Literature DB >> 18001162

Pulmonary neuroendocrine cell system in pediatric lung disease-recent advances.

Ernest Cutz1, Herman Yeger, Jie Pan.   

Abstract

The airway epithelium of human and animal lungs contains highly specialized pulmonary neuroendocrine cells (PNEC), distributed as solitary cells and as innervated clusters, neuroepithelial bodies (NEB). The designation "PNEC system" stems from the expression of both neural and endocrine cell phenotypes, including the synthesis and release of amine (serotonin, 5-HT) and a variety of neuropeptides (that is, bombesin). The role and function of PNEC in the lung have remained a subject of speculation for many years. During the last decade, studies using modern techniques of cellular and molecular biology revealed a complex functional role for PNEC, beginning during the early stages of lung development as modulators of fetal lung growth and differentiation and at the time of birth as airway O2 sensors involved in neonatal adaptation. Postnatally and beyond, PNEC/NEB are providers of a lung stem cell niche that is important in airway epithelial regeneration and lung carcinogenesis. The focus of this review is to present and discuss recent findings pertaining to the responses of PNEC to intrauterine environmental stimuli, ontogeny and molecular regulation of PNEC differentiation, innervation of NEB, and their role as airway chemoreceptors, including mechanisms of O2 sensing and chemotransmission of hypoxia stimulus. Abnormalities of PNEC/NEB have been reported in a variety of pediatric pulmonary disorders but the clinical significance or the mechanisms involved are unknown. The discussion on the possible role of PNEC/NEB in the pathogenesis and pathobiology of pediatric lung diseases includes congenital lung disorders, bronchopulmonary dysplasia, disorders of respiratory control, neuroendocrine hyperplasia of infancy, cystic fibrosis, bronchial asthma, and pulmonary hypertension.

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Year:  2007        PMID: 18001162     DOI: 10.2350/07-04-0267.1

Source DB:  PubMed          Journal:  Pediatr Dev Pathol        ISSN: 1093-5266


  39 in total

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2.  Autoregulatory effects of serotonin on proliferation and signaling pathways in lung and small intestine neuroendocrine tumor cell lines.

Authors:  Ignat Drozdov; Mark Kidd; Bjorn I Gustafsson; Bernhard Svejda; Richard Joseph; Roswitha Pfragner; Irvin M Modlin
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3.  Multidirectional differentiation of Achaete-Scute homologue-1-defined progenitors in lung development and injury repair.

Authors:  Yan Li; R Ilona Linnoila
Journal:  Am J Respir Cell Mol Biol       Date:  2012-08-09       Impact factor: 6.914

4.  The role of hypoxia and neurogenic genes (Mash-1 and Prox-1) in the developmental programming and maturation of pulmonary neuroendocrine cells in fetal mouse lung.

Authors:  Suzanne McGovern; Jie Pan; Guillermo Oliver; Ernest Cutz; Herman Yeger
Journal:  Lab Invest       Date:  2009-12-21       Impact factor: 5.662

5.  Differential signal pathway activation and 5-HT function: the role of gut enterochromaffin cells as oxygen sensors.

Authors:  Martin Haugen; Rikard Dammen; Bernhard Svejda; Bjorn I Gustafsson; Roswitha Pfragner; Irvin Modlin; Mark Kidd
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Review 6.  Oxygen Sensing in Early Life.

Authors:  Céline Caravagna; Tommy Seaborn
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Review 7.  Interstitial lung disease in infants: new classification system, imaging technique, clinical presentation and imaging findings.

Authors:  Edward Y Lee
Journal:  Pediatr Radiol       Date:  2012-11-15

Review 8.  Interstitial lung diseases in children.

Authors:  Annick Clement; Nadia Nathan; Ralph Epaud; Brigitte Fauroux; Harriet Corvol
Journal:  Orphanet J Rare Dis       Date:  2010-08-20       Impact factor: 4.123

9.  Neurochemical pattern of the complex innervation of neuroepithelial bodies in mouse lungs.

Authors:  Inge Brouns; Fusun Oztay; Isabel Pintelon; Ian De Proost; Robrecht Lembrechts; Jean-Pierre Timmermans; Dirk Adriaensen
Journal:  Histochem Cell Biol       Date:  2008-09-02       Impact factor: 4.304

10.  Pulmonary neuroendocrine cells function as airway sensors to control lung immune response.

Authors:  Kelsey Branchfield; Leah Nantie; Jamie M Verheyden; Pengfei Sui; Mark D Wienhold; Xin Sun
Journal:  Science       Date:  2016-01-07       Impact factor: 47.728

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