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Collins, E. N.

Publications and source records attributed to Collins, E. N..

2 recordsLinked to original sources

Long-term culturing of porcine nodose ganglia

BackgroundNeuronal cell cultures are widely used in the field of neuroscience. Cell dissociation allows for the isolation of a desired cell type, yet the complexity that distinguishes the nervous system is often lost as a result. Thus, culturing neural tissues in ex vivo format provides a physiological context that more closely resembles the in vivo environment. Nodose ganglia neurons have been extensively studied both in dissociated form and acutely in slice format. However, methods to culture long-term ex vivo have not been established.\n\nNew MethodWe developed a simple method to culture nodose ganglia neurons from neonatal pigs long-term in ex vivo format using an in-house media formulation derived from commercially available components.\n\nResultsCultures were viable for approximately 12 months. mRNA expression for nestin, a marker of neural progenitor cells, was stable across time. Vasoactive intestinal peptide and tachykinin, markers of nodose neurons, showed either no statistically significant differences or decreased across time, respectively. mRNA expression for glia fibrillary acidic protein and myelin basic protein showed no statistically significant differences over time.\n\nComparison with Existing Method(s)There are currently no methods that describe long-term culturing of porcine nodose ganglia. Further, the media formulation we developed is new and not previously reported.\n\nConclusionsThe simple procedure we developed for culturing nodose ganglia will enable both short-term and long-term investigations aimed at understanding peripheral ganglia in vitro. It is also possible that the methods described herein can be applied to other animal models, adult samples, and other neural tissues.

neuroscience

Acid exposure impairs mucus secretion and disrupts mucus transport in neonatal piglet airways

Tenacious mucus produced by tracheal and bronchial submucosal glands is a defining feature of cystic fibrosis (CF). Although airway acidification occurs early in CF, whether transient acidification is sufficient to initiate mucus abnormalities is unknown. We studied mucus secretion and mucus transport in piglets forty-eight hours following an intra-airway acid challenge. Acid-challenged piglet airways were distinguished by increased mucin 5B (MUC5B) in the submucosal gland but decreased lung lavage fluid MUC5B, following in vivo cholinergic stimulation, suggesting a failure in submucosal gland secretion. Concomitantly, intrapulmonary airways were obstructed with glycoprotein rich material under both basal and methacholine-stimulated conditions. To mimic a CF-like environment, we also studied mucus secretion and transport under diminished bicarbonate and chloride transport conditions ex vivo. Cholinergic stimulation in acid-challenged piglet airways induced extensive mucus films, greater mucus strand formation, increased dilation of submucosal gland duct openings and decreased mucociliary transport. Finally, to elucidate potential mediators of acid-induced mucus defects, we investigated diminazene aceturate, a small molecule that inhibits the acid-sensing ion channel (ASIC). Diminazene aceturate restored surface MUC5B in acid-challenged piglet airways under basal conditions, mitigated acid-induced airway obstruction, and magnified the number of dilated submucosal gland duct openings. These findings suggest that even transient airway acidification early in life might have profound impacts on mucus secretion and transport properties. Further they highlight diminazene aceturate as an agent that might be beneficial in alleviating certain mucus defects in CF airway disease.\n\nOne sentence summaryEarly life airway acidification has profound impacts on mucus secretion and transport.

physiology