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1.
Elife ; 92020 07 23.
Article in English | MEDLINE | ID: mdl-32701055

ABSTRACT

Chronic ethanol consumption is a leading cause of mortality worldwide, with higher risks to develop pulmonary infections, including Aspergillus infections. Mechanisms underlying increased susceptibility to infections are poorly understood. Chronic ethanol consumption induced increased mortality rates, higher Aspergillus fumigatus burden and reduced neutrophil recruitment into the airways. Intravital microscopy showed decrease in leukocyte adhesion and rolling after ethanol consumption. Moreover, downregulated neutrophil activation and increased levels of serum CXCL1 in ethanol-fed mice induced internalization of CXCR2 receptor in circulating neutrophils. Bone marrow-derived neutrophils from ethanol-fed mice showed lower fungal clearance and defective reactive oxygen species production. Taken together, results showed that ethanol affects activation, recruitment, phagocytosis and killing functions of neutrophils, causing susceptibility to pulmonary A. fumigatus infection. This study establishes a new paradigm in innate immune response in chronic ethanol consumers.


Alcoholism is a chronic disease that has many damaging effects on the body. Over long periods, excessive alcohol intake weakens the immune system, putting consumers at increased risk of getting lung infections such as pneumonia. Some forms of pneumonia can be caused by the fungus Aspergillus fumigatus. This microbe does not tend to be a problem for healthy individuals, but it can be fatal for those with impaired immune systems. Here, Malacco et al. wanted to find out why excessive alcohol consumers are more prone to pneumonia. To test this, the researchers used two groups of mice that were either fed plain water or water containing ethanol. After 12 weeks, both groups were infected with Aspergillus fumigatus. The results showed that alcohol-fed mice were more susceptible to the infection caused by strong inflammation of the lungs. Normally, the immune system confronts a lung infection by activating a group of defense cells called neutrophils, which travel through the blood system to the infection site. Once in the right spot, neutrophils get to work by releasing toxins that kill the fungus. Malacco et al. discovered that after chronic alcohol consumption, neutrophils were less reactive to inflammatory signals and less likely to reach the lungs. They were also less effective in dealing with the infection. Neutrophil released fewer toxins and were thus less able to kill the microbial cells. These findings demonstrate for the first time how alcohol can affect immune cells during infection and pave the way for new possibilities to prevent fatal lung infections in excessive alcohol consumers. A next step would be to identify how alcohol acts on other processes in the body and to find a way to modulate or even revert the changes it causes.


Subject(s)
Aspergillosis/immunology , Aspergillus fumigatus/immunology , Ethanol/adverse effects , Lung Diseases, Fungal/immunology , Neutrophils/drug effects , Acute Disease , Animals , Aspergillosis/chemically induced , Aspergillosis/pathology , CD11b Antigen/metabolism , Chemotaxis/drug effects , Cytokines/immunology , Disease Susceptibility , Inflammation/chemically induced , L-Selectin/metabolism , Lung Diseases, Fungal/chemically induced , Lung Diseases, Fungal/microbiology , Lung Diseases, Fungal/pathology , Lymphocytes/drug effects , Male , Mice , Mice, Inbred C57BL , Neutrophils/immunology , Phagocytosis/drug effects , Receptors, Interleukin-8B/metabolism , Respiratory Burst/drug effects
2.
Parasitology ; 144(11): 1498-1510, 2017 Sep.
Article in English | MEDLINE | ID: mdl-28653592

ABSTRACT

Trypanosoma cruzi is exposed to oxidative stresses during its life cycle, and amongst the strategies employed by this parasite to deal with these situations sits a peculiar trypanothione-dependent antioxidant system. Remarkably, T. cruzi's antioxidant repertoire does not include catalase. In an attempt to shed light on what are the reasons by which this parasite lacks this enzyme, a T. cruzi cell line stably expressing catalase showed an increased resistance to hydrogen peroxide (H2O2) when compared with wild-type cells. Interestingly, preconditioning carried out with low concentrations of H2O2 led untransfected parasites to be as much resistant to this oxidant as cells expressing catalase, but did not induce the same level of increased resistance in the latter ones. Also, presence of catalase decreased trypanothione reductase and increased superoxide dismutase levels in T. cruzi, resulting in higher levels of residual H2O2 after challenge with this oxidant. Although expression of catalase contributed to elevated proliferation rates of T. cruzi in Rhodnius prolixus, it failed to induce a significant increase of parasite virulence in mice. Altogether, these results indicate that the absence of a gene encoding catalase in T. cruzi has played an important role in allowing this parasite to develop a shrill capacity to sense and overcome oxidative stress.


Subject(s)
Catalase/metabolism , Oxidative Stress , Signal Transduction , Trypanosoma cruzi/metabolism , Animals , Catalase/genetics , Cell Line , Chagas Disease/parasitology , Hydrogen Peroxide/metabolism , Hydrogen Peroxide/pharmacology , Mice , NADH, NADPH Oxidoreductases/metabolism , Rhodnius/parasitology , Superoxide Dismutase/metabolism , Transfection , Trypanosoma cruzi/drug effects , Trypanosoma cruzi/pathogenicity
3.
Parasit Vectors ; 9: 193, 2016 Apr 07.
Article in English | MEDLINE | ID: mdl-27056545

ABSTRACT

BACKGROUND: Reactive oxygen species (ROS) protect the host against a large number of pathogenic microorganisms. ROS have different effects on parasites of the genus Leishmania: some parasites are susceptible to their action, while others seem to be resistant. The role of ROS in L. amazonensis infection in vivo has not been addressed to date. METHODS: In this study, C57BL/6 wild-type mice (WT) and mice genetically deficient in ROS production by phagocytes (gp91(phox-/-)) were infected with metacyclic promastigotes of L. amazonensis to address the effect of ROS in parasite control. Inflammatory cytokines, parasite loads and myeloperoxidase (MPO) activity were evaluated. In parallel, in vitro infection of peritoneal macrophages was assessed to determine parasite killing, cytokine, NO and ROS production. RESULTS: In vitro results show induction of ROS production by infected peritoneal macrophages, but no effect in parasite killing. Also, ROS do not seem to be important to parasite killing in vivo, but they control lesion sizes at early stages of infection. IFN-γ, TNF-α and IL-10 production did not differ among mouse strains. Myeloperoxidase assay showed augmented neutrophils influx 6 h and 72 h post - infection in gp91(phox-/-) mice, indicating a larger inflammatory response in gp91(phox-/-) even at early time points. At later time points, neutrophil numbers in lesions correlated with lesion size: larger lesions in gp91(phox-/-) at earlier times of infection corresponded to larger neutrophil infiltrates, while larger lesions in WT mice at the later points of infection also displayed larger numbers of neutrophils. CONCLUSION: ROS do not seem to be important in L. amazonensis killing, but they regulate the inflammatory response probably by controlling neutrophils numbers in lesions.


Subject(s)
Inflammation/pathology , Leishmania mexicana/immunology , Leishmaniasis/immunology , Parasite Load , Reactive Oxygen Species/toxicity , Animals , Cytokines/analysis , Disease Models, Animal , Leishmaniasis/pathology , Mice , Mice, Inbred C57BL , Peroxidase/analysis
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