Karpf, Sebastian and Burmeister, Nina Gloeckner and Dubreil, Laurence and Ghosh, Shayantani and Hollandi, Réka and Pichon, Julien and Leroux, Isabelle and Henkel, Alessandra and Lutz, Valerie and Jurkevicius, Jonas and Latshaw, Alexandra and Kilin, Vasyl and Kutscher, Tonio and Wiggert, Moritz and Saavedra-Villanueva, Oscar and Vogel, Alfred and Huber, Robert A. and Horváth, Péter and Rouger, Karl and Bonacina, Luigi (2024) Harmonic Imaging of Stem Cells in Whole Blood at GHz Pixel Rate. SMALL, 20 (40). No. 2401472. ISSN 1613-6810
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Abstract
The pre-clinical validation of cell therapies requires monitoring the biodistribution of transplanted cells in tissues of host organisms. Real-time detection of these cells in the circulatory system and identification of their aggregation state is a crucial piece of information, but necessitates deep penetration and fast imaging with high selectivity, subcellular resolution, and high throughput. In this study, multiphoton-based in-flow detection of human stem cells in whole, unfiltered blood is demonstrated in a microfluidic channel. The approach relies on a multiphoton microscope with diffractive scanning in the direction perpendicular to the flow via a rapidly wavelength-swept laser. Stem cells are labeled with metal oxide harmonic nanoparticles. Thanks to their strong and quasi-instantaneous second harmonic generation (SHG), an imaging rate in excess of 10 000 frames per second is achieved with pixel dwell times of 1 ns, a duration shorter than typical fluorescence lifetimes yet compatible with SHG. Through automated cell identification and segmentation, morphological features of each individual detected event are extracted and cell aggregates are distinguished from isolated cells. This combination of high-speed multiphoton microscopy and high-sensitivity SHG nanoparticle labeling in turbid media promises the detection of rare cells in the bloodstream for assessing novel cell-based therapies. The in-flow detection of human stem cells in whole, unfiltered blood in a microfluidic channel is demonstrated. The approach relies on the implementation of a multiphoton microscope with diffractive scanning at GHz rates in the direction perpendicular to the flow via a rapidly wavelength-swept laser. Stem cells are labeled with second-harmonic emitting metal oxide nanoparticles. image
Item Type: | Article |
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Additional Information: | Funding Agency and Grant Number: European H2020-ICT project FAIR CHARM (FAst InfraRed Coherent HARmonic Microscopy); State of Schleswig-Holstein (Excellence chair program by the university Kiel); State of Schleswig-Holstein (Excellence chair program by the university Luebeck); Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy [EXC 2167-390884018]; Fonds Europeen de Developpement Regional (FEDER) [PL0003686]; APEX platform [UMR703PAnTher]; Center of Excellence Nikon, member of IBiSA; NeurAtris infrastructure; Biogenouest, Nantes, France Funding text: All research groups gratefully acknowledge the funding from the European H2020-ICT project FAIR CHARM (FAst InfraRed Coherent HARmonic Microscopy, http://www.faircharm.eu). S.K. gratefully acknowledges his Junior professorship with financial support by the state of Schleswig-Holstein (Excellence chair program by the universities Kiel and Luebeck), and funding from the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy - EXC 2167-390884018. K.R. and L.D. were partially supported by a grant from the "Fonds Europeen de Developpement Regional" (FEDER; N PL0003686).The authors acknowledge the support of the APEX platform of UMR703PAnTher, Center of Excellence Nikon, member of IBiSA, NeurAtris infrastructure and Biogenouest, Nantes, France. |
Uncontrolled Keywords: | DELIVERY; TRANSPLANTATION; EFFICACY; NANOPARTICLES; Chemistry, Physical; Regenerative Medicine; multiphoton microscopy; Fiber lasers; Materials Science, Multidisciplinary; Physics, Applied; Chemistry, Multidisciplinary; Nanoscience & Nanotechnology; DUCHENNE MUSCULAR-DYSTROPHY; SHG; harmonic imaging; DOMAIN MODE-LOCKING; |
Subjects: | Q Science / természettudomány > QH Natural history / természetrajz > QH301 Biology / biológia R Medicine / orvostudomány > R1 Medicine (General) / orvostudomány általában |
SWORD Depositor: | MTMT SWORD |
Depositing User: | MTMT SWORD |
Date Deposited: | 14 Apr 2025 09:37 |
Last Modified: | 14 Apr 2025 09:37 |
URI: | https://real.mtak.hu/id/eprint/217738 |
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