Active Particle Based Selective Transport and Release of Cell Organelles and Mechanical Probing of a Single Nucleus.

active particles cell organelles mechanical probing selective transport and release

Journal

Small (Weinheim an der Bergstrasse, Germany)
ISSN: 1613-6829
Titre abrégé: Small
Pays: Germany
ID NLM: 101235338

Informations de publication

Date de publication:
06 2020
Historique:
received: 18 11 2019
revised: 27 03 2020
accepted: 27 03 2020
pubmed: 5 5 2020
medline: 24 6 2021
entrez: 5 5 2020
Statut: ppublish

Résumé

Self-propelling micromotors are emerging as a promising microscale tool for single-cell analysis. The authors have recently shown that the field gradients necessary to manipulate matter via dielectrophoresis can be induced at the surface of a polarizable active ("self-propelling") metallo-dielectric Janus particle (JP) under an externally applied electric field, acting essentially as a mobile floating microelectrode. Here, the application of the mobile floating microelectrode to trap and transport cell organelles in a selective and releasable manner is successfully extended. This selectivity is driven by the different dielectrophoretic (DEP) potential wells on the JP surface that is controlled by the frequency of the electric field, along with the hydrodynamic shearing and size of the trapped organelles. Such selective and directed loading enables purification of targeted organelles of interest from a mixed biological sample while their dynamic release enables their harvesting for further analysis such as gene/RNA sequencing or proteomics. Moreover, the electro-deformation of the trapped nucleus is shown to be in correlation with the DEP force and hence, can act as a promising label-free biomechanical marker. Hence, the active carrier constitutes an important and novel ex vivo platform for manipulation and mechanical probing of subcellular components of potential for single cell analysis.

Identifiants

pubmed: 32363783
doi: 10.1002/smll.201906682
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

