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1.
Mol Cell Biochem ; 2023 Sep 20.
Article in English | MEDLINE | ID: mdl-37728809

ABSTRACT

The death of myocytes occurs through different pathways, but the rupture of the plasma membrane is the key point in the transition from reversible to irreversible injury. In the myocytes, three major groups of structural proteins that link the extracellular and intracellular milieus and confer structural stability to the cell membrane: the dystrophin-associated protein complex, the vinculin-integrin link, and the spectrin-based submembranous cytoskeleton. The objective was to determine if remote ischemic preconditioning (rIPC) preserves membrane-associated cytoskeletal proteins (dystrophin and ß-dystroglycan) through the inhibition of metalloproteinase type 2 (MMP-2) activity. A second objective was to describe some of the intracellular signals of the rIPC, that modify mitochondrial function at the early reperfusion. Isolated rat hearts were subjected to 30 min of global ischemia and 120 min of reperfusion (I/R). rIPC was performed by 3 cycles of ischemia/reperfusion in the lower limb (rIPC). rIPC significantly decreased the infarct size, induced Akt/GSK-3 ß phosphorylation and inhibition of the MPTP opening. rIPC improved mitochondrial function, increasing membrane potential, ATP production and respiratory control. I/R increased ONOO- production, which activates MMP-2. This enzyme degrades ß-dystroglycan and dystrophin and collaborates to sarcolemmal disruption. rIPC attenuates the breakdown of ß-dystroglycan and dystrophin through the inhibition of MMP-2 activity. Furthermore, we confirm that rIPC activates different intracellular pathway that involves the an Akt/Gsk3ß and MPTP pore with preservation of mitochondrial function.

2.
Free Radic Res ; 53(9-10): 993-1004, 2019 Oct.
Article in English | MEDLINE | ID: mdl-31455116

ABSTRACT

Sildenafil is a phosphodiesterase type 5 inhibitor which confers cardioprotection against myocardial ischaemia/reperfusion (I/R) injury. The aim of this study was to determine if Trx1 participates in cardioprotection exerted by sildenafil in an acute model of I/R, and to evaluate mitochondrial bioenergetics and cellular redox status. Langendorff-perfused hearts from wild type (WT) mice and a dominant negative (DN-Trx1) mutant of Trx1 were assigned to placebo or sildenafil (0.7 mg/kg i.p.) and subjected to 30 min of ischaemia followed by 120 min of reperfusion. WT + S showed a significant reduction of infarct size (51.2 ± 3.0% vs. 30 ± 3.0%, p < .001), an effect not observed in DN-Trx. After I/R, sildenafil preserved state 3 oxygen consumption from WT, but had a milder effect in DN-Trx1 only partially protecting state 3 values. Treatment restored respiratory control (RC) after I/R, which resulted 8% (WT) and 24% (DN-Trx1) lower than in basal conditions. After I/R, a significant increase in H2O2 production was observed both for WT and DN-Trx (WT: 1.17 ± 0.13 nmol/mg protein and DN-Trx: 1.38 ± 0.12 nmol/min mg protein). With sildenafil, values were 21% lower only in WT I/R. Treatment decreased GSSG levels both in WT and DN-Trx1. In addition, GSSG/GSH2 ratio was partially restored by sildenafil. Also, an increase in p-eNOS/eNOS even before the myocardial ischaemia was observed with sildenafil, both in WT (14%, p > .05) and in DN-Trx (35%, p < .05). Active Trx1 is required for the onset of the cardioprotective effects of sildenafil on I/R injury, together with the preservation of cellular redox balance and mitochondrial function.


Subject(s)
Mitochondria/drug effects , Myocardial Ischemia/drug therapy , Myocardial Reperfusion Injury/drug therapy , Phosphodiesterase 5 Inhibitors/therapeutic use , Sildenafil Citrate/therapeutic use , Animals , Male , Mice , Mice, Transgenic , Phosphodiesterase 5 Inhibitors/pharmacology , Sildenafil Citrate/pharmacology
3.
Adv Exp Med Biol ; 1127: 117-130, 2019.
Article in English | MEDLINE | ID: mdl-31140175

ABSTRACT

Ischemic heart disease is the main cause of morbidity and mortality in the developed world. Although reperfusion therapies are currently the best treatment for this entity, the restoration of blood flow leads, under certain circumstances, to a form of myocardial damage called reperfusion injury. Several studies have shown that age, sex, smoking, diabetes and dyslipidemia are risk factors for cardiovascular diseases. Among these risk factors, dyslipidemias are present in 40% of patients with ischemic heart disease and represent the clinical factor with the greatest impact on the prognosis of patients with cardiovascular diseases. It is known that during reperfusion the increase of the oxidative stress is perhaps one of the most important mechanisms implicated in cell damage. That is why several researchers have studied protective mechanisms against reperfusion injury, such as the ischemic pre- and post- conditioning, making emphasis mainly on the reduction of oxidative stress. However, few of these efforts have been successfully translated into the clinical setting. The controversial results in regards to the relation between cardioprotective mechanisms and dyslipidemia/hypercholesterolemia are mainly due to the difference among quality, composition and the time of administration of hypercholesterolemic diets, as well as the difference in the species used in each of the studies. Therefore, in order to compare results, it is crucial that all variables that could modify the obtained results are taken into consideration.


