4.3 Article

Static self-directed sample dispensing into a series of reaction wells on a microfluidic card for parallel genetic detection of microbial pathogens

期刊

BIOMEDICAL MICRODEVICES
卷 17, 期 5, 页码 -

出版社

SPRINGER
DOI: 10.1007/s10544-015-9994-1

关键词

Static self-directed sample dispensing; Airlock mechanism; Laser etched; Disposable microfluidic card; Isothermal amplification; POC; Genetic diagnostics; Gene-Z; LAMP

资金

  1. 21st Century Michigan Economic Development Corporation [GR-476 PO085P3000517]
  2. Michigan Initiative for Innovation & Entrepreneurship [10-11 TC-PS 006]
  3. Michigan State University Clinical Translational Science Institute [224]
  4. Superfund Research Program from the National Institute for Environmental Health Sciences [2 P42 ES004911-22A1]
  5. Environmental Protection Agency Great Lakes Restoration Initiative [GL-00E01127-0]
  6. Erwin Schrodinger scholarship of the Austrian Science Fund [FWF J3151-B11]
  7. College of Engineering at National Taiwan University fellowship
  8. Richard Hong Endowment Fund
  9. College of Engineering at Michigan State University

向作者/读者索取更多资源

A microfluidic card is described for simultaneous and rapid genetic detection of multiple microbial pathogens. The hydrophobic surface of native acrylic and a novel microfluidic mechanism termed airlock were used to dispense sample into a series of 64 reaction wells without the use of valves, external pumping peripherals, multiple layers, or vacuum assistance. This airlock mechanism was tested with dilutions of whole human blood, saliva, and urine, along with mock samples of varying viscosities and surface tensions. Samples spiked with genomic DNA (gDNA) or crude lysates from clinical bacterial isolates were tested with loop mediated isothermal amplification assays (LAMP) designed to target virulence and antibiotic resistance genes. Reactions were monitored in real time using the Gene-Z, which is a portable smartphone-driven system. Samples loaded correctly into themicrofluidic card in 99.3% of instances. Amplification results confirmed no carryover of pre-dispensed primer between wells during sample loading, and no observable diffusion between adjacent wells during the 60 to 90 min isothermal reaction. Sensitivity was comparable between LAMP reactions tested within the microfluidic card and in conventional vials. Tests demonstrate that the airlock card works with various sample types, manufacturing techniques, and can potentially be used in many point-of-care diagnostics applications.

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