Literature DB >> 19321925

Dielectric spectroscopy of normal and malignant human lung cells at ultra-high frequencies.

S Egot-Lemaire1, J Pijanka1, J Sulé-Suso1,2, S Semenov1.   

Abstract

Microwave techniques for biomedical applications aimed at cancer treatment or diagnosis, either by imaging or spectroscopy, are promising. Their use relies on knowledge of the dielectric properties of tissues, especially on a detectable difference between malignant and normal tissues. As most studies investigated the dielectric properties of ex vivo tissues, there is a need for better biophysical understanding of human tissues in their living state. As an essential component of tissues, cells represent valuable objects of analysis. The approach developed in this study is an investigation at cell level. Its aim was to compare human lung normal and malignant cells by dielectric spectroscopy in the beginning of the microwave range, where such information is of substantial biomedical importance. These cells were embedded in small and low-conductivity agarose hydrogels and laid on an open-ended coaxial probe connected to a vector network analyser operated from 200 MHz to 2 GHz. The comparison between normal and malignant cells was drawn using the variation of measured dielectric properties and fitting the measurements using the Maxwell-Wagner equation. Both methods revealed slight differences between the two cell lines, which were statistically significant regarding conductivities of composite gels and cells.

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Year:  2009        PMID: 19321925     DOI: 10.1088/0031-9155/54/8/006

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  2 in total

1.  Utilization of dielectric properties for assessment of liver ischemia-reperfusion injury in vivo and during machine perfusion.

Authors:  Jie Hou; Olav Magnus Ivar Liavåg; Ida Høy Færden; Ørjan Grøttem Martinsen; Tor Inge Tønnessen; Pål-Dag Line; Morten Hagness; Jan Olav Høgetveit; Søren Erik Pischke; Runar Strand-Amundsen
Journal:  Sci Rep       Date:  2022-07-01       Impact factor: 4.996

2.  Non-thermal atmospheric plasma treatment of onychomycosis in an in vitro human nail model.

Authors:  Jeffry M Bulson; Dionysios Liveris; Irina Derkatch; Gary Friedman; Jan Geliebter; Sin Park; Sarnath Singh; Marc Zemel; Raj K Tiwari
Journal:  Mycoses       Date:  2019-12-15       Impact factor: 4.377

  2 in total

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