Literature DB >> 19426306

Nanoparticles for cancer treatment: role of heat transfer.

C Thomas Avedisian1, Richard E Cavicchi, Paul L McEuen, Xinjian Zhou.   

Abstract

An overview is presented of an approach for treating cancer that uses nanoparticles to deliver heat to diseased areas after absorbing energy from a laser of the appropriate wavelength. The implications are discussed of the relationship of parameters necessary to raise the temperature to therapeutically beneficial levels. Tight focusing is required for a continuous-wave laser to sufficiently heat individual nanoparticles because of heat loss to the surrounding fluid during the period of exposure. The natural thermal confinement of pulse lasers minimizes this effect because of the finite thermal diffusion time, which restricts the absorbed energy to a region around the particle, that offers the potential for achieving high temperatures that can promote phase change on the surface of a nanoparticle or even melting of the particle. A discussion of a way to potentially measure temperature on the scale of an individual nanoparticle is included based on using a single-walled nanotube (SWNT) of carbon as a thermistor. The challenges of this undertaking are that SWNTs do not always follow Ohm's law, they may exhibit metallic or semiconductor behavior with an often unpredictable result in manufacturing, and no two SWNTs behave identically, which necessitates calibration for each SWNT. Some results are presented that show the electrical characteristics of SWNTs and their potential for exploitation in this application.

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Mesh:

Year:  2009        PMID: 19426306     DOI: 10.1111/j.1749-6632.2009.04090.x

Source DB:  PubMed          Journal:  Ann N Y Acad Sci        ISSN: 0077-8923            Impact factor:   5.691


  6 in total

1.  Development of iron-containing multiwalled carbon nanotubes for MR-guided laser-induced thermotherapy.

Authors:  Xuanfeng Ding; Ravi Singh; Andrew Burke; Heather Hatcher; John Olson; Robert A Kraft; Michael Schmid; David Carroll; J Daniel Bourland; Steven Akman; Frank M Torti; Suzy V Torti
Journal:  Nanomedicine (Lond)       Date:  2011-04-20       Impact factor: 5.307

2.  Potential of Gold Nanoparticles for Noninvasive Imaging and Therapy for Vascular Inflammation.

Authors:  Hisanori Kosuge; Maki Nakamura; Ayako Oyane; Kazuko Tajiri; Nobuyuki Murakoshi; Satoshi Sakai; Akira Sato; Atsushi Taninaka; Taishiro Chikamori; Hidemi Shigekawa; Kazutaka Aonuma
Journal:  Mol Imaging Biol       Date:  2021-09-27       Impact factor: 3.484

3.  MHD flow of time-fractional Casson nanofluid using generalized Fourier and Fick's laws over an inclined channel with applications of gold nanoparticles.

Authors:  Jamal Shah; Farhad Ali; Naveed Khan; Zubair Ahmad; Saqib Murtaza; Ilyas Khan; Omar Mahmoud
Journal:  Sci Rep       Date:  2022-10-17       Impact factor: 4.996

4.  Anti-HER2 IgY antibody-functionalized single-walled carbon nanotubes for detection and selective destruction of breast cancer cells.

Authors:  Yan Xiao; Xiugong Gao; Oleh Taratula; Stephen Treado; Aaron Urbas; R David Holbrook; Richard E Cavicchi; C Thomas Avedisian; Somenath Mitra; Ronak Savla; Paul D Wagner; Sudhir Srivastava; Huixin He
Journal:  BMC Cancer       Date:  2009-10-02       Impact factor: 4.430

5.  Infrared light-absorbing gold/gold sulfide nanoparticles induce cell death in esophageal adenocarcinoma.

Authors:  Yan Li; Andre M Gobin; Gerald W Dryden; Xinqin Kang; Deyi Xiao; Su Ping Li; Guandong Zhang; Robert C G Martin
Journal:  Int J Nanomedicine       Date:  2013-06-18

6.  PC 12 Pheochromocytoma Cell Response to Super High Frequency Terahertz Radiation from Synchrotron Source.

Authors:  Palalle G Tharushi Perera; Dominique R T Appadoo; Samuel Cheeseman; Jason V Wandiyanto; Denver Linklater; Chaitali Dekiwadia; Vi Khanh Truong; Mark J Tobin; Jitraporn Vongsvivut; Olha Bazaka; Kateryna Bazaka; Rodney J Croft; Russell J Crawford; Elena P Ivanova
Journal:  Cancers (Basel)       Date:  2019-01-31       Impact factor: 6.639

  6 in total

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