Literature DB >> 20488786

Leptin modulates innate and adaptive immune cell recruitment after cigarette smoke exposure in mice.

Juanita H J Vernooy1, Ken R Bracke, Nadja E A Drummen, Nele S A Pauwels, Lennart Zabeau, Robert Jan van Suylen, Jan Tavernier, Guy F Joos, Emiel F M Wouters, Guy G Brusselle.   

Abstract

Leptin, a pleiotropic type I cytokine, was recently demonstrated to be expressed by resident lung cells in chronic obstructive pulmonary disease patients and asymptomatic smokers. To elucidate the functional role of leptin in the onset of chronic obstructive pulmonary disease, we tested leptin-deficient ob/ob mice (C57BL/6), leptin receptor-deficient db/db mice (C57BKS), and littermates in a model of cigarette smoke (CS)-induced pulmonary inflammation. Wild-type (WT) C57BL/6 mice were exposed for 4 or 24 wk to control air or CS. Pulmonary leptin expression was analyzed by immunohistochemistry and real-time PCR. Pulmonary inflammation upon 4 wk CS exposure was evaluated in bronchoalveolar lavage fluid (BALF) and lung tissue of WT, ob/ob, and db/db mice. Immunohistochemical analysis revealed leptin expression in bronchial epithelial cells, pneumocytes, alveolar macrophages, and bronchial/vascular smooth muscle cells. The 4 and 24 wk CS exposure increased leptin expression in bronchial epithelial cells and pneumocytes versus air-exposed WT mice (p<0.05). The 4 wk CS exposure resulted in increased accumulation of neutrophils, dendritic cells, macrophages, and lymphocytes in BALF and lung tissue of WT, ob/ob, and db/db mice. CS-exposed ob/ob and db/db mice showed in general higher numbers of neutrophils and lower numbers of CD4+, CD8+, and dendritic cells versus CS-exposed WT mice. Consistently, CXCL1 levels were enhanced in BALF of CS-exposed ob/ob and db/db mice versus WT mice (p<0.05). Exogenous leptin administration completely restored the skewed inflammatory profile in ob/ob mice. These data reveal an important role of leptin in modulating innate and adaptive immunity after CS inhalation in mice.

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Year:  2010        PMID: 20488786     DOI: 10.4049/jimmunol.0900963

Source DB:  PubMed          Journal:  J Immunol        ISSN: 0022-1767            Impact factor:   5.422


  25 in total

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Review 3.  Control of respiratory and cardiovascular functions by leptin.

Authors:  M Bassi; W I Furuya; D B Zoccal; J V Menani; E Colombari; J E Hall; A A da Silva; J M do Carmo; D S A Colombari
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Review 4.  Leptin, adiponectin and pulmonary diseases.

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Authors:  Niki D J Ubags; Renee D Stapleton; Juanita H J Vernooy; Elianne Burg; Jenna Bement; Catherine M Hayes; Sebastian Ventrone; Lennart Zabeau; Jan Tavernier; Matthew E Poynter; Polly E Parsons; Anne E Dixon; Matthew J Wargo; Benjamin Littenberg; Emiel F M Wouters; Benjamin T Suratt
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8.  The role of leptin in the development of pulmonary neutrophilia in infection and acute lung injury.

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9.  A Comparative Study of Lung Host Defense in Murine Obesity Models. Insights into Neutrophil Function.

Authors:  Niki D J Ubags; Elianne Burg; Maryellen Antkowiak; Aaron M Wallace; Estee Dilli; Jenna Bement; Matthew J Wargo; Matthew E Poynter; Emiel F M Wouters; Benjamin T Suratt
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10.  Loss of phosphatase and tensin homolog (PTEN) induces leptin-mediated leptin gene expression: feed-forward loop operating in the lung.

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