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1.
Clin Exp Allergy ; 54(2): 109-119, 2024 02.
Artículo en Inglés | MEDLINE | ID: mdl-38011856

RESUMEN

BACKGROUND: Preschool wheeze attacks triggered by recurrent viral infections, including respiratory syncytial virus (RSV), are associated with an increased risk of childhood asthma. However, mechanisms that lead to asthma following early-life viral wheezing remain uncertain. METHODS: To investigate a causal relationship between early-life RSV infections and onset of type 2 immunity, we developed a neonatal murine model of recurrent RSV infection, in vivo and in silico, and evaluated the dynamical changes of altered airway barrier function and downstream immune responses, including eosinophilia, mucus secretion and type 2 immunity. RESULTS: RSV infection of neonatal BALB/c mice at 5 and 15 days of age induced robust airway eosinophilia, increased pulmonary CD4+ IL-13+ and CD4+ IL-5+ cells, elevated levels of IL-13 and IL-5 and increased airway mucus at 20 days of age. Increased bronchoalveolar lavage albumin levels, suggesting epithelial barrier damage, were present and persisted following the second RSV infection. Computational in silico simulations demonstrated that recurrent RSV infection resulted in severe damage of the airway barrier (epithelium), triggering the onset of type 2 immunity. The in silico results also demonstrated that recurrent infection is not always necessary for the development of type 2 immunity, which could also be triggered with single infection of high viral load or when the epithelial barrier repair is compromised. CONCLUSIONS: The neonatal murine model demonstrated that recurrent RSV infection in early life alters airway barrier function and promotes type 2 immunity. A causal relationship between airway barrier function and type 2 immunity was suggested using in silico model simulations.


Asunto(s)
Asma , Eosinofilia , Infecciones por Virus Sincitial Respiratorio , Humanos , Preescolar , Animales , Ratones , Recién Nacido , Infecciones por Virus Sincitial Respiratorio/complicaciones , Interleucina-13 , Modelos Animales de Enfermedad , Interleucina-5 , Pulmón , Asma/etiología , Eosinofilia/etiología , Ratones Endogámicos BALB C
2.
Biophys J ; 119(5): 1015-1024, 2020 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-32783879

RESUMEN

Upon nitrogen starvation, Schizosaccharomyces pombe exit the mitotic cell cycle and become irreversibly committed to the completion of meiosis program. Meiotic cell divisions are coordinated with sporulation events to produce haploid spores. In the last few decades, experiments on fission yeast have revealed different molecular players involved in two meiotic cell divisions, meiosis I (MI) and meiosis II (MII). How the MI entry, MI-to-MII transition, and MII exit occur because of the dynamics of the regulatory network is not well understood. In this work, we developed a comprehensive mathematical model of the network that describes the temporal dynamics of meiotic progression. The model accounts for the phenotypes of several experimental data (single and multiple mutations). We demonstrate the control strategy involving multiple feedback loops to yield two successive division cycles. The differential regulation of anaphase-promoting complex/cyclosome (APC/C) coactivators and its inhibitors is crucial for the dynamics of both MI-to-MII transition and MII exit. This model generates mechanistic insights that help in further experiments and modeling.


Asunto(s)
Proteínas de Schizosaccharomyces pombe , Schizosaccharomyces , Ciclosoma-Complejo Promotor de la Anafase , Proteínas de Ciclo Celular/genética , Meiosis , Fenotipo , Proteínas de Schizosaccharomyces pombe/genética
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