SYNTHETIC ASYMMETRIC VESICLES BUILT USING MICROFLUIDIC TECHNOLOGY AT HIGH-THROUGHPUT

被引:0
|
作者
Lu, Li [1 ]
Schertzer, Jeffrey W. [1 ]
Chiarot, Paul R. [1 ]
机构
[1] SUNY Binghamton, Binghamton, NY USA
关键词
LIPID VESICLES;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We report on a novel microfluidic strategy for building monodisperse asymmetric vesicles with customized composition, size, and interfacial properties at high-throughput. The microfluidic device encompasses a triangular post region and two flow-focusing regions. The major steps involved in the vesicle building process include: (1) forming highly uniform water emulsion templates in the inner-leaflet lipid solution, (2) replacing the inner-leaflet lipid solution with the outer-leaflet lipid solution, (3) creating water-in-oil-in-water double emulsions, and (4) extracting the excess outer-leaflet lipid solution from the double emulsions. Bilayer membrane asymmetry and unilamellarity are confirmed using a fluorescence quenching assay and quantitative measurements of fluorescent intensities. This method addresses many of the deficiencies found in existing technologies, and yields asymmetries as high as 95%. The asymmetric vesicles built using this strategy hold the potential to serve as model systems to investigate fundamental problems in membrane biology.
引用
收藏
页数:5
相关论文
共 50 条
  • [31] High-throughput mechanophenotyping of multicellular spheroids using a microfluidic micropipette aspiration chip
    Boot, Ruben C.
    Roscani, Alessio
    van Buren, Lennard
    Maity, Samadarshi
    Koenderink, Gijsje H.
    Boukany, Pouyan E.
    LAB ON A CHIP, 2023, 23 (07) : 1768 - 1778
  • [32] Sensitive Readout for Microfluidic High-Throughput Applications using Scanning SQUID Microscopy
    Wissberg, Shai
    Ronen, Maria
    Oren, Ziv
    Gerber, Doron
    Kalisky, Beena
    SCIENTIFIC REPORTS, 2020, 10 (01)
  • [33] High-Throughput Single Cell Trapping and Patterning Using a Sandwiched Microfluidic Chip
    Fan, Lei
    Luo, Tao
    Sun, Dong
    2018 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND BIOMIMETICS (ROBIO), 2018, : 1508 - 1513
  • [34] High-throughput RNAi screening using cell microarray technology
    Kallioniemi, O.
    EJC SUPPLEMENTS, 2008, 6 (12): : 147 - 147
  • [35] Sensitive Readout for Microfluidic High-Throughput Applications using Scanning SQUID Microscopy
    Shai Wissberg
    Maria Ronen
    Ziv Oren
    Doron Gerber
    Beena Kalisky
    Scientific Reports, 10
  • [36] Decoding the Chemical Language of Motile Bacteria by Using High-Throughput Microfluidic Assays
    Crooks, John A.
    Stilwell, Matthew D.
    Oliver, Piercen M.
    Zhong, Zhou
    Weibel, Douglas B.
    CHEMBIOCHEM, 2015, 16 (15) : 2151 - 2155
  • [37] High-throughput screening of asymmetric catalysts.
    Wolf, C
    Fadul, Z
    Volpe, E
    Pili, H
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 227 : U1263 - U1263
  • [38] Highbrow proteasome in high-throughput technology
    Gaczynska, Maria
    Rodriguez, Karl
    Madabhushi, Srividya
    Osmulski, Pawel A.
    EXPERT REVIEW OF PROTEOMICS, 2006, 3 (01) : 115 - 127
  • [39] High-throughput screening - Mainstreaming the technology
    Hediger, M
    BIOPHARM-THE APPLIED TECHNOLOGIES OF BIOPHARMACEUTICAL DEVELOPMENT, 1998, 11 (02): : 32 - +
  • [40] Microfluidic High-Throughput Platforms for Discovery of Novel Materials
    Zhou, Peipei
    He, Jinxu
    Huang, Lu
    Yu, Ziming
    Su, Zhenning
    Shi, Xuetao
    Zhou, Jianhua
    NANOMATERIALS, 2020, 10 (12) : 1 - 17