DocumentCode :
1762419
Title :
Simulation of Tumor Targeting Enhancement by Amplifying of Targeted Nano-Biosensors Radiation Intensity
Author :
SalmanOgli, A. ; Rostami, Ahmad
Author_Institution :
Photonics & Nanocrystal Res. Lab., Univ. of Tabriz, Tabriz, Iran
Volume :
60
Issue :
5
fYear :
2013
fDate :
41395
Firstpage :
1328
Lastpage :
1335
Abstract :
The main goal of this paper is to enhance the produced intensity radiation of nanoparticles that are functionalized to act as nano-biosensors in the biological applications, such as small tumor targeting and imaging. For example, in the optical imaging of the breast cancer, the numbers of photons that reach to the detector are very small because of the depth of the target and the loss of incident light due to absorption and scattering of the live cells and so on. Hence, the detection of small tumors is very difficult. In this paper, for the first time, the intensity radiation, which is produced by functionalized agents, is amplified so that the number of photons reaching to the detector will astonishingly increase. As an important result of this study, it is shown that by signaling among agents, maximum numbers of agents reach toward tumor site, and therefore, their produced intensities surprisingly increase (>tenfold). The signaling among agents is performed by using the particle swarm optimization algorithm. It is well known that by the use of mentioned approach, the small tumors will be detectable. It is notable that the nontoxic silicon or gold nanoparticles have been used as core of the nano-biosensors and their functionalization have been done by related antibodies and suitable proteins.
Keywords :
biomedical optical imaging; biosensors; cancer; gold; nanomedicine; nanoparticles; nanosensors; silicon; tumours; antibodies; breast cancer; functionalized agents; gold nanoparticles; incident light; intensity radiation; nontoxic silicon; optical imaging; particle swarm optimization algorithm; photon numbers; small tumor detection; targeted nano-biosensors radiation intensity; tumor targeting enhancement simulation; Absorption; Electromagnetic fields; Gold; NIST; Scattering; Silicon; Tumors; Nano-biosensor (NBS); nanoparticles (NPs); particle swarm optimization (PSO); quantum dot (QD); Algorithms; Biosensing Techniques; Computer Simulation; Gold; Models, Theoretical; Nanoparticles; Particle Size; Quantum Dots; Radiation; Silicon;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2012.2234124
Filename :
6387585
Link To Document :
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