Subject(s)
Dyslipidemias/complications , Myocardial Ischemia/complications , Myocardial Reperfusion Injury/complications , Oxidative Stress , Humans , Ischemic Postconditioning , Ischemic Preconditioning, Myocardial , Risk Factors
4.
Free Radic Biol Med ; 135: 274-282, 2019 05 01.
Article in English | MEDLINE | ID: mdl-30862545

ABSTRACT

Mitochondrial dysfunction named complex I syndrome was observed in striatum mitochondria of rotenone treated rats (2 mg rotenone/kg, i. p., for 30 or 60 days) in an animal model of Parkinson disease. After 60 days of rotenone treatment, the animals showed: (a) 6-fold increased bradykinesia and 60% decreased locomotor activity; (b) 35-34% decreases in striatum O2 uptake and in state 3 mitochondrial respiration with malate-glutamate as substrate; (c) 43-57% diminished striatum complex I activity with 60-71% decreased striatum mitochondrial NOS activity, determined both as biochemical activity and as functional activity (by the NO inhibition of active respiration); (d) 34-40% increased rates of mitochondrial O2•- and H2O2 productions and 36-46% increased contents of the products of phospholipid peroxidation and of protein oxidation; and (e) 24% decreased striatum mitochondrial content, likely associated to decreased NO-dependent mitochondrial biogenesis. Intermediate values were observed after 30 days of rotenone treatment. Frontal cortex tissue and mitochondria showed similar but less marked changes. Rotenone-treated rats showed mitochondrial complex I syndrome associated with cellular oxidative stress in the dopaminergic brain areas of striatum and frontal cortex, a fact that describes the high sensitivity of mitochondrial complex I to inactivation by oxidative reactions.


Subject(s)
Electron Transport Complex I/metabolism , Mitochondria/metabolism , Oxygen/metabolism , Parkinson Disease/metabolism , Animals , Brain/drug effects , Brain/metabolism , Corpus Striatum/drug effects , Corpus Striatum/metabolism , Corpus Striatum/pathology , Disease Models, Animal , Electron Transport Complex I/deficiency , Frontal Lobe/drug effects , Frontal Lobe/metabolism , Frontal Lobe/pathology , Gray Matter/drug effects , Gray Matter/metabolism , Humans , Hydrogen Peroxide/metabolism , Hypokinesia/chemically induced , Hypokinesia/metabolism , Hypokinesia/pathology , Lipid Peroxidation/drug effects , Locomotion/drug effects , Mitochondria/drug effects , Mitochondria/pathology , Oxidative Stress/drug effects , Parkinson Disease/drug therapy , Parkinson Disease/pathology , Rats , Rotenone/pharmacology
5.
Mol Cell Biochem ; 452(1-2): 153-166, 2019 Feb.
Article in English | MEDLINE | ID: mdl-30094601

ABSTRACT

Ischemic postconditioning (PostC) reduces infarct size in healthy experimental models. However, if protective effects of PostC are abolished during early stages of atherosclerotic and if this is related with a disbalance in mitochondrial energetics and alterations in thioredoxin-1 (Trx1) is still unknown. The objectives were to generate a murine high-fat diet (HFD)-fed model that developed in a phenotype consistent with early stages of atherosclerosis to then evaluate whether HFD exposure increased oxidative stress and consequently abolished the cardioprotection conferred by PostC. We used C57/BL6 mice fed with control diet (CD) or HFD for 12 weeks. Isolated mice hearts were subjected to 30 min of ischemia and 120 min of reperfusion (I/R group). For PostC group, after ischemia, six cycles of reperfusion/ischemia were performed (10 s per cycle) at the onset of reperfusion. In CD group, the PostC reduced infarct size (CD-I/R: 52.14 ± 2.8 vs. CD-PostC: 36.58 ± 1.8, P < 0.05) and increased phosphorylation of GSK3ß (CD-PostC: 2.341 ± 1.03 vs. CD-Baseline: 0.923 ± 0.41 AUOD, P < 0.05), and this cardioprotection was abolished in HFD-exposed mice. HFD increased hydrogen peroxide levels, produced a shift towards an oxidized intracellular environment (GSSG/GSH2), and increased Trx1 expression with higher fractions of oxidized protein. State 3 mitochondrial oxygen consumption in basal conditions decreased 24% in HFD-exposed mice and PostC improved state 3 values only in CD mice. Cellular redox state and mitochondrial bioenergetics were altered in HFD-exposed mice. We demonstrated that alterations in redox state at early stages of atherosclerosis abolished cardioprotective mechanisms, such as those induced by PostC, even with increased Trx1 levels.


