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1.
Biorheology ; 51(6): 381-97, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25759371

RESUMO

BACKGROUND: Cell manipulation and separation technologies have potential biological and medical applications, including advanced clinical protocols such as tissue engineering. OBJECTIVE: An aggregation model was developed for a human carcinoma (HeLa) cell suspension exposed to a uniform AC electric field, in order to explore the field-induced structure formation and kinetics of cell aggregates. METHODS: The momentum equations of cells under the action of the dipole-dipole interaction were solved theoretically and the total time required to form linear string-like cluster was derived. The results were compared with those of a numerical simulation. Experiments using HeLa cells were also performed for comparison. RESULTS: The total time required to form linear string-like clusters was derived from a simple theoretical model of the cell cluster kinetics. The growth rates of the average string length of cell aggregates showed good agreement with those of the numerical simulation. In the experiment, cells were found to form massive clusters on the bottom of a chamber. The results imply that the string-like cluster grows rapidly by longitudinal attraction when the electric field is first applied and that this process slows at later times and is replaced by lateral coagulation of short strings. CONCLUSIONS: The findings presented here are expected to enable design of methods for the organization of three-dimensional (3D) cellular structures without the use of micro-fabricated substrates, such as 3D biopolymer scaffolds, to manipulate cells into spatial arrangement.


Assuntos
Modelos Biológicos , Engenharia Tecidual , Alicerces Teciduais , Eletricidade , Células HeLa , Humanos
2.
Biorheology ; 50(5-6): 283-303, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-24398610

RESUMO

The AC electric field-driven manipulation of suspended polarizable particles has become a major technique in micro- and nano-devices. In the present study, suspensions of cultured HeLa cells in isotonic solution were used to explore the mechanisms underlying the suspension behaviors during exposure to a uniform AC electric field of strength E(rms)=1.67×10(4) V/m at frequency 1 kHz. Molecular dynamics (MD) simulations based on the Langevin equation of particle kinetics were performed to elucidate the corresponding problem. A theoretical model to compute the trajectories of individual cells under the action of electro-mechanical, viscous and gravitational forces in the suspending medium was newly developed. Numerical computations demonstrated that the suspended cells began to aggregate to form chainlike clusters along the direction of the uniform AC electric field at an earlier stage of the field application. Moreover, the predicted results were similar to the experimental results. These findings indicate that the chain-like cell clustering arises from the long-range dipole-dipole interaction of neighboring cells, but under the action of the gravitational force that likely hinders the growth of clusters in the vertical direction.


Assuntos
Separação Celular/métodos , Eletricidade , Agregação Celular , Separação Celular/instrumentação , Células HeLa , Humanos , Modelos Teóricos
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