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Biology subjects

Satia, I.

Publications and source records attributed to Satia, I..

2 recordsLinked to original sources

Optimized Methods for Measuring Extracellular ATP from Human Airway Epithelial Cells and Bronchoalveolar Lavage Fluid

Extracellular adenosine triphosphate (eATP) is a mediator of purinergic signalling in the airways, implicated in mucociliary function, inflammation, and cough via activation of P2X3 receptors. Elevated airway eATP has been associated with multiple respiratory diseases, yet reliable measurement of eATP remains challenging due to its rapid enzymatic degradation and confounding contributions from intracellular ATP. Here, we describe an optimized, microwell plate-based luminescence method for quantifying eATP from human airway epithelial cell cultures and bronchoalveolar lavage (BAL) fluid with enhanced signal stability. Using a commercially available ATP detection assay with a prolonged luminescence half-life, we introduced a simple 0.45 {micro}m syringe filtration step to remove cells and thereby isolate extracellular ATP. This approach demonstrated ATP specificity via apyrase degradation, and provided a linear detection range from 5 nM to 5 {micro}M. Addition of ATP stabilization buffer preserved ATP levels in cell culture media for at least 4 hours at 4 {degrees}C and in human BAL samples for at least 6 weeks at -80{degrees}C. Applying this method to primary human bronchial epithelial cells revealed detectable eATP release, with preferential secretion at the apical surface under air-liquid interface conditions. Collectively, this optimized assay enables robust, high-throughput, and time-flexible quantification of eATP in both experimental and clinical airway samples. These methods support improved investigation of purinergic signalling in airway health and disease and may facilitate biomarker development relevant to eATP in the airways.

cell biology↗

Open-source 3D printed manifolds for exposure studies using human airway epithelial cells

RationaleInhalation of airborne stimuli can damage the airway epithelium, increasing the risk of developing respiratory or systemic diseases. In vitro studies using air-liquid interface cell cultures enable controlled investigation of cellular responses to relevant exposures. Commercial in vitro exposure systems provide precise and reproducible dosage but require significant capital investment and are not amenable to customization. Research groups interested in respiratory exposure science may benefit from a more accessible alternative open-source exposure system. We present 3D printed manifolds for applying a range of airborne exposures uniformly across standard, commercially available 6- and 24-well plates with air-liquid interface culture inserts. MethodsA simple chamber-style exposure system and the manifolds were evaluated for exposure uniformity via computational fluid dynamics simulations and deposition of nebulized FITC-labelled dextran. The chamber and manifolds were manufactured using a stereolithography 3D printer. Cannabis concentrate vapor was generated from 3 different vaporizers and applied to well plates using the manifold system. Calu-3 cells were cultured on Transwell inserts and exposed to whole tobacco smoke or room air. ResultsThe manifolds produced less variation in simulated air velocities and physical deposition of FITC-dextran aerosol deposition across well plates compared to those of the chamber-style exposure system. Distinct doses of cannabis concentrate vapour were delivered to well plates with low variation among wells. Whole tobacco smoke exposure using the manifold system induced functional changes in Calu-3 airway epithelial cell barrier function, cytokine production (IL-6 and IL-8), and cell membrane potential. ConclusionsCollectively, our data demonstrate the feasibility and the validity of our open-source 3D printed manifolds for use in studying various respiratory exposures and position our designs as more accessible options in parallel with commercially available systems. All article content is licensed under a Creative Commons Attribution (CC BY-NC 4.0) license (https://creativecommons.org/licenses/by-nc/4.0/).

bioengineering↗