Subject(s)
Diet, High-Fat/adverse effects , Disease Models, Animal , Ischemic Postconditioning , Myocardial Reperfusion Injury/etiology , Thioredoxins/metabolism , Animals , Male , Mice , Mice, Inbred C57BL , Mitochondria/metabolism , Mitochondria/pathology , Myocardial Reperfusion Injury/metabolism , Myocardial Reperfusion Injury/pathology , Myocardial Reperfusion Injury/prevention & control , Oxidation-Reduction
6.
Mol Cell Biochem ; 432(1-2): 169-178, 2017 Aug.
Article in English | MEDLINE | ID: mdl-28316061

ABSTRACT

Transition from compensated to decompensated left ventricular hypertrophy (LVH) is accompanied by functional and structural changes. Here, the aim was to evaluate dystrophin expression in murine models and human subjects with LVH by transverse aortic constriction (TAC) and aortic stenosis (AS), respectively. We determined whether doxycycline (Doxy) prevented dystrophin expression and myocardial stiffness in mice. Additionally, ventricular function recovery was evaluated in patients 1 year after surgery. Mice were subjected to TAC and monitored for 3 weeks. A second group received Doxy treatment after TAC. Patients with AS were stratified by normal left ventricular end-diastolic wall stress (LVEDWS) and high LVEDWS, and groups were compared. In mice, LVH decreased inotropism and increased myocardial stiffness associated with a dystrophin breakdown and a decreased mitochondrial O2 uptake (MitoMVO2). These alterations were attenuated by Doxy. Patients with high LVEDWS showed similar results to those observed in mice. A correlation between dystrophin and myocardial stiffness was observed in both mice and humans. Systolic function at 1 year post-surgery was only recovered in the normal-LVEDWS group. In summary, mice and humans present diastolic dysfunction associated with dystrophin degradation. The recovery of ventricular function was observed only in patients with normal LVEDWS and without dystrophin degradation. In mice, Doxy improved MitoMVO2. Based on our results it is concluded that the LVH with high LVEDWS is associated to a degradation of dystrophin and increase of myocardial stiffness. At least in a murine model these alterations were attenuated after the administration of a matrix metalloprotease inhibitor.


Subject(s)
Dystrophin/deficiency , Hypertrophy, Left Ventricular/metabolism , Mitochondria, Heart/metabolism , Myocardium/metabolism , Proteolysis , Animals , Disease Models, Animal , Doxycycline/adverse effects , Doxycycline/pharmacology , Humans , Hypertrophy, Left Ventricular/chemically induced , Hypertrophy, Left Ventricular/genetics , Hypertrophy, Left Ventricular/pathology , Male , Mice , Mitochondria, Heart/genetics , Mitochondria, Heart/pathology , Myocardium/pathology
7.
Arch Biochem Biophys ; 607: 8-19, 2016 10 01.
Article in English | MEDLINE | ID: mdl-27523732

ABSTRACT

Heart phosphorylating electron transfer particles (ETPH) produced NO at 1.2 ± 0.1 nmol NO. min(-1) mg protein(-1) by the mtNOS catalyzed reaction. These particles showed a NAD(+) reductase activity of 64 ± 3 nmol min(-1) mg protein(-1) sustained by reverse electron transfer (RET) at expenses of ATP and succinate. The same particles, without NADPH and in conditions of RET produced 0.97 ± 0.07 nmol NO. min(-1) mg protein(-1). Rotenone inhibited NO production supported by RET measured in ETPH and in coupled mitochondria, but did not reduce the activity of recombinant nNOS, indicating that the inhibitory effect of rotenone on NO production is due to an electron flow inhibition and not to a direct action on mtNOS structure. NO production sustained by RET corresponds to 20% of the total amount of NO released from heart coupled mitochondria. A mitochondrial fraction enriched in complex I produced 1.7 ± 0.2 nmol NO. min(-1) mg protein(-1) and reacted with anti-75 kDa complex I subunit and anti-nNOS antibodies, suggesting that complex I and mtNOS are located contiguously. These data show that mitochondrial NO production can be supported by RET, and suggest that mtNOS is next to complex I, reaffirming the idea of a functional association between these proteins.


Subject(s)
Mitochondria/metabolism , Nitric Oxide/metabolism , Adenosine Triphosphate/chemistry , Animals , Catalysis , Cattle , Dose-Response Relationship, Drug , Electrons , Mitochondria, Heart/metabolism , Myocardium/metabolism , NAD (+) and NADP (+) Dependent Alcohol Oxidoreductases/metabolism , NADP/chemistry , Oxygen Consumption , Rats , Recombinant Proteins/chemistry , Rotenone/chemistry , Submitochondrial Particles/chemistry , Succinic Acid/chemistry
8.
Antioxid Redox Signal ; 25(2): 78-88, 2016 07 10.
Article in English | MEDLINE | ID: mdl-27000416

