TY - JOUR
T1 - Metabolomics in angiotensin II-induced cardiac hypertrophy
AU - Mervaala, Eero
AU - Biala, Agnieszka
AU - Merasto, Saara
AU - Lempiäinen, Juha
AU - Mattila, Ismo
AU - Martonen, Essi
AU - Eriksson, Ove
AU - Louhelainen, Marjut
AU - Finckenberg, Piet
AU - Kaheinen, Petri
AU - Muller, Dominik N
AU - Luft, Friedrich C
AU - Lapatto, Risto
AU - Oresic, Matej
PY - 2010/2
Y1 - 2010/2
N2 - Angiotensin II (Ang II) induces mitochondrial dysfunction. We tested whether Ang II alters the "metabolomic" profile. We harvested hearts from 8-week-old double transgenic rats harboring human renin and angiotensinogen genes (dTGRs) and controls (Sprague-Dawley), all with or without Ang II type 1 receptor (valsartan) blockade. We used gas chromatography coupled with time-of-flight mass spectrometry to detect 247 intermediary metabolites. We used a partial least-squares discriminate analysis and identified 112 metabolites that differed significantly after corrections (false discovery rate q <0.05). We found great differences in the use of fatty acids as an energy source, namely, decreased levels of octanoic, oleic, and linoleic acids in dTGR (all P<0.01). The increase in cardiac hypoxanthine levels in dTGRs suggested an increase in purine degradation, whereas other changes supported an increased ketogenic amino acid tyrosine level, causing energy production failure. The metabolomic profile of valsartan-treated dTGRs more closely resembled Sprague-Dawley rats than untreated dTGRs. Mitochondrial respiratory chain activity of cytochrome C oxidase was decreased in dTGRs, whereas complex I and complex II were unaltered. Mitochondria from dTGR hearts showed morphological alterations suggesting increased mitochondrial fusion. Cardiac expression of the redox-sensitive and the cardioprotective metabolic sensor sirtuin 1 was increased in dTGRs. Interestingly, valsartan changed the level of 33 metabolites and induced mitochondrial biogenesis in Sprague-Dawley rats. Thus, distinct patterns of cardiac substrate use in Ang II-induced cardiac hypertrophy are associated with mitochondrial dysfunction. The finding underscores the importance of Ang II in the regulation of mitochondrial biogenesis and cardiac metabolomics, even in healthy hearts.
AB - Angiotensin II (Ang II) induces mitochondrial dysfunction. We tested whether Ang II alters the "metabolomic" profile. We harvested hearts from 8-week-old double transgenic rats harboring human renin and angiotensinogen genes (dTGRs) and controls (Sprague-Dawley), all with or without Ang II type 1 receptor (valsartan) blockade. We used gas chromatography coupled with time-of-flight mass spectrometry to detect 247 intermediary metabolites. We used a partial least-squares discriminate analysis and identified 112 metabolites that differed significantly after corrections (false discovery rate q <0.05). We found great differences in the use of fatty acids as an energy source, namely, decreased levels of octanoic, oleic, and linoleic acids in dTGR (all P<0.01). The increase in cardiac hypoxanthine levels in dTGRs suggested an increase in purine degradation, whereas other changes supported an increased ketogenic amino acid tyrosine level, causing energy production failure. The metabolomic profile of valsartan-treated dTGRs more closely resembled Sprague-Dawley rats than untreated dTGRs. Mitochondrial respiratory chain activity of cytochrome C oxidase was decreased in dTGRs, whereas complex I and complex II were unaltered. Mitochondria from dTGR hearts showed morphological alterations suggesting increased mitochondrial fusion. Cardiac expression of the redox-sensitive and the cardioprotective metabolic sensor sirtuin 1 was increased in dTGRs. Interestingly, valsartan changed the level of 33 metabolites and induced mitochondrial biogenesis in Sprague-Dawley rats. Thus, distinct patterns of cardiac substrate use in Ang II-induced cardiac hypertrophy are associated with mitochondrial dysfunction. The finding underscores the importance of Ang II in the regulation of mitochondrial biogenesis and cardiac metabolomics, even in healthy hearts.
KW - Angiotensin II/pharmacology
KW - Animals
KW - Animals, Genetically Modified
KW - Biomarkers/analysis
KW - Cardiomegaly/chemically induced
KW - Disease Models, Animal
KW - Fatty Acids/metabolism
KW - Female
KW - Humans
KW - Hypoxanthine/metabolism
KW - Linoleic Acids/metabolism
KW - Male
KW - Metabolomics/methods
KW - Mitochondria, Heart/pathology
KW - Oxidative Stress/physiology
KW - Probability
KW - Random Allocation
KW - Rats
KW - Rats, Sprague-Dawley
KW - Reference Values
KW - Sirtuin 1/metabolism
KW - Survival Rate
KW - Tetrazoles/pharmacology
KW - Valine/analogs & derivatives
KW - Valsartan
UR - https://www.scopus.com/pages/publications/74949138093
U2 - 10.1161/HYPERTENSIONAHA.109.145490
DO - 10.1161/HYPERTENSIONAHA.109.145490
M3 - Journal article
C2 - 20065148
SN - 0194-911X
VL - 55
SP - 508
EP - 515
JO - Hypertension
JF - Hypertension
IS - 2
ER -