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1.
Antioxidants (Basel) ; 8(9)2019 Sep 18.
Article in English | MEDLINE | ID: mdl-31540440

ABSTRACT

Stroke is a public health problem due to its high mortality and disability rates; despite these, the pharmacological treatments are limited. Oxidative stress plays an important role in cerebral damage in stroke and the activation of the nuclear factor erythroid 2-related factor 2 (Nrf2) confers protection against oxidative stress. Different compounds, such as diallyl trisulfide (DATS), have the ability to activate Nrf2. DATS protects against the damage induced in oxygen-glucose deprivation in neuronal cells; however, in in vivo models of cerebral ischemia, DATS has not been evaluated. Male Wistar rats were subjected to 1 h of ischemia and seven days of reperfusion and the protective effect of DATS was evaluated. DATS administration (IR + DATS) decreased the infarct area and brain damage in the striatum and cortex; improved neurological function; decreased malondialdehyde and metalloproteinase-9 levels; increased Nrf2 activation in the cortex and the expression of superoxide dismutase 1 (SOD1) in the nucleus, SOD2 and glutathione S-transferase (GST) in the striatum and cortex; and increased the activity of catalase (CAT) in the striatum and glutathione peroxidase (GPx) in the cortex. Our results demonstrate the protective effect of DATS in an in vivo model of cerebral ischemia that involves Nrf2 activation.

2.
J Appl Toxicol ; 39(4): 556-570, 2019 04.
Article in English | MEDLINE | ID: mdl-30484873

ABSTRACT

The use of hypoxia models in cell culture has allowed the characterization of the hypoxia response at the cellular, biochemical and molecular levels. Although a decrease in oxygen concentration is the optimal hypoxia model, the problem faced by many researchers is access to a hypoxia chamber or a CO2 incubator with regulated oxygen levels, which is not possible in many laboratories. Several alternative models have been used to mimic hypoxia. One of the most commonly used models is cobalt chloride-induced chemical hypoxia because it stabilizes hypoxia inducible factors 1α and 2α under normoxic conditions. This model has several advantages, and currently, there is a substantial amount of scattered information about how this model works. This review describes the characteristics of the model, as well as the biochemical and molecular bases that support it. The regulation of hypoxia inducible factors by oxygen and the role of CoCl2 are explained to understand the most accepted bases of the CoCl2 -induced hypoxia model. The different current hypotheses that explain the establishment of hypoxic conditions using CoCl2 are also described. Finally, based on the different observations reported in the literature, we provide a critical review about the scope and limitations of this widely used chemical hypoxia model to be informative to all researchers interested in the field.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/metabolism , Cell Hypoxia/drug effects , Cobalt/toxicity , Hypoxia-Inducible Factor 1, alpha Subunit/metabolism , Models, Biological , Animals , Basic Helix-Loop-Helix Transcription Factors/genetics , Cell Hypoxia/genetics , Cell Line , Cell Survival/drug effects , Cell Survival/genetics , Gene Expression Regulation/drug effects , Humans , Hypoxia-Inducible Factor 1, alpha Subunit/genetics , Oxidation-Reduction , Oxygen/metabolism
3.
Oxid Med Cell Longev ; 2012: 907162, 2012.
Article in English | MEDLINE | ID: mdl-22685624

ABSTRACT

Aged garlic extract (AGE) is an odorless garlic preparation containing S-allylcysteine (SAC) as its most abundant compound. A large number of studies have demonstrated the antioxidant activity of AGE and SAC in both in vivo--in diverse experimental animal models associated to oxidative stress--and in vitro conditions--using several methods to scavenge reactive oxygen species or to induce oxidative damage. Derived from these experiments, the protective effects of AGE and SAC have been associated with the prevention or amelioration of oxidative stress. In this work, we reviewed different antioxidant mechanisms (scavenging of free radicals and prooxidant species, induction of antioxidant enzymes, activation of Nrf2 factor, inhibition of prooxidant enzymes, and chelating effects) involved in the protective actions of AGE and SAC, thereby emphasizing their potential use as therapeutic agents. In addition, we highlight the ability of SAC to activate Nrf2 factor--a master regulator of the cellular redox state. Here, we include original data showing the ability of SAC to activate Nrf2 factor in cerebral cortex. Therefore, we conclude that the therapeutic properties of these molecules comprise cellular and molecular mechanisms at different levels.


Subject(s)
Antioxidants/pharmacology , Cysteine/analogs & derivatives , Garlic/chemistry , Plant Extracts/pharmacology , Animals , Cysteine/chemistry , Cysteine/pharmacokinetics , Humans , NF-E2-Related Factor 2/metabolism , Neuroprotective Agents/pharmacology , Oxidative Stress/drug effects , Oxidoreductases/metabolism , Plant Extracts/chemistry , Reactive Oxygen Species/metabolism , Time Factors
4.
Proteins ; 72(3): 972-9, 2008 Aug 15.
Article in English | MEDLINE | ID: mdl-18300228

ABSTRACT

Triosephosphate isomerase (TIM), whose structure is archetypal of dimeric (beta/alpha)(8) barrels, has a conserved salt bridge (Arg189-Asp225 in yeast TIM) that connects the two C-terminal beta/alpha segments to rest of the monomer. We constructed the mutant D225Q, and studied its catalysis and stability in comparison with those of the wild-type enzyme. Replacement of Asp225 by Gln caused minor drops in k(cat) and K(M), but the catalytic efficiency (k(cat)/K(M)) was practically unaffected. Temperature-induced unfolding-refolding of both TIM samples displayed hysteresis cycles, indicative of processes far from equilibrium. Kinetic studies showed that the rate constant for unfolding was about three-fold larger in the mutant than in wild-type TIM. However, more drastic changes were found in the kinetics of refolding: upon mutation, the rate-limiting step changed from a second-order (at submicromolar concentrations) to a first-order reaction. These results thus indicate that renaturation of yTIM occurs through a uni-bimolecular mechanism in which refolding of the monomer most likely begins at the C-terminal half of its polypeptide chain. From the temperature dependence of the refolding rate, we determined the change in heat capacity for the formation of the transition state from unfolded monomers. The value for the D225Q mutant, which is about 40% of the corresponding value for yTIM, would implicate the folding of only three quarters of a monomer chain in the transition state.


Subject(s)
Protein Folding , Saccharomyces cerevisiae/enzymology , Triose-Phosphate Isomerase/chemistry , Triose-Phosphate Isomerase/metabolism , Catalysis , Dimerization , Enzyme Activation , Half-Life , Kinetics , Mutant Proteins/chemistry , Mutant Proteins/metabolism , Protein Structure, Secondary , Temperature , Time Factors
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