e1906682

Informations de copyright

© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Références

C.-C. Chang, K. Wang, Y. Zhang, D. Chen, B. Fan, C.-H. Hsieh, J. Wang, M.-H. Wu, J. Chen, Cytometry, Part A 2018, 93, 822.
K. S. Dimmer, L. Scorrano, Physiology 2006, 21, 233.
C. Tesauro, B. Ferrando, X. Ma, M. L. Jepsen, A. K. R. Ivarsen, R. Frøhlich, T. Stevnsner, B. R. Knudsen, Y. P. Ho, RSC Adv. 2017, 7, 23735.
C. Aguado, E. Pérez-Jiménez, M. Lahuerta, E. Knecht, Methods Mol. Biol. 2016, 1449, 299.
C. Frezza, S. Cipolat, L. Scorrano, Nat. Protoc. 2007, 2, 287.
R. Flükiger-Gagescu, J. Gruenberg, Cell Biol. 2006, 2, 27.
C. Pasquali, I. Fialka, L. A. Huber, J. Chromatogr. B: Biomed. Sci. Appl. 1999, 722, 89.
Z. Li, B. Yang, S. Sekine, S. Zhuang, D. Zhang, Y. Yamaguchi, Sens. Actuators, B. 2018, 265, 110.
M. Moschallski, M. Hausmann, A. Posch, A. Paulus, N. Kunz, T. T. Duong, B. Angres, K. Fuchsberger, H. Steuer, D. Stoll, S. Werner, B. Hagmeyer, M. Stelzle, Electrophoresis 2010, 31, 2655.
J. Luo, B. G. Abdallah, G. G. Wolken, E. A. Arriaga, A. Ros, Biomicrofluidics 2014, 8, 021801.
C.-H. Tai, S.-K. Hsiung, C.-Y. Chen, M.-L. Tsai, G.-B. Lee, Biomed. Microdevices 2007, 9, 533.
K. Norregaard, R. Metzler, C. M. Ritter, K. Berg-Sørensen, L. B. Oddershede, Chem. Rev. 2017, 117, 4342.
S. Kumar, G. G. Wolken, N. J. Wittenberg, E. A. Arriaga, S.-H. Oh, Anal. Chem. 2015, 87, 11973.
K. Zand, T. Pham, A. Davila, D. C. Wallace, P. J. Burke, Anal. Chem. 2013, 85, 6018.
S. Ghosh, A. Ghosh, Sci. Rob. 2018, 3, eaaq0076.
F. Qiu, S. Fujita, R. Mhanna, L. Zhang, B. R. Simona, B. J. Nelson, Adv. Funct. Mater. 2015, 25, 1666.
D. M. Graham, M. A. Messerli, R. Pethig, BioTechniques 2012, 52, 39.
S.-H. Huang, L.-Y. Hung, G.-B. Lee, Lab Chip 2016, 16, 1447.
B. P. Nadappuram, P. Cadinu, A. Barik, A. J. Ainscough, M. J. Devine, M. Kang, J. Gonzalez-Garcia, J. T. Kittler, K. R. Willison, R. Vilar, P. Actis, B. Wojciak-Stothard, S.-H. Oh, A. P. Ivanov, J. B. Edel, Nat. Nanotechnol. 2019, 14, 80.
A. Ashkin, K. Schütze, J. M. Dziedzic, U. Euteneuer, M. Schliwa, Nature 1990, 348, 346.
V. S. Vajrala, E. Suraniti, P. Garrigue, B. Goudeau, M. Rigoulet, A. Devin, N. Sojic, S. Arbault, Anal. Bioanal. Chem. 2014, 406, 931.
H. R. Jiang, N. Yoshinaga, M. Sano, Phys. Rev. Lett. 2010, 105, 268302.
Y. Wu, T. Si, J. Shao, Z. Wu, Q. He, Nano Res. 2016, 9, 3747.
F. Zhang, R. Mundaca-Uribe, H. Gong, B. Esteban-Fernández de Ávila, M. Beltrán-Gastélum, E. Karshalev, A. Nourhani, Y. Tong, B. Nguyen, M. Gallot, Y. Zhang, L. Zhang, J. Wang, Adv. Mater. 2019, 31, 1901828.
T. Mirkovic, N. S. Zacharia, G. D. Scholes, G. A. Ozin, Small 2010, 6, 159.
A. Boymelgreen, G. Yossifon, Langmuir 2015, 31, 8243.
A. Boymelgreen, G. Yossifon, T. Miloh, Langmuir 2016, 32, 9540.
A. M. Boymelgreen, T. Balli, T. Miloh, G. Yossifon, Nat. Commun. 2018, 9, 760.
R. Pethig, J. Electrochem. Soc. 2017, 164, B3049.
S. Sundararajan, P. E. Lammert, A. W. Zudans, V. H. Crespi, A. Sen, Nano Lett. 2008, 8, 1271.
J. Orozco, S. Campuzano, D. Kagan, M. Zhou, W. Gao, J. Wang, Anal. Chem. 2011, 83, 7962.
G. Bai, Y. Li, H. K. Chu, K. Wang, Q. Tan, J. Xiong, D. Sun, Biomed. Eng. Online 2017, 16, 41.
I. Guido, M. S. Jaeger, C. Duschl, Eur. Biophys. J. 2011, 40, 281.
V. C. Shukla, T. R. Kuang, A. Senthilvelan, N. Higuita-Castro, S. Duarte-Sanmiguel, S. N. Ghadiali, D. Gallego-Perez, Trends Biotechnol. 2018, 36, 549.