ABSTRACT

AIM: We evaluated the effect of thioredoxin1 (Trx1) system on postischemic ventricular and mitochondrial dysfunction using transgenic mice overexpressing cardiac Trx1 and a dominant negative (DN-Trx1) mutant (C32S/C35S) of Trx1. Langendorff-perfused hearts were subjected to 15 min of ischemia followed by 30 min of reperfusion (R). We measured left ventricular developed pressure (LVDP, mmHg), left ventricular end diastolic pressure (LVEDP, mmHg), and t63 (relaxation index, msec). Mitochondrial respiration, SERCA2a, phospholamban (PLB), and phospholamban phosphorylation (p-PLB) Thr17 expression (Western blot) were also evaluated. RESULTS: At 30 min of reperfusion, Trx1 improved contractile state (LVDP: Trx1: 57.4 ± 4.9 vs. Wt: 27.1 ± 6.3 and DN-Trx1: 29.2 ± 7.1, p < 0.05); decreased myocardial stiffness (LVEDP: Wt: 24.5 ± 4.8 vs. Trx1: 11.8 ± 2.9, p < 0.05); and improved the isovolumic relaxation (t63: Wt: 63.3 ± 3.2 vs. Trx1: 51.4 ± 1.9, p < 0.05). DN-Trx1 mice aggravated the myocardial stiffness and isovolumic relaxation. Only the expression of p-PLB Thr17 increased at 1.5 min R in Wt and DN-Trx1 groups. At 30 min of reperfusion, state 3 mitochondrial O2 consumption was impaired by 13% in Wt and by 33% in DN-Trx1. ADP/O ratios for Wt and DN-Trx1 decrease by 25% and 28%, respectively; whereas the Trx1 does not change after ischemia and reperfusion (I/R). Interestingly, baseline values of complex I activity were increased in Trx1 mice; they were 24% and 47% higher than in Wt and DN-Trx1 mice, respectively (p < 0.01). INNOVATION AND CONCLUSION: These results strongly suggest that Trx1 ameliorates the myocardial effects of I/R by improving the free radical-mediated damage in cardiac and mitochondrial function, opening the possibility of new therapeutic strategies in coronary artery disease. Antioxid. Redox Signal. 25, 78-88.


Subject(s)
Mitochondria, Heart/metabolism , Myocardial Reperfusion Injury/metabolism , Myocardial Reperfusion Injury/physiopathology , Myocardial Stunning/metabolism , Thioredoxins/metabolism , Ventricular Dysfunction/metabolism , Animals , Electron Transport Chain Complex Proteins/metabolism , Hydrogen Peroxide/metabolism , Male , Mice , Myocardial Contraction , Myocardial Reperfusion Injury/genetics , Myocardial Stunning/genetics , Oxygen Consumption , Thioredoxins/genetics , Ventricular Dysfunction/genetics
9.
Rev. argent. cardiol ; 83(5): 394-399, oct. 2015. graf, tab
Article in Spanish | LILACS | ID: biblio-957651

ABSTRACT

Introducción: La disfunción ventricular posisquémica (miocardio atontado) involucra un aumento del estrés oxidativo. En este sentido, la célula cuenta con mecanismos de defensa, como la tiorredoxina-1, un antioxidante que protege al miocardio de la lesión por isquemia/reperfusión, reduciendo el tamaño del infarto. Objetivo: Evaluar el comportamiento de la función ventricular sistólica y diastólica, particularmente estudiando la rigidez miocárdica y la relajación isovolúmica en el miocardio atontado en diferentes ratones transgénicos. Material y métodos: Se utilizaron corazones de ratones que sobreexpresan tiorredoxina-1 y de ratones transgénicos que sobreexpresan tiorredoxina-1 mutada en su sitio activo (dominante negativo), comparados con los de ratones no transgénicos, los cuales fueron sometidos a 15 minutos de isquemia global y 30 minutos de reperfusión utilizando la técnica de Langendorff. Se evaluó la función ventricular sistólica y diastólica y se calculó el t63 y el t93 como índice de relajación isovolúmica. Resultados: Las mediciones a los 30 minutos de reperfusión mostraron una mejoría significativa del estado contráctil en los ratones tiorredoxina-1 (57,4 ± 4,9 mm Hg; p ≤ 0,05 vs. no transgénicos) y también en la rigidez (11,8 ± 2,9 mm Hg; p ≤ 0,05 vs. no transgénicos). Por otra parte, en los ratones dominantes negativos se observó un aumento de la rigidez (37,7 ± 5,5 mm Hg; p ≤ 0,05 vs. no transgénicos) y un enlentecimiento de la relajación a los 30 minutos de la reperfusión (78,2 ± 9,8 mseg; p ≤ 0,05 vs. no transgénicos). Conclusión: Este trabajo evidencia el rol protector de la tiorredoxina-1 en el miocardio atontado y su importancia fisiopatológica en ratones que sobreexpresan este antioxidante.


