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Nanoparticle Induced Cell Magneto-Rotation: Monitoring Morphology, Stress and Drug Sensitivity of a Suspended Single Cancer Cell

Overview of attention for article published in PLOS ONE, December 2011
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Title
Nanoparticle Induced Cell Magneto-Rotation: Monitoring Morphology, Stress and Drug Sensitivity of a Suspended Single Cancer Cell
Published in
PLOS ONE, December 2011
DOI 10.1371/journal.pone.0028475
Pubmed ID
Authors

Remy Elbez, Brandon H. McNaughton, Lalit Patel, Kenneth J. Pienta, Raoul Kopelman

Abstract

Single cell analysis has allowed critical discoveries in drug testing, immunobiology and stem cell research. In addition, a change from two to three dimensional growth conditions radically affects cell behavior. This already resulted in new observations on gene expression and communication networks and in better predictions of cell responses to their environment. However, it is still difficult to study the size and shape of single cells that are freely suspended, where morphological changes are highly significant. Described here is a new method for quantitative real time monitoring of cell size and morphology, on single live suspended cancer cells, unconfined in three dimensions. The precision is comparable to that of the best optical microscopes, but, in contrast, there is no need for confining the cell to the imaging plane. The here first introduced cell magnetorotation (CM) method is made possible by nanoparticle induced cell magnetization. By using a rotating magnetic field, the magnetically labeled cell is actively rotated, and the rotational period is measured in real-time. A change in morphology induces a change in the rotational period of the suspended cell (e.g. when the cell gets bigger it rotates slower). The ability to monitor, in real time, cell swelling or death, at the single cell level, is demonstrated. This method could thus be used for multiplexed real time single cell morphology analysis, with implications for drug testing, drug discovery, genomics and three-dimensional culturing.

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Geographical breakdown

Country Count As %
United States 3 6%
Italy 1 2%
Unknown 45 92%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 19 39%
Researcher 5 10%
Student > Master 5 10%
Student > Bachelor 3 6%
Student > Doctoral Student 3 6%
Other 5 10%
Unknown 9 18%
Readers by discipline Count As %
Engineering 10 20%
Agricultural and Biological Sciences 10 20%
Physics and Astronomy 6 12%
Medicine and Dentistry 4 8%
Biochemistry, Genetics and Molecular Biology 2 4%
Other 6 12%
Unknown 11 22%