DocumentCode :
1195474
Title :
Nanoscintillators for Microscopic Diagnostics of Biological and Medical Objects and Medical Therapy
Author :
Klassen, Nikolay V. ; Kedrov, Victor V. ; Ossipyan, Yuri A. ; Shmurak, Semen Z. ; Shmyt, Ivan M. ; Krivko, Oksana A. ; Kudrenko, Elena A. ; Kurlov, Vladimir N. ; Kobelev, Nikolay P. ; Kiselev, Aleksander P. ; Bozhko, Sergei I.
Author_Institution :
Inst. of Solid State Phys., Russian Acad. of Sci., Chernogolovka
Volume :
8
Issue :
1
fYear :
2009
fDate :
3/1/2009 12:00:00 AM
Firstpage :
20
Lastpage :
32
Abstract :
The main focus of this paper is the description of qualitatively new facilities for diagnostics of biological and medical objects and medical therapy obtained by applications of nanocrystalline scintillators. These facilities are based on abilities of nanoscintillators to selective conjugation with various biomolecular objects and noticeable variations of their atomic structures, X-ray diffraction (XRD) patterns, and light-emission characteristics induced by modifications of conditions on their external surfaces. Experimental results presented in this paper provide development of detection in vivo just inside a living organism of various viruses, cancer cells, and other pathological macromolecules by means of scanning X-ray diffractometry of nanoparticles introduced into the body. These data are produced by selective adsorption of pathological bioobjects by these nanoparticles and subsequent modifications of their XRD patterns. Application of narrow collimated X-ray beams and new types of X-ray detector matrices providing microscopic spatial resolution due to usage of nanoscintillators enables determination of the regions where these pathologies are localized with high accuracy. The procedure of detection of pathological organelles by this method improves possibilities for effective destruction of these pathologies by low-dose X-ray irradiation of the places of their localization. High effectiveness of this X-ray destruction is provided by concentrated absorption of X-ray quanta by the nanoscintillators and direct transfer of the absorbed energy to the pathological objects that are attached to the absorbing particles. Constructions of 3-D radiation detector matrices providing necessary microscopic spatial and angular resolutions of X-ray imaging are described on the basis of nanoscintillators, fiber light guides, and microcapillary matrices.
Keywords :
X-ray diffraction; adsorption; cancer; cellular biophysics; microorganisms; molecular biophysics; nanobiotechnology; nanoparticles; patient diagnosis; scintillation; scintillation counters; 3-D radiation detector matrices; X-ray beams; X-ray detector matrices; adsorption; atomic structures; biological object; biomolecular objects; cancer cells; fiber light guides; light-emission characteristics; living organism; medical object; medical therapy; microcapillary matrices; microscopic diagnostics; nanocrystalline scintillators; nanoparticles; nanoscintillators; pathological macromolecules; scanning X-ray diffractometry; viruses; Differential recognition of pathological biomolecular objects in vitro and in vivo; X-ray express detection and destruction of pathological bioobjects; X-ray microscopic imaging; light-emission spectra and kinetics; modifications of X-ray diffraction (XRD); nanoscintillators; selective binding; Equipment Design; Gamma Cameras; Nanotechnology; Radiographic Image Enhancement; Radiotherapy, Conformal; Scintillation Counting;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2009.2016551
Filename :
4801970
Link To Document :
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