Background: Postischemic ventricular dysfunction (myocardial stunning) involves increased oxidative stress. In this sense, the cell has defense mechanisms, as thioredoxin-1, an antioxidant that protects the myocardium from ischemia/reperfusion injury, reducing infarct size. Objective: The aim of this study was to evaluate systolic and diastolic ventricular function, specifically analyzing myocardial stiffness and isovolumic relaxation, during myocardial stunning in different transgenic mice. Methods: Hearts from mice overexpressing thioredoxin-1 and transgenic mice overexpressing thioredoxin-1 with gene mutation in its active site (dominant negative) were compared with hearts from non-transgenic mice after 15-minute global ischemia and 30-minute reperfusion using the Langendorff technique. Systolic and diastolic ventricular function was evaluated and t63 and t93 were calculated as ventricular relaxation index. Results: At 30-minute reperfusion, thioredoxin-1 mice showed a significantly improved contractile state (57.4±4.9 mmHg; p≤0.05 vs. non-transgenic mice) and stiffness (11.8±2.9 mmHg; p≤0.05 vs. non-transgenic mice). Conversely, at the same reperfusion time, dominant negative mice exhibited increased stiffness (37.7±5.5 mmHg; p≤0.05 vs. non-transgenic mice) and slower relaxation (78.2±9.8 ms; p≤0.05 vs. non-transgenic mice). Conclusion: This study reveals the protective role of thioredoxin-1 on myocardial stunning and its pathophysiological importance in mice overexpressing this antioxidant.

10.
Vitam Horm ; 96: 29-58, 2014.
Article in English | MEDLINE | ID: mdl-25189383

ABSTRACT

Heart mitochondria play a central role in cell energy provision and in signaling. Nitric oxide (NO) is a free radical which exerts an integral regulation of the cardiovascular system not only by adapting vascular smooth muscle tone but also by influencing ion channel function, myocyte contraction, energy metabolism, and hypertrophic myocardial remodeling. This chapter analyzes the available data about heart mitochondrial NOS (mtNOS) activity and identity. The regulation of heart mtNOS by the distinctive mitochondrial environment is described by showing the effects of Ca(2+), O2, L-arginine, NADPH, mitochondrial membrane potential (ΔΨ) and the metabolic states. Evidence about the regulation of heart mtNOS in chronic hypoxia and ischemia-reperfusion models is presented. Functional implications of heart mitochondrial NOS are delineated with emphasis on the chemical reactions through which NO interacts with mitochondrial targets and exerts some of its crucial roles.


Subject(s)
Mitochondria, Heart/enzymology , Nitric Oxide Synthase/metabolism , Animals , Energy Metabolism , Humans
11.
Am J Physiol Heart Circ Physiol ; 303(11): H1283-93, 2012 Dec 01.
Article in English | MEDLINE | ID: mdl-23023869

ABSTRACT

Heart mitochondria play a central role in cell energy provision and in signaling. Nitric oxide (NO) is a free radical with primary regulatory functions in the heart and involved in a broad array of key processes in cardiac metabolism. Specific NO synthase (NOS) isoforms are confined to distinct locations in cardiomyocytes. The present article reviews the chemical reactions through which NO interacts with biomolecules and exerts some of its crucial roles. Specifically, the article discusses the reactions of NO with mitochondrial targets and the subcellular localization of NOS within the myocardium and analyzes the available data about heart mitochondrial NOS activity and identity. The article also describes the regulation of heart mtNOS by the distinctive mitochondrial environment by showing the effects of Ca(2+), O(2), l-arginine, mitochondrial transmembrane potential, and the metabolic states on heart mitochondrial NO production. The article depicts the effects of NO on heart function and highlights the relevance of NO production within mitochondria. Finally, the evidence on the functional implications of heart mitochondrial NOS is delineated with emphasis on chronic hypoxia and ischemia-reperfusion studies.


Subject(s)
Heart/physiology , Mitochondria, Heart/enzymology , Nitric Oxide Synthase/metabolism , Animals , Humans , Membrane Potentials/physiology , Models, Animal , Myocardium/metabolism , Nitric Oxide/metabolism
12.
Mol Cell Biochem ; 359(1-2): 169-76, 2012 Jan.
Article in English | MEDLINE | ID: mdl-21842376

ABSTRACT

Hemorrhage (H) is associated with a left ventricular (LV) dysfunction. However, the diastolic function has not been studied in detail. The main goal was to assess the diastolic function both during and 120 min after bleeding, in the absence and in the presence of L-NAME. Also, the changes in mRNA and protein expression of nitric oxide synthase (NOS) isoforms were determined. New Zealand rabbits were divided into three groups: Sham group, H group (hemorrhage 20% blood volume), and H L-NAME group (hemorrhage treated with L-NAME). We evaluated systolic and diastolic ventricular functions in vivo and in vitro (Langendorff technique). Hemodynamic parameters and LV function were measured before, during, and at 120 min after bleeding. We analyzed the isovolumic relaxation using t ½ in vivo (closed chest). After that, hearts were excised and perfused in vitro to measure myocardial stiffness. Samples were frozen to measure NOS mRNA and protein expression. The t½ increased during bleeding and returned to basal values 120 min after bleeding. L-NAME blunted this effect. Data from the H group revealed a shift to the left in the LV end diastolic pressure-volume curve at 120 min after bleeding, which was blocked by L-NAME. iNOS and nNOS protein expression and mRNA levels increased at 120 min after the hemorrhage. Acute hemorrhage induces early and transient isovolumic relaxation impairment and an increase in myocardial stiffness 120 min after bleeding. L-NAME blunted the LV dysfunction, suggesting that NO modulates ventricular function through iNOS and nNOS isoforms.


