• Title/Summary/Keyword: Microfluidic

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Chemotactic Cell Migration around Hollow Silica Beads Containing Chemotatic Reagent (약물 담지 다공성 중공 실리카 미세구 주위 세포의 주화성 이동)

  • Kim, Hae-Chun;Kang, Mi-Seon;Rhee, Seog-Woo
    • KSBB Journal
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    • v.25 no.4
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    • pp.344-350
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    • 2010
  • This paper demonstrates a microfluidic chip incorporating patterned hollow silica beads that can be effectively used for chemotaxis assay. The hollow silica bead has been exploited to develop a carrier for chemoattractant to induce cell migration. The microfluidic chip contains a patterned array of microfabricated docks which can hold only one bead per docking site. The hollow bead placed inside microfluidic chip releases chemotactic reagent (PDGF-BB) around its periphery in a controlled fashion which generates a signal for chemotatic migration of fibroblast cells. The number of cells migrated close to each bead has been assessed. On-chip cell migration assay showed a remarkable result proving the high efficiency and reliable accuracy in quantitative analysis. Therefore, the device could be extensively used in cell migration assay and other various studies related to cellular movements.

Microfluidic chip for characterization of mechanical property of cell by using impedance measurement (임피던스 측정을 이용한 세포의 변형성 분석용 미소유체 칩)

  • Kim, Dong-Il;Choi, Eun-Pyo;Chio, Sung-Sik;Park, Jung-Yul;Lee, Sang-Ho;Yun, Kwang-Seok
    • Journal of Sensor Science and Technology
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    • v.18 no.1
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    • pp.42-47
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    • 2009
  • In this paper we propose a microfluidic chip that measures the mechanical stiffness of cell membrane using impedance measurement. The microfluidic chip is composed of PDMS channel and a glass substrate with electrode. The proposed device uses patch-clamp technique to capture and deform a target cell and measures impedance of deformed cells. We demonstrated that the impedance increased after the membrane stretched and blocked the channel.

Disposable Microfluidic Infusion Pump using Elastomeric Blister Actuator (탄성 블리스터 액츄에이터를 이용한 일회용 미세유체 주입펌프)

  • Jang, Woong Ki;Kim, Hyung Jin;Kim, Byeong Hee;Seo, Young Ho
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.22 no.2
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    • pp.235-240
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    • 2013
  • This paper presents a disposable microfluidic infusion pump using the restoring force of elastomeric membrane of Polydimethylsiloxane. Microfluidic infusion pump consists of hydraulic resistance control part, elastomeric blister actuator part, drug inlet and outlet. Expanded elastomeric blister actuator continuously pushes liquid in the chamber to outlet. At same time, microchannel diameter near the outlet was controlled by thin elastomeric membrane in hydraulic resistance control part. Eventually flow rate of infused liquid is controlled by air pressure. In experimental study, the amount of the filled liquid in the blister is precisely controlled by the height of the blister. Flow rate of infused liquid could be controlled, that is, controlled release of the drug over time was possible by adjusting hydraulic resistance and restoring pressure with the blister actuator.

PIV measurements of a microfluidic elements fabricated in a plastic chip (플라스틱 미소유체요소 내부유동의 PIV 측정)

  • Lee, In-Won;Choi, Jay-Ho;Lee, In-Seop
    • Proceedings of the KSME Conference
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    • 2001.11b
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    • pp.400-404
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    • 2001
  • A micro-PIV(particle image velocimetry) measurement has been conducted to investigate flow fields in such microfluidic devices as microchannels and micronozzle. The present study employs a state-of-art micro-PIV system which consists of epi-fluorescence microscope, 620nm diameter fluorescent seed particles and an 8-bit megapixel CCD camera. Velocity vector fields with a resolution of $6.7\times6.7{\mu}m$ has been obtained, and the attention has been paid on the effect of varying measurement conditions of particle diameter and particle concentration on the resulting PIV results. In this study, the microfluidic elements were fabricated on plastic chips by means of MEMS processes and a subsequent molding process. Flow fields in a variety of microchannels as well as micronozzle have been investigated.

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Microfluidic Flow Cytometry: Principles of Cell Analysis and Applications

  • Shin, Se-Hyun
    • International Journal of Vascular Biomedical Engineering
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    • v.4 no.2
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    • pp.1-6
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    • 2006
  • Microsystems create new opportunities for conventional cell analysis by combining microfluidics and flow cytometry. This article describes recent developments in conventional flow cytometers and related microfluidic flow cytometers to detect, analyze, and sort cells or particles. Flow cytometry strongly consisted of fluidics, optics and electronics requires a large space to equip various components, which are mostly the fluidic components such as compressor, fluid handling system. Adopting microfluidics into flow cytometry enables volume- and power-efficient, inexpensive and flexible analysis of particulate samples. In this paper, we review various efforts that take advantage of novel techniques to build microfluidic cell analysis systems with high-speed analytical capability. Highly integrated microfluidic cytometry shows great promise for basic biomedical and pharmaceutical research, and robust and portable point-of-care devices could be used in clinical settings.

