• 제목/요약/키워드: Microfluidic Chip

검색결과 151건 처리시간 0.034초

Rapid Detection of Streptococcus mutans Using an Integrated Microfluidic System with Loop-Mediated Isothermal Amplification

  • Jingfu Wang;Jingyi Wang;Xin Chang;Jin Shang;Yuehui Wang;Qin Ma;Liangliang Shen
    • Journal of Microbiology and Biotechnology
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    • 제33권8호
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    • pp.1101-1110
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    • 2023
  • Streptococcus mutans is the primary causative agent of caries, which is one of the most common human diseases. Thus, rapid and early detection of cariogenic bacteria is critical for its prevention. This study investigated the combination of loop-mediated isothermal amplification (LAMP) and microfluid technology to quantitatively detect S. mutans. A low-cost, rapid microfluidic chip using LAMP technology was developed to amplify and detect bacteria at 2.2-2.2 × 106 colony-forming units (CFU)/ml and its detection limits were compared to those of standard polymerase chain reaction. A visualization system was established to quantitatively determine the experimental results, and a functional relationship between the bacterial concentration and quantitative results was established. The detection limit of S. mutans using this microfluidic chip was 2.2 CFU/ml, which was lower than that of the standard approach. After quantification, the experimental results showed a good linear relationship with the concentration of S. mutans, thereby confirming the effectiveness and accuracy of the custom-made integrated LAMP microfluidic system for the detection of S. mutans. The microfluidic system described herein may represent a promising simple detection method for the specific and rapid testing of individuals at risk of caries.

질소화합물(NH4+, NO3-)의 모니터링을 위한 마이크로 센서의 작동에 미치는 온도 영향 (The Effect of Temperature on Mlcrosensor Chip for the Monitoring of Nitrogenous Compounds(NH4+, NO3-))

  • 이종원;전경미;장암;유혜원;조재원;김인수
    • 한국물환경학회지
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    • 제23권1호
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    • pp.33-37
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    • 2007
  • Microelectrodes for measuring nitrogenous compounds (${NH_4}^+$, ${NO_3}^-$) that were applied into the microfluidics chips was investigated, and the effect of temperature was especially examined. In this specific research, microelectrodes were first calibrated to check the function, and then microsensor that was combined microelectrode with microfluidic chip was re-calibrated. Experimental results showed that there are no change in the function between microelectrode and microfluidic chip. The electro motive force (EMF) for the ${NH_4}^+$ microsensor was similar to the one theoretically calculated from Nernst equation, but the EMF for ${NO_3}^-$ showed minor change.

Single Magnetic Bead Detection in a Microfluidic Chip Using Planar Hall Effect Sensor

  • Kim, Hyuntai;Reddy, Venu;Kim, Kun Woo;Jeong, Ilgyo;Hu, Xing Hao;Kim, CheolGi
    • Journal of Magnetics
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    • 제19권1호
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    • pp.10-14
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    • 2014
  • In this study, we fabricate an integrated microfluidic chip with a planar Hall effect (PHE) sensor for single magnetic bead detection. The PHE sensor was constructed with a junction size of $10{\mu}m{\times}10{\mu}m$ using a trilayer structure of Ta(3 nm)/NiFe(10 nm)/Cu(1.2 nm)/IrMn(10 nm)/Ta(3 nm). The sensitivity of the PHE sensor was 19.86 ${\mu}V/Oe$. A diameter of 8.18 ${\mu}m$ magnetic beads was used, of which the saturation magnetization was ~2.1 emu/g. The magnetic susceptibility ${\chi}$ of these magnetic beads was calculated to be ~0.14. The diluted magnetic beads solution was introduced to the microfluidic channel attributing a single bead flow and simultaneously the PHE sensor voltage was measured to be 0.35 ${\mu}V$. The integrated microchip was able to detect a magnetic moment of $1.98{\times}10^{-10}$ emu.

미세 유체장치 내에서 Poly(Ethylene Glycol)과 Dextran 용액의 상 형성 특성 연구 (Phase-Separation Properties of Poly(Ethylene Glycol) had Dextran Solutions In Microfluidic Device)

  • 최주형;장우진;이상우
    • 대한의용생체공학회:의공학회지
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    • 제28권2호
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    • pp.244-249
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    • 2007
  • Fluidic conditions for the separation of phases were surveyed in a microfluidic aqueous two-phase extraction system. The infusion ratio between polyethylene glycol (PEG) and dextran solution defines the concentrations of each polymer in micro-channel, which determine the phase-separation. The appropriate ratio between PEG (M.W. 8000, 10%, w/v) and dextran T500 (M.W. 500000, 5%, w/v) in order to perform the separation of phases of both polymers was observed as changing the mixed ratio of both polymers. Based on the fluidic conditions, stable two-phase solutions were obtained within 4% to 8% and 3% to 1% of PEG and dextran, respectively. In addition, the characteristics of the two-phase were discussed. The separation technique studied in the paper can be applied for the implementation of a lab-on-a chip which can detect various biological entities such cells, bacterium, and virus in an integrated manner using built in a biosensor inside the chip.

