg 24(4):639–640PubMed
15.
go back to reference Bibevski S, Scholl FG (2015) Feasibility and early effectiveness of a custom, hand-made systemic atrioventricular valve using porcine extracellular matrix (CorMatrix) in a 4-month-old infant. Ann Thorac Surg 99(2):710–712CrossRef Bibevski S, Scholl FG (2015) Feasibility and early effectiveness of a custom, hand-made systemic atrioventricular valve using porcine extracellular matrix (CorMatrix) in a 4-month-old infant. Ann Thorac Surg 99(2):710–712CrossRef
16.
go back to reference Cua CL, Johnston P, Harmon J, Shelton K, McConnell PI (2017) Custom extracellular matrix cylinder mitral valve in a pediatric patient. Echocardiography 34(12):1956–1958CrossRef Cua CL, Johnston P, Harmon J, Shelton K, McConnell PI (2017) Custom extracellular matrix cylinder mitral valve in a pediatric patient. Echocardiography 34(12):1956–1958CrossRef
17.
go back to reference Eltayeb OM, Readdy WJ, Monge MC, Forbess JM, Sarwark AE, Patel A et al (2019) Mitral valve replacement in infants using a 15-mm mechanical valve. Ann Thorac Surg 108(2):552–557CrossRef Eltayeb OM, Readdy WJ, Monge MC, Forbess JM, Sarwark AE, Patel A et al (2019) Mitral valve replacement in infants using a 15-mm mechanical valve. Ann Thorac Surg 108(2):552–557CrossRef
18.
go back to reference Henaine R, Roubertie F, Vergnat M, Ninet J (2012) Valve replacement in children: a challenge for a whole life. Arch Cardiovasc Dis 105(10):517–528CrossRef Henaine R, Roubertie F, Vergnat M, Ninet J (2012) Valve replacement in children: a challenge for a whole life. Arch Cardiovasc Dis 105(10):517–528CrossRef
19.
go back to reference Quinonez LG, Breitbart R, Tworetsky W, Lock JE, Marshall AC, Emani SM (2014) Stented bovine jugular vein graft (Melody valve) for surgical mitral valve replacement in infants and children. J Thorac Cardiovasc Surg 148(4):1443–1449CrossRef Quinonez LG, Breitbart R, Tworetsky W, Lock JE, Marshall AC, Emani SM (2014) Stented bovine jugular vein graft (Melody valve) for surgical mitral valve replacement in infants and children. J Thorac Cardiovasc Surg 148(4):1443–1449CrossRef
20.
go back to reference Pluchinotta FR, Piekarski BL, Milani V, Kretschmar O, Burch PT, Hakami L et al (2018) Surgical atrioventricular valve replacement with melody valve in infants and children. Circ Cardiovasc Interv 11(11):e007145PubMed Pluchinotta FR, Piekarski BL, Milani V, Kretschmar O, Burch PT, Hakami L et al (2018) Surgical atrioventricular valve replacement with melody valve in infants and children. Circ Cardiovasc Interv 11(11):e007145PubMed
22.
go back to reference Tjornild MJ, Carlson Hanse L, Skov SN, Nielsen SL, Hasenkam JM, Ropcke DM (2019) Entire mitral valve reconstruction using porcine extracellular matrix: static in vitro evaluation. Eur J Cardiothorac Surg 55(6):1095–1103PubMed Tjornild MJ, Carlson Hanse L, Skov SN, Nielsen SL, Hasenkam JM, Ropcke DM (2019) Entire mitral valve reconstruction using porcine extracellular matrix: static in vitro evaluation. Eur J Cardiothorac Surg 55(6):1095–1103PubMed
23.
go back to reference Nelson JS, Heider A, Si MS, Ohye RG (2016) Evaluation of explanted CorMatrix intracardiac patches in children with congenital heart disease. Ann Thorac Surg 102(4):1329–1335PubMed Nelson JS, Heider A, Si MS, Ohye RG (2016) Evaluation of explanted CorMatrix intracardiac patches in children with congenital heart disease. Ann Thorac Surg 102(4):1329–1335PubMed
24.
go back to reference Badylak SF, Freytes DO, Gilbert TW (2009) Extracellular matrix as a biological scaffold material: structure and function. Acta Biomater 5(1):1–13PubMed Badylak SF, Freytes DO, Gilbert TW (2009) Extracellular matrix as a biological scaffold material: structure and function. Acta Biomater 5(1):1–13PubMed
25.
go back to reference Valentin JE, Stewart-Akers AM, Gilbert TW, Badylak SF (2009) Macrophage participation in the degradation and remodeling of extracellular matrix scaffolds. Tissue Eng Part A 15(7):1687–1694PubMedPubMedCentral Valentin JE, Stewart-Akers AM, Gilbert TW, Badylak SF (2009) Macrophage participation in the degradation and remodeling of extracellular matrix scaffolds. Tissue Eng Part A 15(7):1687–1694PubMedPubMedCentral
26.
go back to reference Guariento A, Burke R, Fedrigo M, Angelini A, Maschietto N, Vida V et al (2016) Novel valve replacement with an extracellular matrix scaffold in an infant with single ventricle physiology. Cardiovasc Pathol 25(2):165–168PubMed Guariento A, Burke R, Fedrigo M, Angelini A, Maschietto N, Vida V et al (2016) Novel valve replacement with an extracellular matrix scaffold in an infant with single ventricle physiology. Cardiovasc Pathol 25(2):165–168PubMed
27.
go back to reference McConnell PI, Hibino N (2014) Something to consider: porcine intestinal submucosa as a biologic scaffold, not a simple patch. J Thorac Cardiovasc Sur 148(4):1767–1769 McConnell PI, Hibino N (2014) Something to consider: porcine intestinal submucosa as a biologic scaffold, not a simple patch. J Thorac Cardiovasc Sur 148(4):1767–1769
28.
go back to reference Morimoto N, Aoki M, Murakami H, Nakagiri K, Yoshida M, Mukohara N (2013) Mid-term echocardiographic comparison of chordal preservation method of mitral valve replacement in patients with mitral stenosis. J Heart Valve Dis 22(3):326–332PubMed Morimoto N, Aoki M, Murakami H, Nakagiri K, Yoshida M, Mukohara N (2013) Mid-term echocardiographic comparison of chordal preservation method of mitral valve replacement in patients with mitral stenosis. J Heart Valve Dis 22(3):326–332PubMed
Metadata
Title
Mitral Valve Replacement in Pediatrics Using an Extracellular Matrix Cylinder Valve: A Case Series
Publication date
01-10-2020

Other articles of this Issue 7/2020

Pediatric Cardiology 7/2020 Go to the issue