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Terahertz dielectric spectroscopy of human brain gliomas and intact tissues ex vivo: double-Debye and double-overdamped-oscillator models of dielectric response.
Gavdush, A A; Chernomyrdin, N V; Komandin, G A; Dolganova, I N; Nikitin, P V; Musina, G R; Katyba, G M; Kucheryavenko, A S; Reshetov, I V; Potapov, A A; Tuchin, V V; Zaytsev, K I.
Afiliación
  • Gavdush AA; Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia.
  • Chernomyrdin NV; arsenii.a.gavdush@gmail.com.
  • Komandin GA; Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia.
  • Dolganova IN; Institute for Regenerative Medicine, Sechenov First Moscow State Medical University (Sechenov University), Moscow, Russia.
  • Nikitin PV; Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia.
  • Musina GR; Institute for Regenerative Medicine, Sechenov First Moscow State Medical University (Sechenov University), Moscow, Russia.
  • Katyba GM; Institute of Solid State Physics of the Russian Academy of Sciences, Chernogolovka, Russia.
  • Kucheryavenko AS; P.K. Anokhin Institute of Normal Physiology, Moscow, Russia.
  • Reshetov IV; Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia.
  • Potapov AA; Institute of Solid State Physics of the Russian Academy of Sciences, Chernogolovka, Russia.
  • Tuchin VV; Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia.
  • Zaytsev KI; Institute of Solid State Physics of the Russian Academy of Sciences, Chernogolovka, Russia.
Biomed Opt Express ; 12(1): 69-83, 2021 Jan 01.
Article en En | MEDLINE | ID: mdl-33659071
Terahertz (THz) technology offers novel opportunities in the intraoperative neurodiagnosis. Recently, the significant progress was achieved in the study of brain gliomas and intact tissues, highlighting a potential for THz technology in the intraoperative delineation of tumor margins. However, a lack of physical models describing the THz dielectric permittivity of healthy and pathological brain tissues restrains the further progress in this field. In the present work, the ex vivo THz dielectric response of human brain tissues was analyzed using relaxation models of complex dielectric permittivity. Dielectric response of tissues was parametrized by a pair of the Debye relaxators and a pair of the overdamped-oscillators - namely, the double-Debye (DD) and double-overdamped-oscillator (DO) models. Both models accurately reproduce the experimental curves for the intact tissues and the WHO Grades I-IV gliomas. While the DD model is more common for THz biophotonics, the DO model is more physically rigorous, since it satisfies the sum rule. In this way, the DO model and the sum rule were, then, applied to estimate the content of water in intact tissues and gliomas ex vivo. The observed results agreed well with the earlier-reported data, justifying water as a main endogenous label of brain tumors in the THz range. The developed models can be used to describe completely the THz-wave - human brain tissues interactions in the frameworks of classical electrodynamics, being quite important for further research and developments in THz neurodiagnosis of tumors.

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Biomed Opt Express Año: 2021 Tipo del documento: Article País de afiliación: Rusia

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Biomed Opt Express Año: 2021 Tipo del documento: Article País de afiliación: Rusia