• DocumentCode
    1050374
  • Title

    Towards functional noninvasive imaging of excitable tissues inside the human body using focused microwave radiometry

  • Author

    Karanasiou, Irene S. ; Uzunoglu, Nikolaos K. ; Papageorgiou, Charalabos C.

  • Author_Institution
    Sch. of Electr. & Comput. Eng., Nat. Tech. Univ. of Athens, Greece
  • Volume
    52
  • Issue
    8
  • fYear
    2004
  • Firstpage
    1898
  • Lastpage
    1908
  • Abstract
    Focused microwave radiometry, aiming mainly in clinical applications at measuring temperature distributions inside the human body, may provide the capability of detecting electrical conductivity variations at microwave frequencies of excitable cell clusters, such as in the case of brain tissues. A novel microwave radiometric system, including an ellipsoidal conductive wall cavity, which provides the required beamforming and focusing, is developed for the imaging of biological tissues via contactless measurements. The measurement is realized by placing the human head in the region of the first focus and collecting the radiation converged at the second by an almost isotropic dipole antenna connected to a sensitive radiometer operating at 3.5 GHz. In order to compute the focusing properties of the ellipsoidal reflector, an accurate electromagnetic numerical analysis is developed using a semianalytical method. The experimental part of this study focuses on measurements of activation of the primary somatosensory (SI) brain area, elicited during the application of the cold pressor test, a standard experimental condition inducing pain. Analysis of the measured data from 16 healthy subjects suggests that this methodology may be able to pick up activation of the SI during the pain conditions as compared with the nonpainful control conditions. Future research is needed in order to elucidate all the interacting factors involved in the interpretation of the presented results. Finally, potential limitations to the generalization of our results and strategies to improve the system´s response are discussed.
  • Keywords
    bioelectric phenomena; biological tissues; biomedical equipment; biomedical imaging; biomedical measurement; brain; cellular biophysics; dipole antennas; microwave antennas; microwave imaging; microwave measurement; radiometry; somatosensory phenomena; 3.5 GHz; beamforming; biological tissues imaging; brain tissues; clinical applications; cold pressor test; electrical conductivity; electromagnetic numerical analysis; ellipsoidal conductive wall cavity; ellipsoidal reflector; excitable cell clusters; focused microwave radiometry; functional noninvasive imaging; human body; human head; isotropic dipole antenna; microwave frequencies; nonpainful control; primary somatosensory brain; temperature distributions; Antenna measurements; Conductivity measurement; Electromagnetic measurements; Focusing; Frequency measurement; Humans; Microwave imaging; Microwave measurements; Microwave radiometry; Pain; Activation of primary somatosensory; SI; cortex; ellipsoidal conductive wall cavity; focused microwave radiometry; imaging of conductivity variations in biological tissues;
  • fLanguage
    English
  • Journal_Title
    Microwave Theory and Techniques, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9480
  • Type

    jour

  • DOI
    10.1109/TMTT.2004.831999
  • Filename
    1318785