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1.
Biomed Opt Express ; 9(2): 771-779, 2018 Feb 01.
Artigo em Inglês | MEDLINE | ID: mdl-29552411

RESUMO

Cell manipulation is one of the most impactful applications for optical tweezers, and derived from this promise, we demonstrate a new optical tweezers system for the study of cell adhesion and organization. This method utilizes photonic-crystal-enhanced optical tweezers to manipulate cells with low laser intensities. By doing so, it enables effective cell patterning and culturing within the conditions necessary for successful differentiation and colony formation of human pluripotent stem cells. To this end, the biocompatibility of plasma-treated parylene-C for cell culturing was studied, and a thorough characterization of cellular interactive forces was performed using this system. Furthermore, this study also demonstrates construction of patterned cell arrays at arbitrary positions with micrometer-scale precision.

2.
Sci Rep ; 6: 19924, 2016 Jan 27.
Artigo em Inglês | MEDLINE | ID: mdl-26814808

RESUMO

We propose and demonstrate a new optical trapping method for single cells that utilizes modulated light fields to trap a wide array of cell types, including mammalian, yeast, and Escherichia coli cells, on the surface of a two-dimensional photonic crystal. This method is capable of reducing the required light intensity, and thus minimizing the photothermal damage to living cells, thereby extending cell viability in optical trapping and cell manipulation applications. To this end, a thorough characterization of cell viability in optical trapping environments was performed. This study also demonstrates the technique using spatial light modulation in patterned manipulation of live cell arrays over a broad area.


Assuntos
Pinças Ópticas , Óptica e Fotônica/métodos , Fótons , Animais , Bactérias , Sobrevivência Celular , Camundongos , Células NIH 3T3 , Óptica e Fotônica/instrumentação , Leveduras
3.
Biomed Opt Express ; 6(1): 211-24, 2015 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-25657887

RESUMO

This paper describes an endoscopic-inspired imaging system employing a micro-electromechanical system (MEMS) micromirror scanner to achieve beam scanning for optical coherence tomography (OCT) imaging. Miniaturization of a scanning mirror using MEMS technology can allow a fully functional imaging probe to be contained in a package sufficiently small for utilization in a working channel of a standard gastroesophageal endoscope. This work employs advanced image processing techniques to enhance the images acquired using the MEMS scanner to correct non-idealities in mirror performance. The experimental results demonstrate the effectiveness of the proposed technique.

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