Detail of Fig2C_Rdots



Project
Title
MCF-7 cells stained by 12 different colors of Rdots (Raman-active dots).
Description
MCF-7 cells stained by 12 different colors of Rdots (Raman-active dots).
Release, Updated
2024-11-25
License
CC-BY
Kind
Image data
File Formats
.txt
Data size
635.4 MB

Organism
Homo sapiens ( NCBITaxon:9606 )
Strain(s)
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Cell Line
MCF7 cell ( CLO_0007606 )

Datatype
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Molecular Function (MF)
Biological Process (BP)
Cellular Component (CC)
Biological Imaging Method
inelastic scattering of photons ( Fbbi:00000589 )
X scale
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Y scale
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Z scale
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T scale
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Image Acquisition
Experiment type
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Microscope type
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Acquisition mode
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Contrast method
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Microscope model
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Detector model
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Objective model
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Filter set
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Summary of Methods
See details in Nishiyama R et. al., PNAS Nexus. 2023 Jan 14;2(2):pgad001.
Related paper(s)

Ryo Nishiyama, Kotaro Hiramatsu, Shintaro Kawamura, Kosuke Dodo, Kei Furuya, Julia Gala de Pablo, Shigekazu Takizawa, Wei Min, Mikiko Sodeoka, Keisuke Goda (2023) Color-scalable flow cytometry with Raman tags., PNAS Nexus, Volume 2, Number 2

Published in 2023 Feb (Electronic publication in Jan. 14, 2023, midnight )

(Abstract) Flow cytometry is an indispensable tool in biology and medicine for counting and analyzing cells in large heterogeneous populations. It identifies multiple characteristics of every single cell, typically via fluorescent probes that specifically bind to target molecules on the cell surface or within the cell. However, flow cytometry has a critical limitation: the color barrier. The number of chemical traits that can be simultaneously resolved is typically limited to several due to the spectral overlap between fluorescence signals from different fluorescent probes. Here, we present color-scalable flow cytometry based on coherent Raman flow cytometry with Raman tags to break the color barrier. This is made possible by combining a broadband Fourier-transform coherent anti-Stokes Raman scattering (FT-CARS) flow cytometer, resonance-enhanced cyanine-based Raman tags, and Raman-active dots (Rdots). Specifically, we synthesized 20 cyanine-based Raman tags whose Raman spectra are linearly independent in the fingerprint region (400 to 1,600 cm−1). For highly sensitive detection, we produced Rdots composed of 12 different Raman tags in polymer nanoparticles whose detection limit was as low as 12 nM for a short FT-CARS signal integration time of 420 µs. We performed multiplex flow cytometry of MCF-7 breast cancer cells stained by 12 different Rdots with a high classification accuracy of 98%. Moreover, we demonstrated a large-scale time-course analysis of endocytosis via the multiplex Raman flow cytometer. Our method can theoretically achieve flow cytometry of live cells with >140 colors based on a single excitation laser and a single detector without increasing instrument size, cost, or complexity.

Contact
Kotaro Hiramatsu, Keisuke Goda , Kyusyu University, The University of Tokyo , Faculty of Sciences Department of Chemistry, Department of Chemistry
Contributors
Ryo Nishiyama, Shintaro Kawamura, Kosuke Dodo, Mikiko Sodeoka

OMERO Dataset
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OMERO Project
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Source