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1.
Front Physiol ; 10: 751, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31312142

RESUMO

High (millimolar) concentrations of the histidine containing dipeptide - carnosine (ß-alanine-L-histidine) are present in the skeletal muscle. The dipeptide has been shown to buffer intracellular pH, chelate transition metals, and scavenge lipid peroxidation products; however, its role in protecting against tissue injury remains unclear. In this study, we tested the hypothesis that carnosine protects against post ischemia by augmenting HIF-1α angiogenic signaling by Fe2+ chelation. We found that wild type (WT) C57BL/6 mice, subjected to hind limb ischemia (HLI) and supplemented with carnosine (1g/L) in drinking water, had improved blood flow recovery and limb function, enhanced revascularization and regeneration of myocytes compared with HLI mice placed on water alone. Carnosine supplementation enhanced the bioavailability of carnosine in the ischemic limb, which was accompanied by increased expression of proton-coupled oligopeptide transporters. Consistent with our hypothesis, carnosine supplementation augmented HIF-1α and VEGF expression in the ischemic limb and the mobilization of proangiogenic Flk-1+/Sca-1+ cells into circulation. Pretreatment of murine myoblast (C2C12) cells with octyl-D-carnosine or carnosine enhanced HIF-1α protein expression, VEGF mRNA levels and VEGF release under hypoxic conditions. Similarly pretreatment of WT C57/Bl6 mice with carnosine showed enhanced blood flow in the ischemic limb following HLI surgery. In contrast, pretreatment of hypoxic C2C12 cells with methylcarcinine, a carnosine analog, lacking Fe2+ chelating capacity, had no effect on HIF-1α levels and VEGF release. Collectively, these data suggest that carnosine promotes post ischemic revascularization via augmentation of pro-angiogenic HIF-1α/VEGF signaling, possibly by Fe2+ chelation.

2.
J Physiol ; 594(17): 4849-63, 2016 09 01.
Artigo em Inglês | MEDLINE | ID: mdl-27062388

RESUMO

KEY POINTS: Using recombinant DNA technology, the present study provides the first strong and direct evidence indicating that ß-alanine is an efficient substrate for the mammalian transaminating enzymes 4-aminobutyrate-2-oxoglutarate transaminase and alanine-glyoxylate transaminase. The concentration of carnosine and anserine in murine skeletal and heart muscle depends on circulating availability of ß-alanine, which is in turn controlled by degradation of ß-alanine in liver and kidney. Chronic oral ß-alanine supplementation is a popular ergogenic strategy in sports because it can increase the intracellular carnosine concentration and subsequently improve the performance of high-intensity exercises. The present study can partly explain why the ß-alanine supplementation protocol is so inefficient, by demonstrating that exogenous ß-alanine can be effectively routed toward oxidation. ABSTRACT: The metabolic fate of orally ingested ß-alanine is largely unknown. Chronic ß-alanine supplementation is becoming increasingly popular for improving high-intensity exercise performance because it is the rate-limiting precursor of the dipeptide carnosine (ß-alanyl-l-histidine) in muscle. However, only a small fraction (3-6%) of the ingested ß-alanine is used for carnosine synthesis. Thus, the present study aimed to investigate the putative contribution of two ß-alanine transamination enzymes, namely 4-aminobutyrate-2-oxoglutarate transaminase (GABA-T) and alanine-glyoxylate transaminase (AGXT2), to the homeostasis of carnosine and its methylated analogue anserine. We found that, when transfected into HEK293T cells, recombinant mouse and human GABA-T and AGXT2 are able to transaminate ß-alanine efficiently. The reaction catalysed by GABA-T is inhibited by vigabatrin, whereas both GABA-T and AGXT2 activity is inhibited by aminooxyacetic acid (AOA). Both GABA-T and AGXT2 are highly expressed in the mouse liver and kidney and the administration of the inhibitors effectively reduced their enzyme activity in liver (GABA-T for vigabatrin; GABA-T and AGXT2 for AOA). In vivo, injection of AOA in C57BL/6 mice placed on ß-alanine (0.1% w/v in drinking water) for 2 weeks lead to a 3-fold increase in circulating ß-alanine levels and to significantly higher levels of carnosine and anserine in skeletal muscle and heart. By contrast, specific inhibition of GABA-T by vigabatrin did not affect carnosine and anserine levels in either tissue. Collectively, these data demonstrate that homeostasis of carnosine and anserine in mammalian skeletal muscle and heart is controlled by circulating ß-alanine levels, which are suppressed by hepatic and renal ß-alanine transamination upon oral ß-alanine intake.


Assuntos
Anserina/metabolismo , Carnosina/metabolismo , Músculo Esquelético/metabolismo , Miocárdio/metabolismo , Transaminases/metabolismo , beta-Alanina/metabolismo , Ácido Amino-Oxiacético/farmacologia , Animais , Encéfalo/metabolismo , Inibidores Enzimáticos/farmacologia , GABAérgicos/farmacologia , Células HEK293 , Homeostase , Humanos , Rim/metabolismo , Fígado/metabolismo , Masculino , Camundongos Endogâmicos C57BL , RNA Mensageiro/metabolismo , Transaminases/antagonistas & inibidores , Transaminases/genética , Vigabatrina/farmacologia , beta-Alanina/sangue , beta-Alanina/urina
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