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Low-High-Low Rotationally Pulse-Actuated Serial Dissolvable Film Valves Applied to Solid Phase Extraction and LAMP Isothermal Amplification for Plant Pathogen Detection on a Lab-on-a-Disc.
Julius, Lourdes An; Saeed, Muhammad Mubashar; Kuijpers, Tim; Sandu, Sergei; Henihan, Grace; Dreo, Tanja; Schoen, Cor D; Mishra, Rohit; Dunne, Nicholas J; Carthy, Eadaoin; Ducrée, Jens; Kinahan, David J.
Afiliação
  • Julius LA; Fraunhofer Project Centre at Dublin City University, Dublin City University, Glasnevin D09 V209, Dublin, Ireland.
  • Saeed MM; School of Physical Sciences, Dublin City University, Dublin D09 V209, Ireland.
  • Kuijpers T; National Centre for Sensor Research (NCSR), Dublin City University, Dublin D09 V209, Ireland.
  • Sandu S; Biodesign Europe, Dublin City University, Dublin D09 V209, Ireland.
  • Henihan G; School of Mechanical and Manufacturing Engineering, Dublin City University, Glasnevin D09 V209, Dublin, Ireland.
  • Dreo T; SFI Centre for Research Training in Machine Learning (ML-Laboratories), Dublin City University, Dublin D09 V209, Ireland.
  • Schoen CD; Biodesign Europe, Dublin City University, Dublin D09 V209, Ireland.
  • Mishra R; School of Mechanical and Manufacturing Engineering, Dublin City University, Glasnevin D09 V209, Dublin, Ireland.
  • Dunne NJ; Biodesign Europe, Dublin City University, Dublin D09 V209, Ireland.
  • Carthy E; School of Mechanical and Manufacturing Engineering, Dublin City University, Glasnevin D09 V209, Dublin, Ireland.
  • Ducrée J; Fraunhofer Project Centre at Dublin City University, Dublin City University, Glasnevin D09 V209, Dublin, Ireland.
  • Kinahan DJ; School of Physical Sciences, Dublin City University, Dublin D09 V209, Ireland.
ACS Omega ; 9(3): 3262-3275, 2024 Jan 23.
Article em En | MEDLINE | ID: mdl-38284094
ABSTRACT
The ability of the centrifugal Lab-on-a-Disc (LoaD) platform to closely mimic the "on bench" liquid handling steps (laboratory unit operations (LUOs)) such as metering, mixing, and aliquoting supports on-disc automation of bioassay without the need for extensive biological optimization. Thus, well-established bioassays, normally conducted manually using pipettes or using liquid handling robots, can be relatively easily automated in self-contained microfluidic chips suitable for use in point-of-care or point-of-use settings. The LoaD's ease of automation is largely dependent on valves that can control liquid movement on the rotating disc. The optimum valving strategy for a true low-cost and portable device is rotationally actuated valves, which are actuated by changes in the disc spin-speed. However, due to tolerances in disc manufacturing and variations in reagent properties, most of these valving technologies have inherent variation in their actuation spin-speed. Most valves are actuated through stepped increases in disc spin-speed until the motor reaches its maximum speed (rarely more than 6000 rpm). These manufacturing tolerances combined with this "analogue" mechanism of valve actuation limits the number of LUOs that can be placed on-disc. In this work, we present a novel valving mechanism called low-high-low serial dissolvable film (DF) valves. In these valves, a DF membrane is placed in a dead-end pneumatic chamber. Below an actuation spin-speed, the trapped air prevents liquid wetting and dissolving the membrane. Above this spin-speed, the liquid will enter and wet the DF and open the valve. However, as DFs take ∼40 s to dissolve, the membrane can be wetted, and the disc spin-speed reduced before the film opens. Thus, by placing valves in a series, we can govern on which "digital pulse" in spin-speeding a reagent is released; a reservoir with one serial valve will open on the first pulse, a reservoir with two serial valves on the second, and so on. This "digital" flow control mechanism allows the automation of complex assays with high reliability. In this work, we first describe the operation of the valves, outline the theoretical basis for their operation, and support this analysis with an experiment. Next, we demonstrate how these valves can be used to automate the solid-phase extraction of DNA on on-disc LAMP amplification for applications in plant pathogen detection. The disc was successfully used to extract and detect, from a sample lysed off-disc, DNA indicating the presence of thermally inactivated Clavibacter michiganensis ssp. michiganensis (Cmm), a bacterial pathogen on tomato leaf samples.

Texto completo: 1 Base de dados: MEDLINE Tipo de estudo: Diagnostic_studies Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Tipo de estudo: Diagnostic_studies Idioma: En Ano de publicação: 2024 Tipo de documento: Article