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1.
Arq. bras. cardiol ; 105(1): 71-81, July 2015. tab, ilus
Article in English | LILACS | ID: lil-755009

ABSTRACT

Background:

Acute myocardial infarction is the leading cause of morbidity and mortality worldwide. Furthermore, research has shown that exercise, in addition to reducing cardiovascular risk factors, can also protect the heart against injury due to ischemia and reperfusion through a direct effect on the myocardium. However, the specific mechanism involved in exerciseinduced cardiac preconditioning is still under debate.

Objective:

To perform a systematic review of the studies that have addressed the mechanisms by which aerobic exercise promotes direct cardioprotection against ischemia and reperfusion injury.

Methods:

A search was conducted using MEDLINE, Literatura Latino-Americana e do Caribe de Informação em Ciências da Saúde, and Scientific Electronic Library Online databases. Data were extracted in a standardized manner by two independent researchers, who were responsible for assessing the methodological quality of the studies.

Results:

The search retrieved 78 studies; after evaluating the abstracts, 30 studies were excluded. The manuscripts of the remaining 48 studies were completely read and, of these, 20 were excluded. Finally, 28 studies were included in this systematic review.

Conclusion:

On the basis of the selected studies, the following are potentially involved in the cardioprotective response to exercise: increased heat shock protein production, nitric oxide pathway involvement, increased cardiac antioxidant capacity, improvement in ATP-dependent potassium channel function, and opioid system activation. Despite all the previous investigations, further research is still necessary to obtain more consistent conclusions.

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Fundamento:

O infarto agudo do miocárdio é a principal causa de mortalidade e de morbidade na população mundial. Por outro lado, pesquisas já demonstraram que o exercício físico, além de reduzir os fatores de risco cardiovascular, também é capaz de promover cardioproteção contra lesões por isquemia e reperfusão, por meio de um efeito direto no miocárdio. No entanto, o mecanismo específico envolvido no pré-condicionamento cardíaco induzido pelo exercício ainda é alvo de discussão.

Objetivo:

Realizar uma revisão sistemática acerca dos estudos que se debruçaram sobre os mecanismos pelos quais o exercício físico aeróbio promove cardioproteção direta contra lesões por isquemia e reperfusão.

Métodos:

Foi realizada uma pesquisa nas seguintes bases de dados: MEDLINE, LILACS e SciELO. Os dados foram extraídos de forma padronizada, por dois investigadores independentes, responsáveis pela avaliação da qualidade metodológica dos manuscritos.

Resultados:

A busca inicial resultou em 78 estudos, dos quais, após revisão dos resumos, 30 foram excluídos. Os 48 manuscritos restantes foram lidos na íntegra e, destes, 20 foram excluídos, restando 28 estudos incluídos nesta revisão sistemática.

Conclusão:

Com base nos estudos selecionados, os seguintes mecanismos estão potencialmente envolvidos na resposta cardioprotetora do exercício: aumento na produção de proteínas de choque térmico; envolvimento da via do óxido nítrico; aumento na capacidade antioxidativa cardíaca; melhora na função dos canais de potássio dependentes de ATP; e ativação do sistema de opióides. Apesar de todo o investimento já realizado, ainda é necessário mais investimento em trabalhos futuros, para obtenção de conclusão mais consistente.

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Subject(s)
Humans , Exercise Therapy/methods , Exercise/physiology , Myocardial Infarction/metabolism , Myocardial Reperfusion Injury/metabolism , Antioxidants/metabolism , Heat-Shock Proteins/metabolism , KATP Channels/metabolism , Myocardial Infarction/physiopathology , Myocardial Infarction/prevention & control , Myocardial Reperfusion Injury/physiopathology , Myocardial Reperfusion Injury/prevention & control , Time Factors
2.
Experimental & Molecular Medicine ; : e190-2015.
Article in English | WPRIM | ID: wpr-165768

ABSTRACT

AMP-activated protein kinase (AMPK) is a metabolic sensor activated during metabolic stress and it regulates various enzymes and cellular processes to maintain metabolic homeostasis. We previously reported that activation of AMPK by glucose deprivation (GD) and leptin increases KATP currents by increasing the surface levels of KATP channel proteins in pancreatic beta-cells. Here, we show that the signaling mechanisms that mediate actin cytoskeleton remodeling are closely associated with AMPK-induced KATP channel trafficking. Using F-actin staining with Alexa 633-conjugated phalloidin, we observed that dense cortical actin filaments present in INS-1 cells cultured in 11 mM glucose were disrupted by GD or leptin treatment. These changes were blocked by inhibiting AMPK using compound C or siAMPK and mimicked by activating AMPK using AICAR, indicating that cytoskeletal remodeling induced by GD or leptin was mediated by AMPK signaling. AMPK activation led to the activation of Rac GTPase and the phosphorylation of myosin regulatory light chain (MRLC). AMPK-dependent actin remodeling induced by GD or leptin was abolished by the inhibition of Rac with a Rac inhibitor (NSC23766), siRac1 or siRac2, and by inhibition of myosin II with a myosin ATPase inhibitor (blebbistatin). Immunocytochemistry, surface biotinylation and electrophysiological analyses of KATP channel activity and membrane potentials revealed that AMPK-dependent KATP channel trafficking to the plasma membrane was also inhibited by NSC23766 or blebbistatin. Taken together, these results indicate that AMPK/Rac-dependent cytoskeletal remodeling associated with myosin II motor function promotes the translocation of KATP channels to the plasma membrane in pancreatic beta-cells.


