Literature DB >> 23044636

Time encoded multicolor fluorescence detection in a microfluidic flow cytometer.

Joerg Martini1, Michael I Recht, Malte Huck, Marshall W Bern, Noble M Johnson, Peter Kiesel.   

Abstract

We describe an optical detection technique that delivers high signal-to-noise discrimination to enable a multi-parameter flow cytometer that combines high performance, robustness, compactness and low cost. The enabling technique is termed "spatially modulated detection" and generates a time-dependent signal as a continuously fluorescing (bio-) particle traverses an optical transmission pattern along the fluidic channel. Correlating the detected signal with the expected transmission pattern achieves high discrimination of the particle signal from background noise. Additionally, the particle speed and its fluorescence emission characteristics are deduced from the correlation analysis. Our method uses a large excitation/emission volume along the fluidic channel in order to increase the total flux of fluorescence light that originates from a particle while requiring minimal optical alignment. Despite the large excitation/detection volume, the mask pattern enables a high spatial resolution in the micron range. This allows for detection and characterization of particles with a separation (in flow direction) comparable to the dimension of individual particles. In addition, the concept is intrinsically tolerant of non-encoded background fluorescence originating from fluorescent components in solution, fluorescing components of the chamber and contaminants on its surface. The optical detection technique is illustrated with experimental results of multicolor detection with a single large area detector by filtering fluorescence emission of different particles through a patterned color mask. Thereby the particles' fluorescence emission spectrum is encoded in a time dependent intensity signal and color information can be extracted from the correlation analysis. The multicolor detection technique is demonstrated by differentiation of micro-beads loaded with PE (Phycoerythrin) and PE-Cy5 that are excited at 532 nm.

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Year:  2012        PMID: 23044636      PMCID: PMC3485422          DOI: 10.1039/c2lc40515f

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  28 in total

1.  Hollow ARROW Waveguides on Self-Aligned Pedestals for Improved Geometry and Transmission.

Authors:  Evan J Lunt; Bin Wu; Jared M Keeley; Philip Measor; Holger Schmidt; Aaron R Hawkins
Journal:  IEEE Photonics Technol Lett       Date:  2010-07-12       Impact factor: 2.468

2.  Inertial microfluidics for sheath-less high-throughput flow cytometry.

Authors:  Ali Asgar S Bhagat; Sathyakumar S Kuntaegowdanahalli; Necati Kaval; Carl J Seliskar; Ian Papautsky
Journal:  Biomed Microdevices       Date:  2010-04       Impact factor: 2.838

3.  Optofluidic waveguides: I. Concepts and implementations.

Authors:  Holger Schmidt; Aaron R Hawkins
Journal:  Microfluid Nanofluidics       Date:  2008-01-01       Impact factor: 2.529

4.  A microfluidic fluorescence measurement system using an astigmatic diffractive microlens array.

Authors:  Ethan Schonbrun; Paul E Steinvurzel; Kenneth B Crozier
Journal:  Opt Express       Date:  2011-01-17       Impact factor: 3.894

5.  Optofluidic waveguides: II. Fabrication and structures.

Authors:  Aaron R Hawkins; Holger Schmidt
Journal:  Microfluid Nanofluidics       Date:  2007-07-19       Impact factor: 2.529

6.  A hard microflow cytometer using groove-generated sheath flow for multiplexed bead and cell assays.

Authors:  Abel L Thangawng; Jason S Kim; Joel P Golden; George P Anderson; Kelly L Robertson; Vyechi Low; Frances S Ligler
Journal:  Anal Bioanal Chem       Date:  2010-07-25       Impact factor: 4.142

7.  Multi-wavelength microflow cytometer using groove-generated sheath flow.

Authors:  Joel P Golden; Jason S Kim; Jeffrey S Erickson; Lisa R Hilliard; Peter B Howell; George P Anderson; Mansoor Nasir; Frances S Ligler
Journal:  Lab Chip       Date:  2009-03-31       Impact factor: 6.799

8.  Particle segregation and dynamics in confined flows.

Authors:  Dino Di Carlo; Jon F Edd; Katherine J Humphry; Howard A Stone; Mehmet Toner
Journal:  Phys Rev Lett       Date:  2009-03-03       Impact factor: 9.161

Review 9.  Microfluidics and photonics for Bio-System-on-a-Chip: a review of advancements in technology towards a microfluidic flow cytometry chip.

Authors:  Jessica Godin; Chun-Hao Chen; Sung Hwan Cho; Wen Qiao; Frank Tsai; Yu-Hwa Lo
Journal:  J Biophotonics       Date:  2008-10       Impact factor: 3.207

10.  Two-parameter angular light scatter collection for microfluidic flow cytometry by unique waveguide structures.

Authors:  Jessica Godin; Yu-Hwa Lo
Journal:  Biomed Opt Express       Date:  2010-11-22       Impact factor: 3.732

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  9 in total

1.  Optofluidic wavelength division multiplexing for single-virus detection.

Authors:  Damla Ozcelik; Joshua W Parks; Thomas A Wall; Matthew A Stott; Hong Cai; Joseph W Parks; Aaron R Hawkins; Holger Schmidt
Journal:  Proc Natl Acad Sci U S A       Date:  2015-10-05       Impact factor: 11.205

2.  Compact and modular multicolour fluorescence detector for droplet microfluidics.

Authors:  Russell H Cole; Niek de Lange; Zev J Gartner; Adam R Abate
Journal:  Lab Chip       Date:  2015-06-02       Impact factor: 6.799

3.  Miniaturized, multiplexed readout of droplet-based microfluidic assays using time-domain modulation.

Authors:  Melaku Muluneh; Bawul Kim; Gershon Buchsbaum; David Issadore
Journal:  Lab Chip       Date:  2014-10-14       Impact factor: 6.799

4.  Multicolor Fluorescence Detection for Droplet Microfluidics Using Optical Fibers.

Authors:  Russell H Cole; Zev J Gartner; Adam R Abate
Journal:  J Vis Exp       Date:  2016-05-05       Impact factor: 1.355

5.  Optofluidic bioanalysis: fundamentals and applications.

Authors:  Damla Ozcelik; Hong Cai; Kaelyn D Leake; Aaron R Hawkins; Holger Schmidt
Journal:  Nanophotonics       Date:  2017-03-16       Impact factor: 8.449

Review 6.  The intersection of flow cytometry with microfluidics and microfabrication.

Authors:  Menake E Piyasena; Steven W Graves
Journal:  Lab Chip       Date:  2014-03-21       Impact factor: 6.799

7.  Free-Space Excitation of Optofluidic Devices for Pattern-Based Single Particle Detection.

Authors:  Md Nafiz Amin; Vahid Ganjalizadeh; Matt Hamblin; Aaron R Hawkins; Holger Schmidt
Journal:  IEEE Photonics Technol Lett       Date:  2021-03-30       Impact factor: 2.414

8.  Signal-to-noise Enhancement in Optical Detection of Single Viruses with Multi-spot Excitation.

Authors:  Damla Ozcelik; Matthew A Stott; Joshua W Parks; Jennifer A Black; Thomas A Wall; Aaron R Hawkins; Holger Schmidt
Journal:  IEEE J Sel Top Quantum Electron       Date:  2016-03-21       Impact factor: 4.544

9.  Fast custom wavelet analysis technique for single molecule detection and identification.

Authors:  Vahid Ganjalizadeh; Gopikrishnan G Meena; Thomas A Wall; Matthew A Stott; Aaron R Hawkins; Holger Schmidt
Journal:  Nat Commun       Date:  2022-02-24       Impact factor: 14.919

  9 in total

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