Determination of the minimum temperature required for selective photothermal destruction of cancer cells with the use of immunotargeted gold nanoparticles

被引:326
作者
Huang, XH
Jain, PK
El-Sayed, IH
El-Sayed, MA [1 ]
机构
[1] Georgia Inst Technol, Sch Chem & Biochem, Laser Dynam Lab, Atlanta, GA 30332 USA
[2] Univ Calif San Francisco, Ctr Comprehens Canc, Dept Otolaryngol Head & Neck Surg, San Francisco, CA 94143 USA
关键词
D O I
10.1562/2005-12-14-RA-754
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Laser photothermal therapy of cancer with the use of gold nanoparticles immunotargeted to molecular markers on the cell surface has been shown to be an effective modality to selectively kill cancer cells at much lower laser powers than those needed for healthy cells. To elucidate the minimum light dosimetry required to induce cell death, photothermal destruction of two cancerous cell lines and a noncancerous cell line treated with antiepidermal growth factor receptor (anti-EGFR) anti body-conjugated gold nanoparticles is studied, and a numerical heat transport model is used to estimate the local temperature rise within the cells as a result of the laser heating of the gold nanoparticles. It is found that cell samples with higher nanoparticle loading require a lower incident laser power to achieve a certain temperature rise. Numerically estimated temperatures of 70-80 degrees C achieved by heating the gold particles agree well with the measured threshold temperature for destruction of the cell lines by oven heating and those measured in an earlier nanoshell method. Specific binding of anti-EGFR antibody to cancerous cells overexpressing EGFR selectively increases the gold nanoparticle loading within cancerous cells, thus allowing the cancerous cells to be destroyed at lower laser power thresholds than needed for the noncancerous cells. In addition, photothermal therapy using gold nanoparticles requires lower laser power thresholds than therapies using conventional dyes due to the much higher absorption coefficient of the gold nanoparticles.
引用
收藏
页码:412 / 417
页数:6
相关论文
共 38 条
[31]  
Seki T, 1999, CANCER, V85, P1694, DOI 10.1002/(SICI)1097-0142(19990415)85:8<1694::AID-CNCR8>3.0.CO
[32]  
2-3
[33]   A mathematical model for predicting the temperature distribution in laser-induced hyperthermia. Experimental evaluation and applications [J].
Sturesson, C ;
AnderssonEngels, S .
PHYSICS IN MEDICINE AND BIOLOGY, 1995, 40 (12) :2037-2052
[34]  
Urbanska K, 2002, ACTA BIOCHIM POL, V49, P387
[35]   Interventional MR:: interstitial therapy [J].
Vogl, TJ ;
Mack, MG ;
Müller, PK ;
Straub, R ;
Engelmann, K ;
Eichler, K .
EUROPEAN RADIOLOGY, 1999, 9 (08) :1479-1487
[36]   THE THERMAL RESPONSE OF LASER IRRADIATED TISSUE [J].
WELCH, AJ .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1984, 20 (12) :1471-1481
[37]   First results of triple-modality treatment combining radiotherapy, chemotherapy, and hyperthermia for the treatment of patients with stage IIB, III, and IVA cervical carcinoma [J].
Westermann, AM ;
Jones, EL ;
Schem, BC ;
van der Steen-Banasik, EM ;
Koper, P ;
Mella, O ;
Uitterhoeve, ALJ ;
de Wit, R ;
van der Velden, J ;
Burger, C ;
van der Wilt, CL ;
Dahl, O ;
Prosnitz, LR ;
van der Zee, J .
CANCER, 2005, 104 (04) :763-770
[38]   In vitro uptake of polystyrene microspheres: effect of particle size, cell line and cell density [J].
Zauner, W ;
Farrow, NA ;
Haines, AMR .
JOURNAL OF CONTROLLED RELEASE, 2001, 71 (01) :39-51