Cargando…

Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion

Oxidation of substrates to generate ATP in mitochondria is mediated by redox reactions of NADH and FADH(2). Cardiac ischemia and reperfusion (IR) injury compromises mitochondrial oxidative phosphorylation. We hypothesize that IR alters the metabolic heterogeneity of mitochondrial redox state of the...

Descripción completa

Detalles Bibliográficos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: IEEE 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4993131/
https://www.ncbi.nlm.nih.gov/pubmed/27574574
http://dx.doi.org/10.1109/JTEHM.2016.2570219
_version_ 1782449112838307840
collection PubMed
description Oxidation of substrates to generate ATP in mitochondria is mediated by redox reactions of NADH and FADH(2). Cardiac ischemia and reperfusion (IR) injury compromises mitochondrial oxidative phosphorylation. We hypothesize that IR alters the metabolic heterogeneity of mitochondrial redox state of the heart that is only evident in the 3-D optical cryoimaging of the perfused heart before, during, and after IR. The study involved four groups of hearts: time control (TC: heart perfusion without IR), global ischemia (Isch), global ischemia followed by reperfusion (IR) and TC with PCP (a mitochondrial uncoupler) perfusion. Mitochondrial NADH and FAD autofluorescence signals were recorded spectrofluorometrically online in guinea pig ex vivo-perfused hearts in the Langendorff mode. At the end of each specified protocol, hearts were rapidly removed and snap frozen in liquid N(2) for later 3-D optical cryoimaging of the mitochondrial NADH, FAD, and NADH/FAD redox ratio (RR). The TC hearts revealed a heterogeneous spatial distribution of NADH, FAD, and RR. Ischemia and IR altered the spatial distribution and caused an overall increase and decrease in the RR by 55% and 64%, respectively. Uncoupling with PCP resulted in the lowest level of the RR (73% oxidation) compared with TC. The 3-D optical cryoimaging of the heart provides novel insights into the heterogeneous distribution of mitochondrial NADH, FAD, RR, and metabolism from the base to the apex during ischemia and IR. This 3-D information of the mitochondrial redox state in the normal and ischemic heart was not apparent in the dynamic spectrofluorometric data.
format Online
Article
Text
id pubmed-4993131
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher IEEE
record_format MEDLINE/PubMed
spelling pubmed-49931312016-08-29 Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion IEEE J Transl Eng Health Med Article Oxidation of substrates to generate ATP in mitochondria is mediated by redox reactions of NADH and FADH(2). Cardiac ischemia and reperfusion (IR) injury compromises mitochondrial oxidative phosphorylation. We hypothesize that IR alters the metabolic heterogeneity of mitochondrial redox state of the heart that is only evident in the 3-D optical cryoimaging of the perfused heart before, during, and after IR. The study involved four groups of hearts: time control (TC: heart perfusion without IR), global ischemia (Isch), global ischemia followed by reperfusion (IR) and TC with PCP (a mitochondrial uncoupler) perfusion. Mitochondrial NADH and FAD autofluorescence signals were recorded spectrofluorometrically online in guinea pig ex vivo-perfused hearts in the Langendorff mode. At the end of each specified protocol, hearts were rapidly removed and snap frozen in liquid N(2) for later 3-D optical cryoimaging of the mitochondrial NADH, FAD, and NADH/FAD redox ratio (RR). The TC hearts revealed a heterogeneous spatial distribution of NADH, FAD, and RR. Ischemia and IR altered the spatial distribution and caused an overall increase and decrease in the RR by 55% and 64%, respectively. Uncoupling with PCP resulted in the lowest level of the RR (73% oxidation) compared with TC. The 3-D optical cryoimaging of the heart provides novel insights into the heterogeneous distribution of mitochondrial NADH, FAD, RR, and metabolism from the base to the apex during ischemia and IR. This 3-D information of the mitochondrial redox state in the normal and ischemic heart was not apparent in the dynamic spectrofluorometric data. IEEE 2016-06-15 /pmc/articles/PMC4993131/ /pubmed/27574574 http://dx.doi.org/10.1109/JTEHM.2016.2570219 Text en 2168-2372 © 2016 IEEE. Translations and content mining are permitted for academic research only. Personal use is also permitted, but republication/redistribution requires IEEE permission. See http://www.ieee.org/publications_standards/publications/rights/index.html for more information.
spellingShingle Article
Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion
title Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion
title_full Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion
title_fullStr Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion
title_full_unstemmed Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion
title_short Optical Cryoimaging Reveals a Heterogeneous Distribution of Mitochondrial Redox State in ex vivo Guinea Pig Hearts and Its Alteration During Ischemia and Reperfusion
title_sort optical cryoimaging reveals a heterogeneous distribution of mitochondrial redox state in ex vivo guinea pig hearts and its alteration during ischemia and reperfusion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4993131/
https://www.ncbi.nlm.nih.gov/pubmed/27574574
http://dx.doi.org/10.1109/JTEHM.2016.2570219
work_keys_str_mv AT opticalcryoimagingrevealsaheterogeneousdistributionofmitochondrialredoxstateinexvivoguineapigheartsanditsalterationduringischemiaandreperfusion
AT opticalcryoimagingrevealsaheterogeneousdistributionofmitochondrialredoxstateinexvivoguineapigheartsanditsalterationduringischemiaandreperfusion
AT opticalcryoimagingrevealsaheterogeneousdistributionofmitochondrialredoxstateinexvivoguineapigheartsanditsalterationduringischemiaandreperfusion
AT opticalcryoimagingrevealsaheterogeneousdistributionofmitochondrialredoxstateinexvivoguineapigheartsanditsalterationduringischemiaandreperfusion
AT opticalcryoimagingrevealsaheterogeneousdistributionofmitochondrialredoxstateinexvivoguineapigheartsanditsalterationduringischemiaandreperfusion
AT opticalcryoimagingrevealsaheterogeneousdistributionofmitochondrialredoxstateinexvivoguineapigheartsanditsalterationduringischemiaandreperfusion
AT opticalcryoimagingrevealsaheterogeneousdistributionofmitochondrialredoxstateinexvivoguineapigheartsanditsalterationduringischemiaandreperfusion