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Magnetic beads separation using a multi-layered microfluidic channel (다층구조의 미세유체채널을 이용한 자성입자 분리)

  • Lee, Hye-Lyn;Song, Suk-Heung;Jung, Hyo-Il
    • Proceedings of the KSME Conference
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    • 2008.11a
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    • pp.1685-1686
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    • 2008
  • This paper presents the design and experiment results of a multi-layered microsystem for magnetic bead applications. The magneto-microfluidic device is designed for capable of separating magnetic beads. In the presence of the magnetic field, magnetic beads are attracted and moved to high gradient magnetic fields. A multi-layered microfluidic channel consists of top and bottom layers in order to separate magnetic beads in the vertical direction. Our channel is easily integrated magnetic cell sorter, especially on-chip microelectromagnet or permanent magnet device. Fast separation of magnetic beads in top and bottom channels can be used in high throughput screening to monitor the efficiency of blood and drug compounds.

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Development of Microfluidic Polydiacetylene Sensor Chip for pH detection (pH 검출을 위한 미세유동 폴리디아세틸렌 센서칩 개발)

  • Hwang, Hyun-Jin;Song, Si-Mon
    • Proceedings of the KSME Conference
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    • 2008.11b
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    • pp.2415-2418
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    • 2008
  • Polydiacetylenes (PDAs) are very attractive chemical substances which have distinctive features of color change and fluorescence emission by thermal or chemical stress. Especially, when PDAs contact with solutions of a particular pH, such as a strong alkaline sodium hydroxide (NaOH) solution or a strong acidic hydrogen chloride (HCl) solution, PDAs change their color from non-fluorescent blue to fluorescent red. In this study, we propose a novel method to detect alkaline pH using PDAs and NaOH solutions by hydrodynamic focusing on a microfluidic chip. Preliminary results indicate that the fluorescent intensity of PDAs increases in respond to the NaOH solution concentrations. Also, the fluorescence is quenched back when the PDAs are in contact with a HCl solution. These results are useful in a microfluidic PDA sensor chip design for pH detection.

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Microbead-based bio-assay using quantum dot fluorescence in a microfluidic chip (미소유체 칩 상에서 Quantum Dot 및 마이크로 비드를 이용한 생체물질 분석)

  • Yun, Kwang-Seok;Lee, Do-Hoon;Kim, Hak-Sung;Yoon, Eui-Sik
    • Journal of Sensor Science and Technology
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    • v.14 no.5
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    • pp.308-312
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    • 2005
  • We present a microfluidic chip designed for the detection of antibody by using quantum dots fluorescence and a microbead-based assay. A custom designed PDMS microfluidic chip with multi-layer channel is utilized for capturing microbeads; antibody injection into each micro-well; QD injection; and fluorescence detection. The experiment using the fabricated microfluidic chip has been performed on solutions with various concentrations of antibody and has shown correlated fluorescent intensities.

Numerical Analysis of the Filling Stage in Insert Injection Molding of Microfluidic Chip with Metal Electrodes (금속 전극을 포함한 미세유체 칩의 인서트 사출성형 충전 공정 해석)

  • Lee, Bong-Kee;Na, Seung-Sik
    • Journal of the Korean Society for Precision Engineering
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    • v.32 no.11
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    • pp.969-976
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    • 2015
  • In the present study, a numerical investigation of an insert injection molding process was carried out for the development of thermoplastic microfluidic chip plates with metal electrodes. Insert injection molding technology enables efficient realization of a plastic-metal hybrid structure and various efforts have been undertaken to produce novel components in several application fields. The microfluidic chip with metal inserts was proposed as a representative example and its molding process was analyzed. The important characteristics of the filling stage, such as the effects of filling time and thickness of the part cavity, were characterized. Furthermore, the detailed distributions of pressure and temperature at the end of the filling stage were investigated, revealing the significance of metal insert temperature.

Self-healing capsule manufacturing and characteristic analysis using microfluidic control method droplet manufacturing technology (미세 유체제어 방식 드랍렛 제작 기술을 이용한 자가치유 캡슐 제작 및 특성 분석)

  • Ji, Dong-min;Song, Won-Il;lee, ja sung;Ramos-Sebastian, Armando;Kim, S-Hoon
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2022.04a
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    • pp.251-252
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    • 2022
  • The microfluidic controlled droplet manufacturing system is one of the most powerful methods for capsule manufacturing. The microfluidic control method can control the type and size of the capsule by changing the size and configuration of the channel. In addition, by increasing the number of channels, capsules of uniform size can be mass-produced. In this paper, a capsule manufacturing system including flow-focusing and T junction method was designed. In addition, the effectiveness of this system was verified by manufacturing multi-emulsion capsules with a size of 2.2 to 3 mm.

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