Literature DB >> 20023329

Enhancement of irradiation effects on cancer cells by cross-linked dextran-coated iron oxide (CLIO) nanoparticles.

Fu-Kuo Huang1, Wen-Chang Chen, Sheng-Feng Lai, Chi-Jen Liu, Cheng-Liang Wang, Chang-Hai Wang, Hsiang-Hsin Chen, Tzu-En Hua, Yi-Yun Cheng, M K Wu, Y Hwu, Chung-Shi Yang, G Margaritondo.   

Abstract

We investigated iron oxide nanoparticles with two different surface modifications, dextran coating and cross-linked dextran coating, showing that their different internalization affects their capability to enhance radiation damage to cancer cells. The internalization was monitored with an ultrahigh resolution transmission x-ray microscope (TXM), indicating that the differences in the particle surface charge play an essential role and dominate the particle-cell interaction. We found that dextran-coated iron oxide nanoparticles cannot be internalized by HeLa and EMT-6 cells without being functionalized with amino groups (the cross-linked dextran coating) that modify the surface potential from -18 mV to 13.4 mV. The amount of cross-linked dextran-coated iron oxide nanoparticles uptaken by cancer cells reached its maximum, 1.33 x 10(9) per HeLa cell, when the co-culture concentration was 40 microg Fe mL(-1) or more. Standard tests indicated that these internalized nanoparticles increased the damaging effects of x-ray irradiation, whereas they are by themselves biocompatible. These results could lead to interesting therapy applications; furthermore, iron oxide also produces high contrast for magnetic resonance imaging (MRI) in the diagnosis and therapy stages.

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Year:  2009        PMID: 20023329     DOI: 10.1088/0031-9155/55/2/009

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  9 in total

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Review 2.  Prostate cancer radiotherapy: potential applications of metal nanoparticles for imaging and therapy.

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3.  Quantitative analysis of nanoparticle internalization in mammalian cells by high resolution X-ray microscopy.

Authors:  Hsiang-Hsin Chen; Chia-Chi Chien; Cyril Petibois; Cheng-Liang Wang; Yong S Chu; Sheng-Feng Lai; Tzu-En Hua; Yi-Yun Chen; Xiaoqing Cai; Ivan M Kempson; Yeukuang Hwu; Giorgio Margaritondo
Journal:  J Nanobiotechnology       Date:  2011-04-10       Impact factor: 10.435

4.  Influence of concentration, nanoparticle size, beam energy, and material on dose enhancement in radiation therapy.

Authors:  Chulhwan Hwang; Ja Mee Kim; JungHoon Kim
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Review 5.  Biologically Targeted Magnetic Hyperthermia: Potential and Limitations.

Authors:  David Chang; May Lim; Jeroen A C M Goos; Ruirui Qiao; Yun Yee Ng; Friederike M Mansfeld; Michael Jackson; Thomas P Davis; Maria Kavallaris
Journal:  Front Pharmacol       Date:  2018-08-02       Impact factor: 5.810

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Review 7.  Metal-based NanoEnhancers for Future Radiotherapy: Radiosensitizing and Synergistic Effects on Tumor Cells.

Authors:  Yan Liu; Pengcheng Zhang; Feifei Li; Xiaodong Jin; Jin Li; Weiqiang Chen; Qiang Li
Journal:  Theranostics       Date:  2018-02-12       Impact factor: 11.556

Review 8.  Role of Neutrophils and Myeloid-Derived Suppressor Cells in Glioma Progression and Treatment Resistance.

Authors:  Sabbir Khan; Sandeep Mittal; Kain McGee; Kristin D Alfaro-Munoz; Nazanin Majd; Veerakumar Balasubramaniyan; John F de Groot
Journal:  Int J Mol Sci       Date:  2020-03-13       Impact factor: 5.923

9.  Investigation of Combination Effect Between 6 MV X-Ray Radiation and Polyglycerol Coated Superparamagnetic Iron Oxide Nanoparticles on U87-MG Cancer Cells.

Authors:  Jafari S; Cheki M; Tavakoli M B; Zarrabi A; Ghazikhanlu Sani K; Afzalipour R
Journal:  J Biomed Phys Eng       Date:  2020-02-01
  9 in total

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