Literature DB >> 22513490

Allergen-induced bone marrow eosinophilopoiesis and airways eosinophilic inflammation in leptin-deficient ob/ob mice.

Leticia Lintomen1, Marina C Calixto, André Schenka, Edson Antunes.   

Abstract

Asthma and obesity are growing epidemics in the world. It is well established that obesity worsens the asthma outcomes. High-fat diet-induced obesity in mice exacerbates the pulmonary eosinophilic inflammation. We have used wild-type (WT) and ob/ob mice to further explore the mechanisms by which obesity aggravates the pulmonary eosinophilic inflammation. The eosinophil (EO) number in bronchoalveolar lavage (BAL) fluid, lung tissue, blood, and bone marrow were evaluated at 24, 48, and 72 h after ovalbumin (OVA) challenge in sensitized mice. The basal EO number (phosphate-buffered saline (PBS)-instilled mice) in lung tissue was about 3.5-fold greater in ob/ob compared with WT mice. OVA challenge in ob/ob mice promoted an EO accumulation into the lung that was accompanied by a lower emigration to airways lumen (BAL fluid) in comparison with WT mice. OVA challenge also markedly elevated the number of mature and immature EO in bone marrow of ob/ob mice at 24 h compared with WT group. Blood EO at 48 h was markedly greater in ob/ob mice. Tumor necrosis factor (TNF)-α and interleukin (IL)-10 levels in BAL fluid were significantly higher in ob/ob mice, whereas no changes for IL-5 and eotaxin were found. The IL-6 levels were significantly lower in ob/ob mice. In conclusion, OVA challenge in ob/ob obese mice potentiates eosinophilopoiesis and promotes an accumulation of EO into the lung tissue, delaying their transit to airways lumen. The longer EO remain into the lung tissue is likely to contribute, at least in part, to the asthma worsened by obesity.

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Year:  2012        PMID: 22513490     DOI: 10.1038/oby.2012.93

Source DB:  PubMed          Journal:  Obesity (Silver Spring)        ISSN: 1930-7381            Impact factor:   5.002


  14 in total

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Review 2.  Leptin as regulator of pulmonary immune responses: involvement in respiratory diseases.

Authors:  Juanita H J Vernooy; Niki D J Ubags; Guy G Brusselle; Jan Tavernier; Benjamin T Suratt; Guy F Joos; Emiel F M Wouters; Ken R Bracke
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3.  Therapeutic ketosis decreases methacholine hyperresponsiveness in mouse models of inherent obese asthma.

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4.  The Effect of Adiposity Markers on Fractional Exhaled Nitric Oxide (FeNO) and Pulmonary Function Measurements.

Authors:  Noor Al Khathlan; Ayad Mohammed Salem
Journal:  Int J Gen Med       Date:  2020-10-29

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Review 6.  Mechanisms of Asthma in Obesity. Pleiotropic Aspects of Obesity Produce Distinct Asthma Phenotypes.

Authors:  Anne E Dixon; Matthew E Poynter
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7.  Obesity induced by neonatal overfeeding worsens airway hyperresponsiveness and inflammation.

Authors:  Zehui Ye; Ying Huang; Dan Liu; Xiaoyi Chen; Dongjuan Wang; Daochao Huang; Li Zhao; Xiaoqiu Xiao
Journal:  PLoS One       Date:  2012-10-08       Impact factor: 3.240

8.  Metformin attenuates the exacerbation of the allergic eosinophilic inflammation in high fat-diet-induced obesity in mice.

Authors:  Marina Ciarallo Calixto; Letícia Lintomen; Diana Majoli André; Luiz Osório Leiria; Danilo Ferreira; Camilo Lellis-Santos; Gabriel Forato Anhê; Silvana Bordin; Richardt Gama Landgraf; Edson Antunes
Journal:  PLoS One       Date:  2013-10-24       Impact factor: 3.240

9.  Effect of the anti-IL-17 antibody on allergic inflammation in an obesity-related asthma model.

Authors:  Lin Liang; Jung Hur; Ji Young Kang; Chin Kook Rhee; Young Kyoon Kim; Sook Young Lee
Journal:  Korean J Intern Med       Date:  2018-04-19       Impact factor: 2.884

10.  Obesity and asthma: clinical and laboratory characterization of a common combination.

Authors:  Juliana Pires Viana de Jesus; Aline Silva Lima-Matos; Paula Cristina Andrade Almeida; Valmar Bião Lima; Luane Marques de Mello; Adelmir Souza-Machado; Eduardo Vieira Ponte; Álvaro Augusto Cruz
Journal:  J Bras Pneumol       Date:  2018 May-Jun       Impact factor: 2.624

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