posted on 2024-01-03, 22:29authored byMahmut
Kamil Aslan, Yingchao Meng, Yanan Zhang, Tobias Weiss, Stavros Stavrakis, Andrew J. deMello
We present an ultrahigh-throughput, real-time fluorescence
cytometer
comprising a viscoelastic microfluidic system and a complementary
metal–oxide-semiconductor (CMOS) linear image sensor-based
detection system. The flow cytometer allows for real-time quantification
of a variety of fluorescence species, including micrometer-sized particles
and cells, at analytical throughputs in excess of 400,000 species
per second. The platform integrates a custom C++ control program and
graphical user interface (GUI) to allow for the processing of raw
signals, adjustment of processing parameters, and display of fluorescence
intensity histograms in real time. To demonstrate the efficacy of
the platform for rare event detection and its utility as a basic clinical
tool, we measure and quantify patient-derived circulating tumor cells
(CTCs) in peripheral blood, realizing that detection has a sensitivity
of 6 CTCs per million blood cells (0.000006%) with a volumetric throughput
of over 3 mL/min.