Literature DB >> 29346537

Cerebral mitochondrial dysfunction associated with deep hypothermic circulatory arrest in neonatal swine.

Constantine D Mavroudis1, Michael Karlsson2, Tiffany Ko3, Marco Hefti4, Javier I Gentile1, Ryan W Morgan2, Ross Plyler2, Kobina G Mensah-Brown3, Timothy W Boorady3, Richard W Melchior5, Tami M Rosenthal5, Brandon C Shade5, Kellie L Schiavo5, Susan C Nicolson2, Thomas L Spray1, Robert M Sutton2, Robert A Berg2, Daniel J Licht3, J William Gaynor1, Todd J Kilbaugh2.   

Abstract

OBJECTIVES: Controversy remains regarding the use of deep hypothermic circulatory arrest (DHCA) in neonatal cardiac surgery. Alterations in cerebral mitochondrial bioenergetics are thought to contribute to ischaemia-reperfusion injury in DHCA. The purpose of this study was to compare cerebral mitochondrial bioenergetics for DHCA with deep hypothermic continuous perfusion using a neonatal swine model.
METHODS: Twenty-four piglets (mean weight 3.8 kg) were placed on cardiopulmonary bypass (CPB): 10 underwent 40-min DHCA, following cooling to 18°C, 10 underwent 40 min DHCA and 10 remained at deep hypothermia for 40 min; animals were subsequently rewarmed to normothermia. 4 remained on normothermic CPB throughout. Fresh brain tissue was harvested while on CPB and assessed for mitochondrial respiration and reactive oxygen species generation. Cerebral microdialysis samples were collected throughout the analysis.
RESULTS: DHCA animals had significantly decreased mitochondrial complex I respiration, maximal oxidative phosphorylation, respiratory control ratio and significantly increased mitochondrial reactive oxygen species (P < 0.05 for all). DHCA animals also had significantly increased cerebral microdialysis indicators of cerebral ischaemia (lactate/pyruvate ratio) and neuronal death (glycerol) during and after rewarming.
CONCLUSIONS: DHCA is associated with disruption of mitochondrial bioenergetics compared with deep hypothermic continuous perfusion. Preserving mitochondrial health may mitigate brain injury in cardiac surgical patients. Further studies are needed to better understand the mechanisms of neurological injury in neonatal cardiac surgery and correlate mitochondrial dysfunction with neurological outcomes.

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Year:  2018        PMID: 29346537     DOI: 10.1093/ejcts/ezx467

Source DB:  PubMed          Journal:  Eur J Cardiothorac Surg        ISSN: 1010-7940            Impact factor:   4.191


  15 in total

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Authors:  Frank Manetta; Clancy W Mullan; Michael A Catalano
Journal:  Int J Angiol       Date:  2018-05-27

2.  Proton magnetic resonance spectroscopy assessment of neonatal brain metabolism during cardiopulmonary bypass surgery.

Authors:  Daniel M Spielman; Meng Gu; Ralph E Hurd; R Kirk Riemer; Kenichi Okamura; Frank L Hanley
Journal:  NMR Biomed       Date:  2022-05-18       Impact factor: 4.478

3.  Electroencephalographic Response to Deep Hypothermic Circulatory Arrest in Neonatal Swine and Humans.

Authors:  Constantine D Mavroudis; Kobina G Mensah-Brown; Tiffany S Ko; Timothy W Boorady; Shavonne L Massey; Nicholas S Abend; Susan C Nicolson; Ryan W Morgan; Christopher E Mascio; J William Gaynor; Todd J Kilbaugh; Daniel J Licht
Journal:  Ann Thorac Surg       Date:  2018-07-30       Impact factor: 4.330

4.  Non-invasive optical neuromonitoring of the temperature-dependence of cerebral oxygen metabolism during deep hypothermic cardiopulmonary bypass in neonatal swine.

Authors:  Tiffany S Ko; Constantine D Mavroudis; Wesley B Baker; Vincent C Morano; Kobina Mensah-Brown; Timothy W Boorady; Alexander L Schmidt; Jennifer M Lynch; David R Busch; Javier Gentile; George Bratinov; Yuxi Lin; Sejin Jeong; Richard W Melchior; Tami M Rosenthal; Brandon C Shade; Kellie L Schiavo; Rui Xiao; J William Gaynor; Arjun G Yodh; Todd J Kilbaugh; Daniel J Licht
Journal:  J Cereb Blood Flow Metab       Date:  2018-10-30       Impact factor: 6.200

Review 5.  Contrast-enhanced ultrasound of the pediatric brain.

Authors:  Misun Hwang; Carol E Barnewolt; Jörg Jüngert; Francesco Prada; Anush Sridharan; Ryne A Didier
Journal:  Pediatr Radiol       Date:  2021-02-18

6.  Alterations in cerebral and cardiac mitochondrial function in a porcine model of acute carbon monoxide poisoning.

Authors:  David H Jang; Sarah Piel; John C Greenwood; Matthew Kelly; Vanessa M Mazandi; Abhay Ranganathan; Yuxi Lin; Jonathan Starr; Thomas Hallowell; Frances S Shofer; Wesley B Baker; Alec Lafontant; Kristen Andersen; Johannes K Ehinger; Todd J Kilbaugh
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7.  Does supply meet demand? A comparison of perfusion strategies on cerebral metabolism in a neonatal swine model.

Authors:  Constantine D Mavroudis; Tiffany Ko; Lindsay E Volk; Benjamin Smood; Ryan W Morgan; Jennifer M Lynch; Mahima Davarajan; Timothy W Boorady; Daniel J Licht; J William Gaynor; Christopher E Mascio; Todd J Kilbaugh
Journal:  J Thorac Cardiovasc Surg       Date:  2020-12-11       Impact factor: 5.209

Review 8.  Comparison of dynamic brain metabolism during antegrade cerebral perfusion versus deep hypothermic circulatory arrest using proton magnetic resonance spectroscopy.

Authors:  Frank L Hanley; Hiroki Ito; Meng Gu; Ralph Hurd; R Kirk Riemer; Daniel Spielman
Journal:  J Thorac Cardiovasc Surg       Date:  2019-11-05       Impact factor: 6.439

9.  Inhaled nitric oxide reduces injury and microglia activation in porcine hippocampus after deep hypothermic circulatory arrest.

Authors:  Masaki Kajimoto; Muhammad Nuri; Justin R Sleasman; Kevin A Charette; Branden R Nelson; Michael A Portman
Journal:  J Thorac Cardiovasc Surg       Date:  2020-01-11       Impact factor: 6.439

10.  Increased cerebral mitochondrial dysfunction and reactive oxygen species with cardiopulmonary bypass.

Authors:  Lindsay E Volk; Constantine D Mavroudis; Tiffany Ko; Thomas Hallowell; Nile Delso; Anna L Roberts; Jonathan Starr; William Landis; Yuxi Lin; Marco Hefti; Ryan W Morgan; Richard W Melchior; Tami M Rosenthal; Alexander Chappell; Douglas Fisher; Molly Dreher; Daniel J Licht; Jonathan Chen; J William Gaynor; Christopher E Mascio; Todd J Kilbaugh
Journal:  Eur J Cardiothorac Surg       Date:  2021-06-14       Impact factor: 4.191

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