Literature DB >> 19779243

Comparative efficiencies of photothermal destruction of malignant cells using antibody-coated silica@Au nanoshells, hollow Au/Ag nanospheres and Au nanorods.

Fong-Yu Cheng1, Chen-Tai Chen, Chen-Sheng Yeh.   

Abstract

Three Au-based nanomaterials (silica@Au nanoshells, hollow Au/Ag nanospheres and Au nanorods) were evaluated for their comparative photothermal efficiencies at killing three types of malignant cells (A549 lung cancer cells, HeLa cervix cancer cells and TCC bladder cancer cells) using a CW NIR laser. Photodestructive efficiency was evaluated as a function of the number of nanoparticles required to destroy the cancer cells under 808 nm laser wavelength at fixed laser power. Of the three nanomaterials, silica@Au nanoshells needed the minimum number of particles to produce effective photodestruction, whereas Au nanorods needed the largest number of particles. Together with the calculated photothermal conversion efficiency, the photothermal efficiency rankings are silica@Au nanoshells > hollow Au/Ag nanospheres > Au nanorods. Additionally, we found that HeLa cells seem to present better heat tolerance than the other two cancer cell lines.

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Year:  2009        PMID: 19779243     DOI: 10.1088/0957-4484/20/42/425104

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.874


  25 in total

1.  Image-guided photo-therapeutic nanoporphyrin synergized HSP90 inhibitor in patient-derived xenograft bladder cancer model.

Authors:  Qilai Long; Tzu-Yin Lin; Yee Huang; Xiaocen Li; Ai-Hong Ma; Hongyong Zhang; Randy Carney; Susan Airhart; Kit S Lam; Ralph W deVere White; Chong-Xian Pan; Yuanpei Li
Journal:  Nanomedicine       Date:  2018-01-06       Impact factor: 5.307

Review 2.  Hyperthermia using nanoparticles--Promises and pitfalls.

Authors:  Punit Kaur; Maureen L Aliru; Awalpreet S Chadha; Alexzander Asea; Sunil Krishnan
Journal:  Int J Hyperthermia       Date:  2016-01-12       Impact factor: 3.914

3.  Evaluation of uptake and distribution of gold nanoparticles in solid tumors.

Authors:  Christopher G England; André M Gobin; Hermann B Frieboes
Journal:  Eur Phys J Plus       Date:  2015-11-19       Impact factor: 3.911

Review 4.  Nanotechnology in bladder cancer: current state of development and clinical practice.

Authors:  Ben Tomlinson; Tzu-yin Lin; Marc Dall'Era; Chong-Xian Pan
Journal:  Nanomedicine (Lond)       Date:  2015       Impact factor: 5.307

5.  Nanoparticle-mediated hyperthermia in cancer therapy.

Authors:  Dev Kumar Chatterjee; Parmeswaran Diagaradjane; Sunil Krishnan
Journal:  Ther Deliv       Date:  2011-08

6.  Nanoparticle-mediated photothermal therapy: a comparative study of heating for different particle types.

Authors:  Varun P Pattani; James W Tunnell
Journal:  Lasers Surg Med       Date:  2012-08-29       Impact factor: 4.025

7.  Nanoshell-mediated targeted photothermal therapy of HER2 human breast cancer cells using pulsed and continuous wave lasers: an in vitro study.

Authors:  Mohammad E Khosroshahi; Zahra Hassannejad; Masoumeh Firouzi; Ahmad R Arshi
Journal:  Lasers Med Sci       Date:  2015-07-03       Impact factor: 3.161

Review 8.  Nanoparticle-mediated thermal therapy: evolving strategies for prostate cancer therapy.

Authors:  Sunil Krishnan; Parmeswaran Diagaradjane; Sang Hyun Cho
Journal:  Int J Hyperthermia       Date:  2010-09-21       Impact factor: 3.914

Review 9.  Inorganic nanoparticles in cancer therapy.

Authors:  Sanjib Bhattacharyya; Rachel A Kudgus; Resham Bhattacharya; Priyabrata Mukherjee
Journal:  Pharm Res       Date:  2010-11-23       Impact factor: 4.200

Review 10.  The Combination of Laser Therapy and Metal Nanoparticles in Cancer Treatment Originated From Epithelial Tissues: A Literature Review.

Authors:  Reza Fekrazad; Nafiseh Naghdi; Hanieh Nokhbatolfoghahaei; Hossein Bagheri
Journal:  J Lasers Med Sci       Date:  2016-03-27
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