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Am J Physiol Lung Cell Mol Physiol ; 326(4): L468-L476, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38318660

ABSTRACT

Nasal nitric oxide (nNO) is low in most patients with primary ciliary dyskinesia (PCD). Decreased ciliary motion could lead to antigen stasis, increasing oxidant production and NO oxidation in the airways. This could both decrease gas phase NO and increase nitrosative stress. We studied primary airway epithelial cells from healthy controls (HCs) and patients with PCD with several different genotypes. We measured antigen clearance in fenestrated membranes exposed apically to the fluorescently labeled antigen Dermatophagoides pteronyssinus (Derp1-f). We immunoblotted for 3-nitrotyrosine (3-NT) and for oxidative response enzymes. We measured headspace NO above primary airway cells without and with a PCD-causing genotype. We measured nNO and exhaled breath condensate (EBC) H2O2 in vivo. Apical Derp1-f was cleared from HC better than from PCD cells. DUOX1 expression was lower in HC than in PCD cells at baseline and after 24-h Derp1-f exposure. HC cells had less 3-NT and NO3- than PCD cells. However, NO consumption by HC cells was less than that by PCD cells; NO loss was prevented by superoxide dismutase (SOD) and by apocynin. nNO was higher in HCs than in patients with PCD. EBC H2O2 was lower in HC than in patients with PCD. The PCD airway epithelium does not optimally clear antigens and is subject to oxidative and nitrosative stress. Oxidation associated with antigen stasis could represent a therapeutic target in PCD, one with convenient monitoring biomarkers.NEW & NOTEWORTHY The PCD airway epithelium does not optimally clear antigens, and antigen exposure can lead to NO oxidation and nitrosative stress. Oxidation caused by antigen stasis could represent a therapeutic target in PCD, and there are convenient monitoring biomarkers.


Subject(s)
Ciliary Motility Disorders , Kartagener Syndrome , Humans , Hydrogen Peroxide , Nitrosative Stress , Breath Tests , Nitric Oxide/metabolism , Biomarkers/metabolism , Kartagener Syndrome/metabolism
2.
Mem. Inst. Oswaldo Cruz ; 105(5): 687-691, Aug. 2010. graf
Article in English | LILACS | ID: lil-557231

ABSTRACT

The potential use of the Trypanosoma cruzi metacyclic trypomastigote (MT) stage-specific molecule glycoprotein-82 (gp82) as a vaccine target has not been fully explored. We show that the opsonization of T. cruzi MT with gp82-specific antibody prior to mucosal challenge significantly reduces parasite infectivity. In addition, we investigated the immune responses as well as the systemic and mucosal protective immunity induced by intranasal CpG-adjuvanted gp82 vaccination. Spleen cells from mice immunized with CpG-gp82 proliferated and secreted IFN-γ in a dose-dependent manner in response to in vitro stimulation with gp82 and parasite lysate. More importantly, these CpG-gp82-immunized mice were significantly protected from a biologically relevant oral parasite challenge.


Subject(s)
Animals , Female , Mice , Chagas Disease , Protozoan Proteins/immunology , Protozoan Vaccines/immunology , Trypanosoma cruzi/immunology , Variant Surface Glycoproteins, Trypanosoma/immunology , Administration, Intranasal , Chagas Disease/immunology , Immunity, Mucosal , Mice, Inbred BALB C , Protozoan Proteins , Protozoan Vaccines , Variant Surface Glycoproteins, Trypanosoma
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