LAL 시험용 Lab-chip 개발을 위한 타당성 연구 (Feasibility Study for a Lab-chip Development for LAL Test)

  • 황상연;최효진;서창우;안유민;김양선;이은규
    • KSBB Journal
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    • 제18권5호
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    • pp.429-433
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    • 2003
  • LAL 측정용 chip을 제작하기 위해서 우선 시료의 부피 감소에 대한 비탁법과 비색법을 비교하였다. 비색법은 낮은 부피에서 높은 감도를 보여 주었으며 시료의 부피와 무관하게 같은 endotoxin의 농도에서는 같은 흡광도를 보인다는 결론을 얻었다. Endotoxin의 농도에 따른 표준곡선을 end point법과 kinetic point법을 비교한 결과 대한약전의 기준에 적합한 kinetic point법이 적합하였다. 이러한 기초 실험결과를 통해 PDMS LOC를 제작하여 LAL 시험을 수행하였다. LOC를 이용하여 더 짧은 시간과 더 작은 시료로 시험이 가능하도록 하였다. 특히 PDMS LOC는 복잡한 channel을 쉽게 만들 수 있을 뿐 아니라 mold를 이용하여 상용화를 위한 대량 생산이 가능하다. 따라서 PDMS를 이용한 LOC의 제작과 실험을 통해 기존의 수작업의 LAL 시험을 LOC를 이용한 다중시료 측정과 자동화의 가능성을 제시하였다.

칩 기반 미세관 HPLC를 이용한 단백체 분석 (Chip-based microcapillary HPLC for proteomic analysis)

  • 김보라;박종문;이후근
    • 분석과학
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    • 제24권6호
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    • pp.407-413
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    • 2011
  • 지난 10년간 고해상도 탠덤질량분석기에 사용되는 다양한 미세관 HPLC들이 개발되어 단백체분석연구에 사용되어져 왔다. 질량분석에 앞선 분리과정은 샘플 중의 불순물을 제거하며, 분석물을 좁은 용리 피크 내에 농축함으로써 이어지는 질량분석의 민감도를 향상시킬 수 있다. 본 총설에서는 복잡한 단백체 분석에 사용되는 미세유체 칩을 기반으로 하는 고성능 분리 기술들의 최근 개발 동향을 고찰하였다.

음향미세유체역학적 미세액적 생성 및 부피 제어 (On-demand Acoustofluidic Droplet Generation with Tunable Droplet Volume)

  • 김우혁;박진수
    • 한국가시화정보학회지
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    • 제18권2호
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    • pp.46-50
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    • 2020
  • On-demand droplet generation with tunable droplet volume is fundamental in many droplet microfluidic applications. In this work, we propose an acoustofluidic method to produce water-in-oil droplets with prescribed volume in an on-demand manner. Surface acoustic waves produced from a slanted interdigital transducer are coupled with parallel laminar streams of dispersed and continuous phase fluids. Acoustic radiation force acting on the fluid interface enable generation of droplets in a microfluidic chip. We expect that the proposed acoustofluidic droplet generation method will serve as a promising tool for on-demand droplet generation with on-chip droplet volume control.

Enhancement of Polymer Surface Adhesion by Laser Beam Irradiation for Microfluidic Chip Application: Formation of a Channel on a Modified Surface

  • Shin, Sung-Kwon;Lee, Cheon
    • Transactions on Electrical and Electronic Materials
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    • 제8권6호
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    • pp.289-292
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    • 2007
  • Polymethly methacrylate(PMMA) and polydimethlysiloxane(PDMS) surfaces were treated to improve adhesiveness by irradiation of a Nd:YAG pulse laser beam($\lambda=266nm$). A pulse laser beam was directed on a polymer surface in air, and the number of pulses was controlled by mobile velocity of a motorized stage. The laser treated surfaces were investigated using an optical microscope and a contact angle measuring instrument. It was thereby revealed that the contact angles were decreased in the laser treated surface. This in turn led to an increase of oxygen content and improved adhesiveness on the modified surface. With improved surface adhesion, a fluid channel could be formed on the laser treated surface region.

광-전기역학 기술을 이용한 미생물의 미세유체역학적 제어 (Opto-electrokinetic Technique for Microfluidic Manipulation of Microorganism)

  • 권재성
    • 한국가시화정보학회지
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    • 제17권1호
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    • pp.69-77
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    • 2019
  • This paper introduces microfluidic manipulation of microorganism by opto-electrokinetic technique, named rapid electrokinetic patterning (REP). REP is a hybrid method that utilizes the simultaneous application of a uniform electric field and a focused laser to manipulate various kinds and types of colloidal particles. Using the technique in preliminary experiments, we have successfully aggregated, translated, and trapped not only spherical polystyrene, latex, and magnetic particles but also ellipsoidal glass particles. Extending the manipulation target to cells, we attempted to manipulate saccharomyces cerevisiae (S. cerevisiae), the most commonly used microorganism for food fermentation and biomass production. As a result, S. cerevisiae were assembled and dynamically trapped by REP at arbitrary location on an electrode surface. It firmly establishes the usefulness of REP technique for development of a high-performance on-chip bioassay system.