Subject(s)
Diastole , Shock, Hemorrhagic/physiopathology , Ventricular Dysfunction, Left/drug therapy , Animals , Diastole/drug effects , Diastole/physiology , Heart/physiopathology , Hemorrhage , NG-Nitroarginine Methyl Ester/pharmacology , Nitric Oxide Synthase Type I , Nitric Oxide Synthase Type II , Nitrogen Oxides , Rabbits , Shock, Hemorrhagic/complications , Ventricular Dysfunction, Left/enzymology , Ventricular Dysfunction, Left/etiology
13.
Free Radic Biol Med ; 51(6): 1203-12, 2011 Sep 15.
Article in English | MEDLINE | ID: mdl-21723387

ABSTRACT

Isolated rabbit hearts were exposed to ischemia (I; 15 min) and reperfusion (R; 5-30 min) in a model of stunned myocardium. I/R decreased left-ventricle O(2) consumption (46%) and malate-glutamate-supported mitochondrial state 3 respiration (32%). Activity of complex I was 28% lower after I/R. The pattern observed for the decline in complex I activity was also observed for the reduction in mitochondrial nitric oxide synthase (mtNOS) biochemical (28%) and functional (50%) activities, in accordance with the reported physical and functional interactions between complex I and mtNOS. Malate-glutamate-supported state 4 H(2)O(2) production was increased by 78% after I/R. Rabbit heart Mn-SOD concentration in the mitochondrial matrix (7.4±0.7 µM) was not modified by I/R. Mitochondrial phospholipid oxidation products were increased by 42%, whereas protein oxidation was only slightly increased. I/R produced a marked (70%) enhancement in tyrosine nitration of the mitochondrial proteins. Adenosine attenuated postischemic ventricular dysfunction and protected the heart from the declines in O(2) consumption and in complex I and mtNOS activities and from the enhancement of mitochondrial phospholipid oxidation. Rabbit myocardial stunning is associated with a condition of dysfunctional mitochondria named "complex I syndrome." The beneficial effect of adenosine could be attributed to a better regulation of intracellular cardiomyocyte Ca(2+) concentration.


Subject(s)
Adenosine/administration & dosage , Electron Transport Complex I/metabolism , Mitochondria, Heart/metabolism , Myocardial Stunning/metabolism , Reperfusion Injury/metabolism , Animals , Cell Respiration/drug effects , Disease Models, Animal , Heart Ventricles/pathology , Lipid Peroxidation , Mitochondria, Heart/drug effects , Mitochondria, Heart/pathology , Myocardial Stunning/drug therapy , Myocardial Stunning/pathology , Nitric Oxide Synthase/metabolism , Oxygen Consumption/drug effects , Rabbits , Reperfusion Injury/drug therapy , Reperfusion Injury/pathology , Superoxide Dismutase/metabolism
14.
Exp Physiol ; 95(2): 274-81, 2010 Feb.
Article in English | MEDLINE | ID: mdl-19880538

ABSTRACT

The activation of matrix metalloproteinases (MMPs) contributes to myocardial injury at the onset of reperfusion; however, their role in ischaemic postconditioning is unknown. The aim of the present study was to examine the effects of ischaemic postconditioning on MMP activity in isolated rabbit hearts. The isolated rabbit hearts were subjected to 30 min of global ischaemia followed by 180 min of reperfusion (I/R group; n = 8). In the ischaemic postconditioning group (n = 8), a postconditioning protocol was performed (2 cycles of 30 s reperfusion-ischaemia). In other experiments, we added doxycycline, an MMP inhibitor, at 25 (n = 7) or 50 micromol l(1) (n = 8) during the first 2 min of reperfusion. Coronary effluent and left ventricular tissue were collected during pre-ischaemic conditions and at different times during the reperfusion period to measure MMP-2 activity and cardiac protein nitration. We evaluated ventricular function and infarct size. In the I/R group, infarct size was 32.1 +/- 5.2%; Postcon reduced infarct size to 9.5 +/- 3.8% (P < 0.05) and inhibited MMP-2 activity during reperfusion. The administration of doxycycline at 50 micromol l(1) inhibited MMP-2 activity and cardiac protein nitration and reduced the infarct size to 9.7 +/- 2.8% (P < 0.05). A lower dose of doxycycline (25 micromol l(1)) failed to inhibit MMP-2 activity and did not modify the infarct size. Our results strongly suggest that ischaemic postconditioning may exert part of its cardioprotective effects through the inhibition of MMP-2 activity.


