Multi-channel imaging cytometry with a single detector

被引:0
作者
Locknar, Sarah [1 ]
Barton, John [1 ]
Entwistle, Mark [2 ]
Carver, Gary [1 ]
Johnson, Robert [1 ]
机构
[1] Omega Opt, Brattleboro, VT 05301 USA
[2] Philadelphia Lightwave, Trevose, PA 19053 USA
来源
HIGH-SPEED BIOMEDICAL IMAGING AND SPECTROSCOPY III: TOWARD BIG DATA INSTRUMENTATION AND MANAGEMENT | 2018年 / 10505卷
关键词
imaging flow cytometry; multispectral imaging; multispectral cell sorting; multispectral cell analysis; imaging cell sorting;
D O I
10.1117/12.2290773
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Multi-channel microscopy and multi-channel flow cytometry generate high bit data streams. Multiple channels (both spectral and spatial) are important in diagnosing diseased tissue and identifying individual cells. Omega Optical has developed techniques for mapping multiple channels into the time domain for detection by a single high gain, high bandwidth detector. This approach is based on pulsed laser excitation and a serial array of optical fibers coated with spectral reflectors such that up to 15 wavelength bins are sequentially detected by a single-element detector within 2.5 mu s. Our multichannel microscopy system uses firmware running on dedicated DSP and FPGA chips to synchronize the laser, scanning mirrors, and sampling clock. The signals are digitized by an NI board into 14 bits at 60MHz - allowing for 232 by 174 pixel fields in up to 15 channels with 10x over sampling. Our multi-channel imaging cytometry design adds channels for forward scattering and back scattering to the fluorescence spectral channels. All channels are detected within the 2.5 mu s - which is compatible with fast cytometry. Going forward, we plan to digitize at 16 bits with an A-to-D chip attached to a custom board. Processing these digital signals in custom firmware would allow an on-board graphics processing unit to display imaging flow cytometry data over configurable scanning line lengths. The scatter channels can be used to trigger data buffering when a cell is present in the beam. This approach enables a low cost mechanically robust imaging cytometer.
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页数:5
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