• DocumentCode
    2067493
  • Title

    Pathogen detection from phalaenopsis orchids by using an integrated microfluidic system

  • Author

    Wen-Hsin Chang ; Sung-Yi Yang ; Chih-Hung Wang ; Gwo-Bin Lee ; Tzong-Yeh Chen ; Ping-Chen Li ; Fuh-Jyh Jan

  • Author_Institution
    Dept. of Power Mech. Eng., Nat. Tsing Hua Univ., Hsinchu, Taiwan
  • fYear
    2012
  • fDate
    4-7 Nov. 2012
  • Firstpage
    6
  • Lastpage
    10
  • Abstract
    Early detection of pathogens in high-value agricultural species is crucial. Therefore, many methods which can detect agricultural pathogens to prevent economic loss have been developed. Among them, immunoassays, nucleic acid hybridization and polymerase chain reaction have been demonstrated to detect pathogens in Phalaenopsis orchid successfully with satisfactory sensitivity and specificity. However, above-mentioned methods all have some disadvantages including lengthy process or requiring specialized laboratory facilities and well-trained technicians. The current study therefore presents an integrated micro fluidic system for rapid and automatic detection of pathogens in agricultural species. The entire procedure, including pathogen-specific ribonucleic acid (RNA) purification, nucleic acid amplification using reverse transcription loop-mediated-isothermal-amplification (RT-LAMP) and optical detection, can be automatically performed on a single chip within 65 minutes. Moreover, the detection module can be interchanged between a fluorescent detector and a turbidity detector, depending on the need of the operator. Furthermore, the developed system can detect pathogens directly from fresh agriculture tissues such as leaves and flowers of the Phalaneopsis orchids. This is the first time that an interchangeable integrated micro fluidic system for the detection of Phalaneopsis orchids has been demonstrated. Some of the most prevalent Phalaenopsis orchid pathogens., such as Cymbidium mosaic virus (CymMV) and Tomato spotted wilt virus (TSWV) for Phalaneopsis orchids were used in the current study to demonstrate the capabilities of the developed system. It is concluded that this system with dual detection units can directly detect pathogens from crude agricultural materials successfully.
  • Keywords
    RNA; agricultural engineering; bioMEMS; biochemistry; biological techniques; biological tissues; fluorescence; microfluidics; microorganisms; microsensors; molecular biophysics; optical sensors; plant diseases; purification; turbidity; Cymbidium mosaic virus; Phalaenopsis orchid pathogens; Phalaneopsis orchid detection; RT-LAMP; Tomato spotted wilt virus; agricultural pathogens; crude agricultural materials; detection module; dual detection units; economic loss; fluorescent detector; fresh agriculture tissues; high-value agricultural species; immunoassays; interchangeable integrated microfluidic system; nucleic acid amplification; nucleic acid hybridization; optical detection; pathogen automatic detection; pathogen detection; pathogen-specific ribonucleic acid purification; polymerase chain reaction; reverse transcription loop-mediated-isothermal-amplification; sensitivity; specialized laboratory facilities; time 65 min; turbidity detector; well-trained technicians; Loop-mediated isothermal amplification; MEMS; aquaculture pathogens; microfluidics;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nano/Molecular Medicine and Engineering (NANOMED), 2012 IEEE 6th International Conference on
  • Conference_Location
    Bangkok
  • ISSN
    2159-6964
  • Print_ISBN
    978-1-4673-5101-0
  • Type

    conf

  • DOI
    10.1109/NANOMED.2012.6509132
  • Filename
    6509132