Subject(s)
Heart Ventricles/physiopathology , Matrix Metalloproteinase 2/metabolism , Myocardial Reperfusion Injury/physiopathology , Ventricular Dysfunction, Left/physiopathology , Animals , Coronary Circulation , Enzyme Activation , Myocardial Reperfusion Injury/complications , Rabbits , Ventricular Dysfunction, Left/etiology
15.
Rev. argent. cardiol ; 77(3): 181-186, mayo-jun. 2009. graf, tab
Article in Spanish | LILACS | ID: lil-634081

ABSTRACT

Antecedentes En un trabajo previo mostramos que el estado hipovolémico inducido por una pérdida aguda de sangre se acompaña de una activación dinámica, heterogénea y dependiente del tiempo de la óxido nítrico sintetasa (NOS) cardíaca. Este sistema estaría involucrado en las alteraciones hemodinámicas que se observan luego de la depleción de volumen sanguíneo. Objetivo El objetivo del presente trabajo fue evaluar la participación del sistema del óxido nítrico (NO) mitocondrial en la respuesta adaptativa del sistema cardiovascular ante un shock hipovolémico en ratas anestesiadas y no anestesiadas. Material y métodos El estudio se llevó a cabo con cuatro grupos de animales (n = 7 por grupo): grupo A, ratas control anestesiadas; grupo C, ratas control no anestesiadas; grupo AH, ratas anestesiadas sometidas a una hemorragia (20% de la volemia) y grupo CH, ratas no anestesiadas sometidas a una hemorragia. Se evaluaron el consumo de oxígeno, la actividad funcional de la NOS mitocondrial (mtNOS) y la producción mitocondrial de NO. Resultados No se observaron diferencias significativas entre los valores de control respiratorio en los distintos grupos estudiados. La actividad funcional de la mtNOS fue menor en el grupo AH respecto del grupo A (12 ± 2 y 19 ± 1, respectivamente). Este efecto fue de menor magnitud cuando la hemorragia se provocó en animales no anestesiados (17 ± 1 y 20 ± 1, respectivamente). La producción mitocondrial de NO disminuyó en los grupos sometidos a una pérdida aguda de sangre, tanto no anestesiados como anestesiados, respecto de los animales controles. Conclusiones El sistema del NO mitocondrial estaría involucrado en la respuesta de adaptación del sistema cardiovascular frente a la depleción aguda de volumen. Esta participación dependería del grado de anestesia del animal.


Background We have previously demonstrated that hypovolemia induced by acute bleeding is accompanied by a dynamic, heterogenous and time-dependent activation of the cardiac nitric oxide synthase (NOS). This system might be involved in the hemodynamic anomalies observed after blood volume depletion. Objective To assess the role of the mitochondrial nitric oxide (NO) system in the adaptive response of the cardiovascular system in anesthetized and non anesthetized rats under hypovolemic shock. Material and Methods Animals were divided in four groups (n=7 animals per group): Group A, anesthetized control rats; group C, non anesthetized control rats; group AB, anesthetized rats subjected to bleeding (20% of blood volume), and group CB, non anesthetized rats subjected to bleeding. Oxygen consumption, functional activity of mitochondrial NOS (mtNOS) and mitochondrial production of NO were assessed. Results There were no significant differences in the values of respiratory parameters among the different study groups. Group AB had less functional activity of mtNOS compared to group A (12±2 and 19±1, respectively). This effect was even lower in non anesthetized animals subjected to bleeding (17±1 and 20±1, respectively). Mitochondrial production of NO decreased in anesthetized and non anesthetized animals with acute bleeding compared to controls. Conclusions Mitochondrial NO system might be involved in the adaptive response of the cardiovascular system under acute volume depletion, depending on the animal's degree of anesthesia.

16.
Am J Physiol Heart Circ Physiol ; 296(6): H1741-7, 2009 Jun.
Article in English | MEDLINE | ID: mdl-19346458

ABSTRACT

Rats submitted to high altitude (Cerro de Pasco, Perú, 4,340 m, Po(2) = 12.2 kPa) for up to 84 days showed a physiological adaptive response with decreased body weight gain (15%), increased right ventricle weight (100%), and increased hematocrit (40%) compared with sea level animals. These classical parameters of adaptation to high altitude were accompanied by an increase in heart mitochondrial enzymes: complexes I-III activity by 34% and mitochondrial nitric oxide synthase (mtNOS) activity and expression by >75%. The hyperbolic increase for mtNOS activity during adaptation to high altitude was similar to the observed pattern for hematocrit. Hematocrit and mtNOS activity mean values correlated linearly (r(2) = 0.75, P

Subject(s)
Adaptation, Physiological/drug effects , Altitude , Arginine/pharmacology , Heart/physiology , NG-Nitroarginine Methyl Ester/pharmacology , Piperazines/pharmacology , Sulfones/pharmacology , Adaptation, Physiological/physiology , Animals , Body Weight , Electron Transport Complex I/metabolism , Electron Transport Complex II/metabolism , Electron Transport Complex III/metabolism , Electron Transport Complex IV/metabolism , Enzyme Inhibitors/pharmacology , Hematocrit , Hypertrophy, Right Ventricular/drug therapy , Hypertrophy, Right Ventricular/metabolism , Hypertrophy, Right Ventricular/physiopathology , Male , Mitochondria/enzymology , Myocardium/metabolism , Nitric Oxide/metabolism , Nitric Oxide Synthase/antagonists & inhibitors , Nitric Oxide Synthase/metabolism , Organ Size , Phosphodiesterase Inhibitors/pharmacology , Purines/pharmacology , Rats , Rats, Sprague-Dawley , Sildenafil Citrate
17.
Front Biosci ; 12: 1247-59, 2007 Jan 01.
Article in English | MEDLINE | ID: mdl-17127451

