A - Papers appearing in refereed journals
Tarn, M. D., Shaw, K. J., Foster, P. B., West, J. S., Johnston, I. D., McCluskey, D. K., Peyman, S. A. and Murray, B. J. 2025. Microfluidics for the biological analysis of atmospheric ice-nucleating particles: Perspectives and challenges. Biomicrofluidics. 19 (1), p. 011502. https://doi.org/10.1063/5.0236911
Authors | Tarn, M. D., Shaw, K. J., Foster, P. B., West, J. S., Johnston, I. D., McCluskey, D. K., Peyman, S. A. and Murray, B. J. |
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Abstract | Atmospheric ice-nucleating particles (INPs) make up a vanishingly small proportion of atmospheric aerosol, but are key to triggering the freezing of supercooled liquid water droplets, altering the lifetime and radiative properties of clouds and having a substantial impact on weather and climate. However, INPs are notoriously difficult to model due to a lack of information on their global sources, sinks, concentrations, and activity, necessitating the development of new instrumentation for quantifying and characterising INPs in a rapid and automated manner. Microfluidic technology has been increasingly adopted by ice nucleation research groups in recent years as a means of performing droplet freezing analysis of INPs, enabling the measurement of hundreds or thousands of droplets per experiment at temperatures down to the homogeneous freezing of water. The potential for microfluidics extends far beyond this, with an entire toolbox of bioanalytical separation and detection techniques developed over 30 years for medical applications that could easily be adapted to biological and biogenic INP analysis to revolutionise the field, for example in the identification and quantification of ice-nucleating bacteria and fungi. Combined with miniaturised sampling techniques, we can envisage the development and deployment of microfluidic sample-to-answer platforms for automated, user-friendly sampling and analysis of biological INPs in the field that would enable a greater understanding of their global and seasonal activity. Here, we review the various components that such a platform would incorporate to highlight the feasibility, and the challenges, of such an endeavour, from sampling and droplet freezing assays to separations and bioanalysis. |
Keywords | Microfluidics; Spore traps; Ice nucleation; INPs |
Year of Publication | 2025 |
Journal | Biomicrofluidics |
Journal citation | 19 (1), p. 011502 |
Digital Object Identifier (DOI) | https://doi.org/10.1063/5.0236911 |
Web address (URL) | https://doi.org/10.1063/5.0236911 |
Open access | Published as ‘gold’ (paid) open access |
Funder | Engineering and Physical Sciences Research Council |
Biotechnology and Biological Sciences Research Council | |
Funder project or code | Growing Health [ISP] |
Growing Health (WP1) - bio-inspired solutions for healthier agroecosystems: Understanding biointeractions | |
Publisher's version | |
Output status | Published |
Publication dates | |
Online | 27 Feb 2025 |
Publication process dates | |
Accepted | 14 Nov 2024 |
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