| Literature DB >> 30235826 |
Nam Ho Bae1,2, Sun Young Lim3, Younseong Song4, Soon Woo Jeong5, Seol Yi Shin6, Yong Tae Kim7, Tae Jae Lee8, Kyoung G Lee9, Seok Jae Lee10, Yong-Jun Oh11, Yoo Min Park12.
Abstract
Since the increment of the threat to public health caused by foodborne pathogens, researches have been widely studied on developing the miniaturized detection system for the on-site pathogen detection. In the study, we focused on the development of portable, robust, and disposable film-based polymerase chain reaction (PCR) chip containing a multiplex chamber for simultaneous gene amplification. In order to simply fabricate and operate a film-based PCR chip, different kinds of PCR chambers were designed and fabricated using polyethylene terephthalate (PET) and polyvinyl chloride (PVC) adhesive film, in comparison with commercial PCR, which employs a stereotyped system at a bench-top scale. No reagent leakage was confirmed during the PCR thermal cycling using the film PCR chip, which indicates that the film PCR chip is structurally stable for rapid heat cycling for DNA amplification. Owing to use of the thin film to fabricate the PCR chip, we are able to realize fast thermal transfer from the heat block that leads to short PCR amplification time. Moreover, using the film PCR chip, we could even amplify the target pathogen with 10 CFU mL-1. The artificially infected milk with various concentration of Bacillus cereus was successfully amplified on a single film PCR chip. On the basis of the reliable results, the developed film PCR chip could be a useful tool as a POCT device to detect foodborne pathogens via genetic analysis.Entities:
Keywords: PCR; film PCR chip; pathogen DNA amplification; point-of-care testing
Mesh:
Year: 2018 PMID: 30235826 PMCID: PMC6165562 DOI: 10.3390/s18093158
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1(a) Schematic illustration of gene amplification by using the film polymerase chain reaction (PCR) chip. The film PCR chip could effectively amplify the pathogen gene by applying to the minimized heating device; and (b) The simple designed multiplex film PCR chip, which consist of polyethylene terephthalate (PET) and PVC was fabricated by stacking each prepared film layer by layer.
Figure 2(a) The film PCR on the NI instrument for thermal cycling. The acryl cover with tong was employed for effective heat transfer and preventing the solution leakage; (b) the thermal profiling in the three cycle. The temperature in the PCR chamber was highly matched in all tested cycle with setting temperature; and (c) the leakage test in various thermal cycle step using the blue ink. The result images were recorded in every 10 thermal cycle, and the leakage was not found in all test result.
Figure 3(a) The dimension of three type designed film PCR chip which contains the various width, length, and height (18 × 4 mm with 230 µm, 12 × 3 mm with 460 µm, and 6 × 3 mm with 920 µm) with same total volume of 20 µL; (b) the heat transfer simulation for 3 s in each designed film PCR chip by COMSOL software; and (c) the calibration curve for temperature and saturation time in each film PCR chip.
Figure 4The fabricated three type film PCR chip as designed and optical images for Bacillus cereus gene amplification result. The 1.0 × 101 to 1.0 × 105 CFU mL−1 Bacillus cereus was evaluated.
Figure 5Milk-based Bacillus cereus gene amplification using the optimized condition with film PCR chip. The 1.0 × 101 to 1.0 × 105 CFU mL−1 Bacillus cereus was spiked and serially diluted in the milk.