ABSTRACT

A remarkable number of adaptive responses; including changes in the cardiovascular, respiratory and hematologic systems; takes place during acclimatization to natural or simulated high altitude. This adaptation to chronic hypoxia confers the heart an improved tolerance to all major deleterious consequences of acute O2 deprivation, not only reducing infarct size but also alleviating post-ischemic contractile dysfunction and ventricular arrhythmias. There is growing evidence about the involvement of mitochondria and NO in the establishment of cardioprotection. This review focuses on evidence about the putative role of different effectors of heart acclimatization to chronic hypoxia. Along with classical parameters, we consider NO, specially that generated by mtNOS, mitochondrial respiratory chain, mitoK(ATP) channels, reactive oxygen species and control of gene expression by HIF-1.


Subject(s)
Acclimatization , Hypoxia/metabolism , Mitochondria, Heart/metabolism , Nitric Oxide/physiology , Animals , Humans , Hypoxia-Inducible Factor 1/physiology , Mice , Potassium Channels/physiology , Rats
18.
Biochim Biophys Acta ; 1757(3): 166-72, 2006 Mar.
Article in English | MEDLINE | ID: mdl-16624252

ABSTRACT

The mitochondrial metabolic state regulates the rate of NO release from coupled mitochondria: NO release by heart, liver and kidney mitochondria was about 40-45% lower in state 3 (1.2, 0.7 and 0.4 nmol/min mg protein) than in state 4 (2.2, 1.3 and 0.7 nmol/min mg protein). The activity of mtNOS, responsible for NO release, appears driven by the membrane potential component and not by intramitochondrial pH of the proton motive force. The intramitochondrial concentrations of the NOS substrates, L-arginine (about 310 microM) and NADPH (1.04-1.78 mM) are 60-1000 times higher than their KM values. Moreover, the changes in their concentrations in the state 4-state 3 transition are not enough to explain the changes in NO release. Nitric oxide release was exponentially dependent on membrane potential as reported for mitochondrial H2O2 production [S.S. Korshunov, V.P. Skulachev, A.A. Satarkov, High protonic potential actuates a mechanism of production of reactive oxygen species in mitochondria. FEBS Lett. 416 (1997) 15-18.]. Agents that decrease or abolish membrane potential minimize NO release while the addition of oligomycin that produces mitochondrial hyperpolarization generates the maximal NO release. The regulation of mtNOS activity, an apparently voltage-dependent enzyme, by membrane potential is marked at the physiological range of membrane potentials.


Subject(s)
Mitochondria/metabolism , Mitochondrial Membranes/metabolism , Nitric Oxide Synthase/metabolism , Animals , Female , Hydrogen-Ion Concentration , Membrane Potentials , Mitochondria/enzymology , Nitric Oxide/metabolism , Oxidation-Reduction , Oxygen/metabolism , Rats , Rats, Sprague-Dawley
19.
Biochim Biophys Acta ; 1757(5-6): 535-42, 2006.
Article in English | MEDLINE | ID: mdl-16615992

ABSTRACT

Mitochondria isolated from rat heart, liver, kidney and brain (respiratory control 4.0-6.5) release NO and H2O2 at rates that depend on the mitochondrial metabolic state: releases are higher in state 4, about 1.7-2.0 times for NO and 4-16 times for H2O2, than in state 3. NO release in rat liver mitochondria showed an exponential dependence on membrane potential in the range 55 to 180 mV, as determined by Rh-123 fluorescence. A similar behavior was reported for mitochondrial H2O2 production by [S.S. Korshunov, V.P. Skulachev, A.A. Starkov, High protonic potential actuates a mechanism of production of reactive oxygen species in mitochondria. FEBS Lett. 416 (1997) 15_18.]. Transition from state 4 to state 3 of brain cortex mitochondria was associated to a decrease in NO release (50%) and in membrane potential (24-53%), this latter determined by flow cytometry and DiOC6 and JC-1 fluorescence. The fraction of cytosolic NO provided by diffusion from mitochondria was 61% in heart, 47% in liver, 30% in kidney, and 18% in brain. The data supports the speculation that NO and H2O2 report a high mitochondrial energy charge to the cytosol. Regulation of mtNOS activity by membrane potential makes mtNOS a regulable enzyme that in turn regulates mitochondrial O2 uptake and H2O2 production.


Subject(s)
Cytosol/metabolism , Hydrogen Peroxide/metabolism , Mitochondria/metabolism , Nitric Oxide/metabolism , Animals , Brain/metabolism , Female , Hydrogen-Ion Concentration , In Vitro Techniques , Membrane Potentials , Mitochondria, Heart/metabolism , Mitochondria, Liver/metabolism , Mitochondrial Membranes/metabolism , Nitric Oxide/biosynthesis , Nitric Oxide Synthase/metabolism , Oxygen Consumption , Rats , Rats, Wistar , Reactive Oxygen Species/metabolism
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