Figure 3: Multiplex detection of foodborne pathogens in
samples based on the prototype device. (a) Colorimetric
detection of single pathogen (E. coli O157:H7). (b)
Colorimetric detection of triple pathogens (E. coli O157:H7,
S. Typhimurium and V. parahaemolyticus). (c) The graph
of Abs640/570 ratio of negative and positive chamber.
4 CONCLUSIONS
We have developed a sample-to-answer disc for
multiplex food poisoning bacteria screening with a
large volume of sample (up to 1 mL). The system was
automatic and small suitable for POC testing. The
disc was designed with the solution-loading
cartridges to accomplish a full automation, and a
specific SAP integrated waste chamber for large
sample volume handling. All experimental processes
of the molecular diagnostics were integrated in a
single device including extraction, amplification,
detection, and data analyzing/reporting. The sample
and other essential solutions for LAMP assay are
loaded into the 3D printed cartridge, and orderly
released into the centrifugal microdevice by a specific
channel design and spinning program. The portable
genetic analyzer provides a user-friendly interface
and a simple operation protocol which is affordable
for less technical training staff.
ACKNOWLEDGEMENTS
This work was supported by the Engineering
Research Center of Excellence Program of Korea
Ministry of Science, ICT & Future Planning
(MSIP)/National Research Foundation of Korea
(NRF) (2014R1A5A1009799) and by a grant of the
Korean Health Technology R&D Project, Ministry of
Health & Welfare, Republic of Korea (grant no.
HI13C1232).
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