Subject(s)
Animals , Rats , AMP-Activated Protein Kinases/metabolism , Actins/metabolism , Cell Line , Glucose/metabolism , Insulin-Secreting Cells/metabolism , KATP Channels/metabolism , Leptin/metabolism , Myosin Type II/metabolism , Phosphorylation , Signal Transduction , rac GTP-Binding Proteins/metabolism
3.
Braz. j. med. biol. res ; 45(6): 531-536, June 2012. ilus
Article in English | LILACS | ID: lil-622778

ABSTRACT

Implantation of Walker 256 tumor decreases acute systemic inflammation in rats. Inflammatory hyperalgesia is one of the most important events of acute inflammation. The L-arginine/NO/cGMP/K+ATP pathway has been proposed as the mechanism of peripheral antinociception mediated by several drugs and physical exercise. The objective of this study was to investigate a possible involvement of the NO/cGMP/K+ATP pathway in antinociception induced in Walker 256 tumor-bearing male Wistar rats (180-220 g). The groups consisted of 5-6 animals. Mechanical inflammatory hypernociception was evaluated using an electronic version of the von Frey test. Walker tumor (4th and 7th day post-implantation) reduced prostaglandin E2- (PGE2, 400 ng/paw; 50 µL; intraplantar injection) and carrageenan-induced hypernociception (500 µg/paw; 100 µL; intraplantar injection). Walker tumor-induced analgesia was reversed (99.3% for carrageenan and 77.2% for PGE2) by a selective inhibitor of nitric oxide synthase (L-NAME; 90 mg/kg, ip) and L-arginine (200 mg/kg, ip), which prevented (80% for carrageenan and 65% for PGE2) the effect of L-NAME. Treatment with the soluble guanylyl cyclase inhibitor ODQ (100% for carrageenan and 95% for PGE2; 8 µg/paw) and the ATP-sensitive K+ channel (KATP) blocker glibenclamide (87.5% for carrageenan and 100% for PGE2; 160 µg/paw) reversed the antinociceptive effect of tumor bearing in a statistically significant manner (P < 0.05). The present study confirmed an intrinsic peripheral antinociceptive effect of Walker tumor bearing in rats. This antinociceptive effect seemed to be mediated by activation of the NO/cGMP pathway followed by the opening of KATP channels.


Subject(s)
Animals , Male , Rats , Analgesics/metabolism , /metabolism , Cyclic GMP/metabolism , KATP Channels/metabolism , Nitric Oxide/metabolism , Nociception/drug effects , Pain Threshold/drug effects , Arginine/metabolism , Carrageenan/antagonists & inhibitors , Carrageenan/pharmacology , Dinoprostone/pharmacology , Hyperalgesia/drug therapy , Hyperalgesia/etiology , Oxadiazoles/pharmacology , Pain Measurement , Pain Threshold/physiology , Quinoxalines/pharmacology , Rats, Wistar , Signal Transduction
4.
Journal of Korean Medical Science ; : 380-386, 2010.
Article in English | WPRIM | ID: wpr-161042

ABSTRACT

Polyphenol (-)-epigallocatechin gallate (EGCG), the most abundant catechin of green tea, appears to attenuate myocardial ischemia/reperfusion injury. We investigated the involvement of ATP-sensitive potassium (K(ATP)) channels in EGCG-induced cardioprotection. Isolated rat hearts were subjected to 30 min of regional ischemia and 2 hr of reperfusion. EGCG was perfused for 40 min, from 10 min before to the end of index ischemia. A nonselective K(ATP) channel blocker glibenclamide (GLI) and a selective mitochondrial K(ATP) (mK(ATP)) channel blocker 5-hydroxydecanoate (HD) were perfused in EGCG-treated hearts. There were no differences in coronary flow and cardiodynamics including heart rate, left ventricular developed pressure, rate-pressure product, +dP/dt(max), and -dP/dt(min) throughout the experiments among groups. EGCG-treatment significantly reduced myocardial infarction (14.5+/-2.5% in EGCG 1 micrometer and 4.0+/-1.7% in EGCG 10 micrometer, P<0.001 vs. control 27.2+/-1.4%). This anti-infarct effect was totally abrogated by 10 micrometer GLI (24.6+/-1.5%, P<0.001 vs. EGCG). Similarly, 100 micrometer HD also aborted the anti-infarct effect of EGCG (24.1+/-1.2%, P<0.001 vs. EGCG ). These data support a role for the K(ATP) channels in EGCG-induced cardioprotection. The mK(ATP) channels play a crucial role in the cardioprotection by EGCG.


Subject(s)
Animals , Humans , Male , Rats , Anti-Arrhythmia Agents/pharmacology , Antioxidants/pharmacology , Catechin/analogs & derivatives , Decanoic Acids/pharmacology , Glyburide/pharmacology , Heart/drug effects , Hemodynamics , Hydroxy Acids/pharmacology , KATP Channels/metabolism , Mitochondria, Heart/drug effects , Myocardial Infarction/pathology , Myocardial Ischemia/pathology , Potassium Channel Blockers/pharmacology , Rats, Wistar
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