Literature DB >> 29515035

Exosomal microRNA predicts and protects against severe bronchopulmonary dysplasia in extremely premature infants.

Charitharth Vivek Lal1,2,3, Nelida Olave1,2, Colm Travers1, Gabriel Rezonzew1,2, Kalsang Dolma1, Alexandra Simpson1, Brian Halloran1,2, Zubair Aghai4, Pragnya Das5, Nirmal Sharma6, Xin Xu3,6, Kristopher Genschmer3,6, Derek Russell3,6, Tomasz Szul3,6, Nengjun Yi7, J Edwin Blalock3,6, Amit Gaggar3,6, Vineet Bhandari5, Namasivayam Ambalavanan1,2.   

Abstract

Premature infants are at high risk for developing bronchopulmonary dysplasia (BPD), characterized by chronic inflammation and inhibition of lung development, which we have recently identified as being modulated by microRNAs (miRNAs) and alterations in the airway microbiome. Exosomes and exosomal miRNAs may regulate cell differentiation and tissue and organ development. We discovered that tracheal aspirates from infants with severe BPD had increased numbers of, but smaller, exosomes compared with term controls. Similarly, bronchoalveolar lavage fluid from hyperoxia-exposed mice (an animal model of BPD) and supernatants from hyperoxia-exposed human bronchial epithelial cells (in vitro model of BPD) had increased exosomes compared with air controls. Next, in a prospective cohort study of tracheal aspirates obtained at birth from extremely preterm infants, utilizing independent discovery and validation cohorts, we identified unbiased exosomal miRNA signatures predictive of severe BPD. The strongest signal of reduced miR-876-3p in BPD-susceptible compared with BPD-resistant infants was confirmed in the animal model and in vitro models of BPD. In addition, based on our recent discovery of increased Proteobacteria in the airway microbiome being associated with BPD, we developed potentially novel in vivo and in vitro models for BPD combining Proteobacterial LPS and hyperoxia exposure. Addition of LPS led to a larger reduction in exosomal miR 876-3p in both hyperoxia and normoxia compared with hyperoxia alone, thus indicating a potential mechanism by which alterations in microbiota can suppress miR 876-3p. Gain of function of miR 876-3p improved the alveolar architecture in the in vivo BPD model, demonstrating a causal link between miR 876-3p and BPD. In summary, we provide evidence for the strong predictive biomarker potential of miR 876-3p in severe BPD. We also provide insights on the pathogenesis of neonatal lung disease, as modulated by hyperoxia and microbial product-induced changes in exosomal miRNA 876-3p, which could be targeted for future therapeutic development.

Entities:  

Keywords:  Bioinformatics; Cell Biology; Development; Noncoding RNAs

Mesh:

Substances:

Year:  2018        PMID: 29515035      PMCID: PMC5922295          DOI: 10.1172/jci.insight.93994

Source DB:  PubMed          Journal:  JCI Insight        ISSN: 2379-3708


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Review 2.  Clinical value of non-coding RNAs in cardiovascular, pulmonary, and muscle diseases.

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4.  Effects of hyperoxia on alveolar and pulmonary vascular development in germ-free mice.

Authors:  Kalsang Dolma; Amelia E Freeman; Gabriel Rezonzew; Gregory A Payne; Xin Xu; Tamas Jilling; J Edwin Blalock; Amit Gaggar; Namasivayam Ambalavanan; Charitharth Vivek Lal
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2019-10-23       Impact factor: 5.464

5.  Mice without a microbiome are partially protected from lung injury by hyperoxia.

Authors:  Kent A Willis; Joseph F Pierre; Stephania A Cormier; Ajay J Talati
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2019-10-30       Impact factor: 5.464

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7.  Activated PMN Exosomes: Pathogenic Entities Causing Matrix Destruction and Disease in the Lung.

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9.  Endothelial Extracellular Vesicles in Pulmonary Function and Disease.

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10.  Genes, environment, and developmental timing: New insights from translational approaches to understand early origins of respiratory diseases.

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