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Terahertz dielectric spectroscopy and solid immersion microscopy of ex vivo glioma model 101.8: brain tissue heterogeneity.
Kucheryavenko, A S; Chernomyrdin, N V; Gavdush, A A; Alekseeva, A I; Nikitin, P V; Dolganova, I N; Karalkin, P A; Khalansky, A S; Spektor, I E; Skorobogatiy, M; Tuchin, V V; Zaytsev, K I.
Affiliation
  • Kucheryavenko AS; Prokhorov General Physics Institute of the Russian Academy of Sciences, Russia.
  • Chernomyrdin NV; Institute of Solid State Physics of the Russian Academy of Sciences, Russia.
  • Gavdush AA; Prokhorov General Physics Institute of the Russian Academy of Sciences, Russia.
  • Alekseeva AI; Bauman Moscow State Technical University, Russia.
  • Nikitin PV; chernik-a@yandex.ru.
  • Dolganova IN; Prokhorov General Physics Institute of the Russian Academy of Sciences, Russia.
  • Karalkin PA; Bauman Moscow State Technical University, Russia.
  • Khalansky AS; Research Institute of Human Morphology, Russia.
  • Spektor IE; Prokhorov General Physics Institute of the Russian Academy of Sciences, Russia.
  • Skorobogatiy M; Institute for Regenerative Medicine, Sechenov University, Russia.
  • Tuchin VV; Burdenko Neurosurgery Institute, Russia.
  • Zaytsev KI; Institute of Solid State Physics of the Russian Academy of Sciences, Russia.
Biomed Opt Express ; 12(8): 5272-5289, 2021 Aug 01.
Article in En | MEDLINE | ID: mdl-34513256
ABSTRACT
Terahertz (THz) technology holds strong potential for the intraoperative label-free diagnosis of brain gliomas, aimed at ensuring their gross-total resection. Nevertheless, it is still far from clinical applications due to the limited knowledge about the THz-wave-brain tissue interactions. In this work, rat glioma model 101.8 was studied ex vivo using both the THz pulsed spectroscopy and the 0.15λ-resolution THz solid immersion microscopy (λ is a free-space wavelength). The considered homograft model mimics glioblastoma, possesses heterogeneous character, unclear margins, and microvascularity. Using the THz spectroscopy, effective THz optical properties of brain tissues were studied, as averaged within the diffraction-limited beam spot. Thus measured THz optical properties revealed a persistent difference between intact tissues and a tumor, along with fluctuations of the tissue response over the rat brain. The observed THz microscopic images showed heterogeneous character of brain tissues at the scale posed by the THz wavelengths, which is due to the distinct response of white and gray matters, the presence of different neurovascular structures, as well as due to the necrotic debris and hemorrhage in a tumor. Such heterogeneities might significantly complicate delineation of tumor margins during the intraoperative THz neurodiagnosis. The presented results for the first time pose the problem of studying the inhomogeneity of brain tissues that causes scattering of THz waves, as well as the urgent need to use the radiation transfer theory for describing the THz-wave - tissue interactions.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Biomed Opt Express Year: 2021 Type: Article Affiliation country: RUSSIA

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Biomed Opt Express Year: 2021 Type: Article Affiliation country: RUSSIA