Literature DB >> 20387828

Spatiotemporal temperature distribution and cancer cell death in response to extracellular hyperthermia induced by gold nanorods.

Huang-Chiao Huang1, Kaushal Rege, Jeffrey J Heys.   

Abstract

Plasmonic nanoparticles have shown promise in hyperthermic cancer therapy, both in vitro and in vivo. Previous reports have described hyperthermic ablation using targeted and nontargeted nanoparticles internalized by cancer cells, but most reports do not describe a theoretical analysis for determining optimal parameters. The focus of the current research was first to evaluate the spatiotemporal temperature distribution and cell death induced by extracellular hyperthermia in which gold nanorods (GNRs) were maintained in the dispersion outside human prostate cancer cells. The nanorod dispersion was irradiated with near-infrared (NIR) laser, and the spatiotemporal distribution of temperature was determined experimentally. This information was employed to develop and validate theoretical models of spatiotemporal temperature profiles for gold nanorod dispersions undergoing laser irradiation and the impact of the resulting heat generation on the viability of human prostate cancer cells. A cell injury/death model was then coupled to the heat transfer model to predict spatial and temporal variations in cell death and injury. The model predictions agreed well with experimental measurements of both temperature and cell death profiles. Finally, the model was extended to examine the impact of selective binding of gold nanorods to cancer cells compared to nonmalignant cells, coupled with a small change in cell injury activation energy. The impact of these relatively minor changes results in a dramatic change in the overall cell death rate. Taken together, extracellular hyperthermia using gold nanorods is a promising strategy, and tailoring the cellular binding efficacy of nanorods can result in varying therapeutic efficacies using this approach.

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Year:  2010        PMID: 20387828      PMCID: PMC2903622          DOI: 10.1021/nn901884d

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  56 in total

1.  Gold nanoparticle-mediated transfection of mammalian cells.

Authors:  Kulmeet K Sandhu; Catherine M McIntosh; Joseph M Simard; Sallie W Smith; Vincent M Rotello
Journal:  Bioconjug Chem       Date:  2002 Jan-Feb       Impact factor: 4.774

2.  Is intracellular hyperthermia superior to extracellular hyperthermia in the thermal sense?

Authors:  Y Rabin
Journal:  Int J Hyperthermia       Date:  2002 May-Jun       Impact factor: 3.914

3.  Dependence of the enhanced optical scattering efficiency relative to that of absorption for gold metal nanorods on aspect ratio, size, end-cap shape, and medium refractive index.

Authors:  Kyeong-Seok Lee; Mostafa A El-Sayed
Journal:  J Phys Chem B       Date:  2005-11-03       Impact factor: 2.991

4.  Studies of thermal injury; the predictability and the significance of thermally induced rate processes leading to irreversible epidermal injury.

Authors:  F C HENRIQUES
Journal:  Arch Pathol (Chic)       Date:  1947-05

5.  Lipid-gold-nanoparticle hybrid-based gene delivery.

Authors:  Won-Kyu Rhim; Jin-Soo Kim; Jwa-Min Nam
Journal:  Small       Date:  2008-10       Impact factor: 13.281

6.  Evaluation of temperature increase with different amounts of magnetite in liver tissue samples.

Authors:  I Hilger; W Andrä; R Bähring; A Daum; R Hergt; W A Kaiser
Journal:  Invest Radiol       Date:  1997-11       Impact factor: 6.016

7.  Cancer cell targeting using multiple aptamers conjugated on nanorods.

Authors:  Yu-Fen Huang; Huan-Tsung Chang; Weihong Tan
Journal:  Anal Chem       Date:  2008-01-01       Impact factor: 6.986

8.  Small multifunctional nanoclusters (nanoroses) for targeted cellular imaging and therapy.

Authors:  Li Leo Ma; Marc D Feldman; Jasmine M Tam; Amit S Paranjape; Kiran K Cheruku; Timothy A Larson; Justina O Tam; Davis R Ingram; Vidia Paramita; Joseph W Villard; James T Jenkins; Tianyi Wang; Geoffrey D Clarke; Reto Asmis; Konstantin Sokolov; Bysani Chandrasekar; Thomas E Milner; Keith P Johnston
Journal:  ACS Nano       Date:  2009-09-22       Impact factor: 15.881

