Cargando…
Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†)
OBJECTIVES: This study investigated whether the novel St. Thomas’ Hospital polarizing cardioplegic solution (STH-POL) with esmolol/adenosine/magnesium offers improved myocardial protection by reducing demands for high-energy phosphates during cardiac arrest compared to the depolarizing St. Thomas’ H...
Autores principales: | , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Oxford University Press
2017
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5848816/ https://www.ncbi.nlm.nih.gov/pubmed/28329148 http://dx.doi.org/10.1093/ejcts/ezx035 |
_version_ | 1783305944434737152 |
---|---|
author | Aass, Terje Stangeland, Lodve Chambers, David J. Hallström, Seth Rossmann, Christine Podesser, Bruno K. Urban, Malte Nesheim, Knut Haaverstad, Rune Matre, Knut Grong, Ketil |
author_facet | Aass, Terje Stangeland, Lodve Chambers, David J. Hallström, Seth Rossmann, Christine Podesser, Bruno K. Urban, Malte Nesheim, Knut Haaverstad, Rune Matre, Knut Grong, Ketil |
author_sort | Aass, Terje |
collection | PubMed |
description | OBJECTIVES: This study investigated whether the novel St. Thomas’ Hospital polarizing cardioplegic solution (STH-POL) with esmolol/adenosine/magnesium offers improved myocardial protection by reducing demands for high-energy phosphates during cardiac arrest compared to the depolarizing St. Thomas’ Hospital cardioplegic solution No 2 (STH-2). METHODS: Twenty anaesthetised pigs on tepid cardiopulmonary bypass were randomized to cardiac arrest for 60 min with antegrade freshly mixed, repeated, cold, oxygenated STH-POL or STH-2 blood cardioplegia every 20 min. Haemodynamic variables were continuously recorded. Left ventricular biopsies, snap-frozen in liquid nitrogen or fixed in glutaraldehyde, were obtained at Baseline, 58 min after cross-clamp and 20 and 180 min after weaning from bypass. Adenine nucleotides were evaluated by high-performance liquid chromatography, myocardial ultrastructure with morphometry. RESULTS: With STH-POL myocardial creatine phosphate was increased compared to STH-2 at 58 min of cross-clamp [59.9 ± 6.4 (SEM) vs 44.5 ± 7.4 nmol/mg protein; P < 0.025], and at 20 min after reperfusion (61.0 ± 6.7 vs 49.0 ± 5.5 nmol/mg protein; P < 0.05), ATP levels were increased at 20 min of reperfusion with STH-POL (35.4 ± 1.1 vs 32.4 ± 1.2 nmol/mg protein; P < 0.05). Mitochondrial surface-to-volume ratio was decreased with polarizing compared to depolarizing cardioplegia 20 min after reperfusion (6.74 ± 0.14 vs 7.46 ± 0.13 µm(2)/µm(3); P = 0.047). None of these differences were present at 180 min of reperfusion. From 150 min of reperfusion and onwards, cardiac index was increased with STH-POL; 4.8 ± 0.2 compared to 4.0 ± 0.2 l/min/m(2) (P = 0.011) for STH-2 at 180 min. CONCLUSIONS: Polarizing STH-POL cardioplegia improved energy status compared to standard STH-2 depolarizing blood cardioplegia during cardioplegic arrest and early after reperfusion. |
format | Online Article Text |
id | pubmed-5848816 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2017 |
publisher | Oxford University Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-58488162018-03-21 Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) Aass, Terje Stangeland, Lodve Chambers, David J. Hallström, Seth Rossmann, Christine Podesser, Bruno K. Urban, Malte Nesheim, Knut Haaverstad, Rune Matre, Knut Grong, Ketil Eur J Cardiothorac Surg Experimental OBJECTIVES: This study investigated whether the novel St. Thomas’ Hospital polarizing cardioplegic solution (STH-POL) with esmolol/adenosine/magnesium offers improved myocardial protection by reducing demands for high-energy phosphates during cardiac arrest compared to the depolarizing St. Thomas’ Hospital cardioplegic solution No 2 (STH-2). METHODS: Twenty anaesthetised pigs on tepid cardiopulmonary bypass were randomized to cardiac arrest for 60 min with antegrade freshly mixed, repeated, cold, oxygenated STH-POL or STH-2 blood cardioplegia every 20 min. Haemodynamic variables were continuously recorded. Left ventricular biopsies, snap-frozen in liquid nitrogen or fixed in glutaraldehyde, were obtained at Baseline, 58 min after cross-clamp and 20 and 180 min after weaning from bypass. Adenine nucleotides were evaluated by high-performance liquid chromatography, myocardial ultrastructure with morphometry. RESULTS: With STH-POL myocardial creatine phosphate was increased compared to STH-2 at 58 min of cross-clamp [59.9 ± 6.4 (SEM) vs 44.5 ± 7.4 nmol/mg protein; P < 0.025], and at 20 min after reperfusion (61.0 ± 6.7 vs 49.0 ± 5.5 nmol/mg protein; P < 0.05), ATP levels were increased at 20 min of reperfusion with STH-POL (35.4 ± 1.1 vs 32.4 ± 1.2 nmol/mg protein; P < 0.05). Mitochondrial surface-to-volume ratio was decreased with polarizing compared to depolarizing cardioplegia 20 min after reperfusion (6.74 ± 0.14 vs 7.46 ± 0.13 µm(2)/µm(3); P = 0.047). None of these differences were present at 180 min of reperfusion. From 150 min of reperfusion and onwards, cardiac index was increased with STH-POL; 4.8 ± 0.2 compared to 4.0 ± 0.2 l/min/m(2) (P = 0.011) for STH-2 at 180 min. CONCLUSIONS: Polarizing STH-POL cardioplegia improved energy status compared to standard STH-2 depolarizing blood cardioplegia during cardioplegic arrest and early after reperfusion. Oxford University Press 2017-07 2017-03-02 /pmc/articles/PMC5848816/ /pubmed/28329148 http://dx.doi.org/10.1093/ejcts/ezx035 Text en © The Author 2017. Published by Oxford University Press on behalf of the European Association for Cardio-Thoracic Surgery. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com |
spellingShingle | Experimental Aass, Terje Stangeland, Lodve Chambers, David J. Hallström, Seth Rossmann, Christine Podesser, Bruno K. Urban, Malte Nesheim, Knut Haaverstad, Rune Matre, Knut Grong, Ketil Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) |
title | Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) |
title_full | Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) |
title_fullStr | Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) |
title_full_unstemmed | Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) |
title_short | Myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) |
title_sort | myocardial energy metabolism and ultrastructure with polarizing and depolarizing cardioplegia in a porcine model(†) |
topic | Experimental |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5848816/ https://www.ncbi.nlm.nih.gov/pubmed/28329148 http://dx.doi.org/10.1093/ejcts/ezx035 |
work_keys_str_mv | AT aassterje myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT stangelandlodve myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT chambersdavidj myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT hallstromseth myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT rossmannchristine myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT podesserbrunok myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT urbanmalte myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT nesheimknut myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT haaverstadrune myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT matreknut myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel AT grongketil myocardialenergymetabolismandultrastructurewithpolarizinganddepolarizingcardioplegiainaporcinemodel |