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1.
PLoS Pathog ; 10(6): e1004205, 2014 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-24945831

RESUMO

Similar to developmental programs in eukaryotes, the death of a subpopulation of cells is thought to benefit bacterial biofilm development. However mechanisms that mediate a tight control over cell death are not clearly understood at the population level. Here we reveal that CidR dependent pyruvate oxidase (CidC) and α-acetolactate synthase/decarboxylase (AlsSD) overflow metabolic pathways, which are active during staphylococcal biofilm development, modulate cell death to achieve optimal biofilm biomass. Whereas acetate derived from CidC activity potentiates cell death in cells by a mechanism dependent on intracellular acidification and respiratory inhibition, AlsSD activity effectively counters CidC action by diverting carbon flux towards neutral rather than acidic byproducts and consuming intracellular protons in the process. Furthermore, the physiological features that accompany metabolic activation of cell death bears remarkable similarities to hallmarks of eukaryotic programmed cell death, including the generation of reactive oxygen species and DNA damage. Finally, we demonstrate that the metabolic modulation of cell death not only affects biofilm development but also biofilm-dependent disease outcomes. Given the ubiquity of such carbon overflow pathways in diverse bacterial species, we propose that the metabolic control of cell death may be a fundamental feature of prokaryotic development.


Assuntos
Acetolactato Sintase/metabolismo , Biofilmes/crescimento & desenvolvimento , Carboxiliases/metabolismo , Piruvato Oxidase/metabolismo , Staphylococcus aureus/metabolismo , Acetatos/metabolismo , Animais , Carbono/metabolismo , Dano ao DNA , Endocardite Bacteriana/imunologia , Endocardite Bacteriana/microbiologia , Endocardite Bacteriana/patologia , Regulação Bacteriana da Expressão Gênica , Consumo de Oxigênio , Coelhos , Espécies Reativas de Oxigênio
2.
mBio ; 4(4)2013 Aug 20.
Artigo em Inglês | MEDLINE | ID: mdl-23963176

RESUMO

UNLABELLED: A recent controversial hypothesis suggested that the bactericidal action of antibiotics is due to the generation of endogenous reactive oxygen species (ROS), a process requiring the citric acid cycle (tricarboxylic acid [TCA] cycle). To test this hypothesis, we assessed the ability of oxacillin to induce ROS production and cell death in Staphylococcus epidermidis strain 1457 and an isogenic citric acid cycle mutant. Our results confirm a contributory role for TCA-dependent ROS in enhancing susceptibility of S. epidermidis toward ß-lactam antibiotics and also revealed a propensity for clinical isolates to accumulate TCA cycle dysfunctions presumably as a way to tolerate these antibiotics. The increased protection from ß-lactam antibiotics could result from pleiotropic effects of a dysfunctional TCA cycle, including increased resistance to oxidative stress, reduced susceptibility to autolysis, and a more positively charged cell surface. IMPORTANCE: Staphylococcus epidermidis, a normal inhabitant of the human skin microflora, is the most common cause of indwelling medical device infections. In the present study, we analyzed 126 clinical S. epidermidis isolates and discovered that tricarboxylic acid (TCA) cycle dysfunctions are relatively common in the clinical environment. We determined that a dysfunctional TCA cycle enables S. epidermidis to resist oxidative stress and alter its cell surface properties, making it less susceptible to ß-lactam antibiotics.


Assuntos
Antibacterianos/farmacologia , Ciclo do Ácido Cítrico , Viabilidade Microbiana/efeitos dos fármacos , Staphylococcus epidermidis/efeitos dos fármacos , Staphylococcus epidermidis/metabolismo , beta-Lactamas/farmacologia , Humanos , Testes de Sensibilidade Microbiana , Oxacilina/farmacologia , Estresse Oxidativo , Espécies Reativas de Oxigênio/metabolismo , Staphylococcus epidermidis/fisiologia
3.
Free Radic Biol Med ; 60: 282-91, 2013 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-23466554

RESUMO

We investigate the hypothesis that oxidative damage of the cerebral vascular barrier interface (the blood-brain barrier, BBB) causes the development of mild traumatic brain injury (TBI) during a primary blast-wave spectrum. The underlying biochemical and cellular mechanisms of this vascular layer-structure injury are examined in a novel animal model of shock tube. We first established that low-frequency (123kPa) single or repeated shock wave causes BBB/brain injury through biochemical activation by an acute mechanical force that occurs 6-24h after the exposure. This biochemical damage of the cerebral vasculature is initiated by the induction of the free radical-generating enzymes NADPH oxidase 1 and inducible nitric oxide synthase. Induction of these enzymes by shock-wave exposure paralleled the signatures of oxidative and nitrosative damage (4-HNE/3-NT) and reduction of the BBB tight-junction (TJ) proteins occludin, claudin-5, and zonula occluden 1 in the brain microvessels. In parallel with TJ protein disruption, the perivascular unit was significantly diminished by single or repeated shock-wave exposure coinciding with the kinetic profile. Loosening of the vasculature and perivascular unit was mediated by oxidative stress-induced activation of matrix metalloproteinases and fluid channel aquaporin-4, promoting vascular fluid cavitation/edema, enhanced leakiness of the BBB, and progression of neuroinflammation. The BBB leakiness and neuroinflammation were functionally demonstrated in an in vivo model by enhanced permeativity of Evans blue and sodium fluorescein low-molecular-weight tracers and the infiltration of immune cells across the BBB. The detection of brain cell proteins neuron-specific enolase and S100ß in the blood samples validated the neuroastroglial injury in shock-wave TBI. Our hypothesis that cerebral vascular injury occurs before the development of neurological disorders in mild TBI was further confirmed by the activation of caspase-3 and cell apoptosis mostly around the perivascular region. Thus, induction of oxidative stress and activation of matrix metalloproteinases by shock wave underlie the mechanisms of cerebral vascular BBB leakage and neuroinflammation.


Assuntos
Traumatismos por Explosões/enzimologia , Barreira Hematoencefálica/enzimologia , Lesões Encefálicas/enzimologia , Acidente Vascular Cerebral/enzimologia , Animais , Traumatismos por Explosões/patologia , Vasos Sanguíneos/lesões , Vasos Sanguíneos/patologia , Barreira Hematoencefálica/patologia , Lesões Encefálicas/metabolismo , Lesões Encefálicas/patologia , Cerebelo/irrigação sanguínea , Cerebelo/patologia , Modelos Animais de Doenças , Humanos , Inflamação/metabolismo , Inflamação/patologia , Metaloproteinases da Matriz/metabolismo , NADH NADPH Oxirredutases/metabolismo , NADPH Oxidase 1 , Óxido Nítrico Sintase/metabolismo , Estresse Oxidativo , Ratos , Acidente Vascular Cerebral/etiologia , Acidente Vascular Cerebral/patologia
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