9.  Optically responsive gold nanorod-polypeptide assemblies.

Authors:  Huang-Chiao Huang; Piyush Koria; Sarah M Parker; Luke Selby; Zaki Megeed; Kaushal Rege
Journal:  Langmuir       Date:  2008-12-16       Impact factor: 3.882

10.  Dendrimer-entrapped gold nanoparticles as a platform for cancer-cell targeting and imaging.

Authors:  Xiangyang Shi; Suhe Wang; Sasha Meshinchi; Mary E Van Antwerp; Xiangdong Bi; Inhan Lee; James R Baker
Journal:  Small       Date:  2007-07       Impact factor: 13.281

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  36 in total

1.  Laser nanothermolysis of human leukemia cells using functionalized plasmonic nanoparticles.

Authors:  Anton V Liopo; André Conjusteau; Marina Konopleva; Michael Andreeff; Alexander A Oraevsky
Journal:  Nano Biomed Eng       Date:  2012

2.  Influence of hyperthermia on efficacy and uptake of carbon nanohorn-cisplatin conjugates.

Authors:  Matthew R DeWitt; Allison M Pekkanen; John Robertson; Christopher G Rylander; Marissa Nichole Rylander
Journal:  J Biomech Eng       Date:  2014-02       Impact factor: 2.097

Review 3.  Phase-shift, stimuli-responsive drug carriers for targeted delivery.

Authors:  Brian E O'Neill; Natalya Rapoport
Journal:  Ther Deliv       Date:  2011-09

Review 4.  Advances in polymeric and inorganic vectors for nonviral nucleic acid delivery.

Authors:  Joel C Sunshine; Corey J Bishop; Jordan J Green
Journal:  Ther Deliv       Date:  2011-04

Review 5.  In vitro outlook of gold nanoparticles in photo-thermal therapy: a literature review.

Authors:  Hasan Norouzi; Karim Khoshgard; Fatemeh Akbarzadeh
Journal:  Lasers Med Sci       Date:  2018-02-28       Impact factor: 3.161

6.  Rainbow Plasmonic Nanobubbles: Synergistic Activation of Gold Nanoparticle Clusters.

Authors:  Ekaterina Y Lukianova-Hleb; Alexander O Oginsky; Derek L Shenefelt; Rebekah A Drezek; Jason H Hafner; Mary C Farach-Carson; Dmitri O Lapotko
Journal:  J Nanomed Nanotechnol       Date:  2011-01-01

7.  Elimination of epithelial-like and mesenchymal-like breast cancer stem cells to inhibit metastasis following nanoparticle-mediated photothermal therapy.

Authors:  Hayley J Paholak; Nicholas O Stevers; Hongwei Chen; Joseph P Burnett; Miao He; Hasan Korkaya; Sean P McDermott; Yadwinder Deol; Shawn G Clouthier; Tahra Luther; Qiao Li; Max S Wicha; Duxin Sun
Journal:  Biomaterials       Date:  2016-06-23       Impact factor: 12.479

8.  Chemically exfoliated MoS2 as near-infrared photothermal agents.

Authors:  Stanley S Chou; Bryan Kaehr; Jaemyung Kim; Brian M Foley; Mrinmoy De; Patrick E Hopkins; Jiaxing Huang; C Jeffrey Brinker; Vinayak P Dravid
Journal:  Angew Chem Int Ed Engl       Date:  2013-03-07       Impact factor: 15.336

9.  Polypeptide-Based Gold Nanoshells for Photothermal Therapy.

Authors:  Kristine M Mayle; Kathryn R Dern; Vincent K Wong; Shijun Sung; Ke Ding; April R Rodriguez; Zachary Taylor; Z Hong Zhou; Warren S Grundfest; Timothy J Deming; Daniel T Kamei
Journal:  SLAS Technol       Date:  2016-07-10       Impact factor: 3.047

Review 10.  Computational nanomedicine: modeling of nanoparticle-mediated hyperthermal cancer therapy.

Authors:  Chanchala D Kaddi; John H Phan; May D Wang
Journal:  Nanomedicine (Lond)       Date:  2013-08       Impact factor: 5.307

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