J. Zemła, J. Danilkiewicz, B. Orzechowska, J. Pabijan, S. Seweryn, M. Lekka, Semin. Cell Dev. Biol. 2018, 73, 115.
S. L. Leung, Y. Lu, D. Bluestein, M. J. Slepian, Ann. Biomed. Eng. 2016, 44, 903.
S. Gangwal, O. J. Cayre, M. Z. Bazant, O. D. Velev, Phys. Rev. Lett. 2008, 100, 058302.
T. M. Squires, M. Z. Bazant, J. Fluid Mech. 2006, 560, 65.
M. Zehavi, A. Boymelgreen, G. Yossifon, Phys. Rev. Appl. 2016, 5, 044013.
A. Fu, S. Ma, N. Wei, B. X. X. Tan, E. Y. Tan, K. Q. Luo, Oncotarget 2016, 7, 50239.
M. Medina-Sánchez, H. Xu, O. G. Schmidt, Ther. Delivery 2018, 9, 303.
S. V. Puttaswamy, S. Sivashankar, R.-J. Chen, C.-K. Chin, H.-Y. Chang, C. H. Liu, Biotechnol. J. 2010, 5, 1005.
I. Samudio, M. Konopleva, N. Hail, Y. X. Shi, T. McQueen, T. Hsu, R. Evans, T. Honda, G. W. Gribble, M. Sporn, H. F. Gilbert, S. Safe, M. Andreeff, J. Biol. Chem. 2005, 280, 36273.
A. Pol, R. Luetterforst, M. Lindsay, S. Heino, E. Ikonen, R. G. Parton, J. Cell Biol. 2001, 152, 1057.
B. S. Cummings, R. G. Schnellmann, Curr. Protoc. Pharmacol. 2004, 25, 12.8.1.
K. N. Dahl, A. J. Engler, J. D. Pajerowski, D. E. Discher, Biophys. J. 2005, 89, 2855.
J. D. Pajerowski, K. N. Dahl, F. L. Zhong, P. J. Sammak, D. E. Discher, Proc. Natl. Acad. Sci. U. S. A. 2007, 104, 15619.
S. R. Krishnaswami, R. V. Grindberg, M. Novotny, P. Venepally, B. Lacar, K. Bhutani, S. B. Linker, S. Pham, J. A. Erwin, J. A. Miller, R. Hodge, J. K. McCarthy, M. Kelder, J. McCorrison, B. D. Aevermann, F. D. Fuertes, R. H. Scheuermann, J. Lee, E. S. Lein, N. Schork, M. J. McConnell, F. H. Gage, R. S. Lasken, Nat. Protoc. 2016, 11, 499.
L. Aring, S. Steinbach, K. Marcus, C. May, Methods Mol. Biol. 2018, 1723, 247.
R. V. Grindberg, J. L. Yee-Greenbaum, M. J. McConnell, M. Novotny, A. L. O'Shaughnessy, G. M. Lambert, M. J. Araúzo-Bravo, J. Lee, M. Fishman, G. E. Robbins, X. Lin, P. Venepally, J. H. Badger, D. W. Galbraith, F. H. Gage, R. S. Lasken, Proc. Natl. Acad. Sci. U. S. A. 2013, 110, 19802.
M. Gómez-Serrano, E. Camafeita, M. Loureiro, B. Peral, Oxid. Med. Cell. Longevity 2018, 2018, 1435934.
A. Jourdain, J. C. Martinou, BMC Biol. 2010, 8, 99.
S. B. Moparthi, T. Wollert, J. Cell Sci. 2019, 132, jcs223792.
C.-Y. Wu, K. T. Roybal, E. M. Puchner, J. Onuffer, W. A. Lim, Science 2015, 350, aab4077.
C. H. Lin, Y. L. Chen, H. R. Jiang, RSC Adv. 2017, 7, 46118.
S. Ma, A. Fu, S. Lim, G. G. Y. Chiew, K. Q. Luo, Free Radicals Biol. Med. 2018, 129, 46.

Auteurs

Yue Wu (Y)

Faculty of Mechanical Engineering, Micro- and Nano-Fluidics Laboratory, Technion-Israel Institute of Technology, Haifa, 32000, Israel.

Afu Fu (A)

Technion Integrated Cancer Center, The Rappaport Faculty of Medicine and Research Institute, Technion-Israel Institute of Technology, Haifa, 3525433, Israel.

Gilad Yossifon (G)

Faculty of Mechanical Engineering, Micro- and Nano-Fluidics Laboratory, Technion-Israel Institute of Technology, Haifa, 32000, Israel.

Articles similaires

Detailing organelle division and segregation in Plasmodium falciparum.

Julie M J Verhoef, Cas Boshoven, Felix Evers et al.
1.00
Plasmodium falciparum Mitochondria Apicoplasts Humans Animals
Animals Growth Plate Isocitrate Dehydrogenase Mice Single-Cell Analysis
Humans Female Limb Deformities, Congenital Pregnancy DNA Copy Number Variations
Triple Negative Breast Neoplasms Tumor Microenvironment Humans Prognosis Female

Classifications MeSH