Literature DB >> 24416585

Magnetic nanoparticle-based hyperthermia for cancer treatment.

Manuel Bañobre-López1, Antonio Teijeiro2, Jose Rivas1.   

Abstract

Nanotechnology involves the study of nature at a very small scale, searching new properties and applications. The development of this area of knowledge affects greatly both biotechnology and medicine disciplines. The use of materials at the nanoscale, in particular magnetic nanoparticles, is currently a prominent topic in healthcare and life science. Due to their size-tunable physical and chemical properties, magnetic nanoparticles have demonstrated a wide range of applications ranging from medical diagnosis to treatment. Combining a high saturation magnetization with a properly functionalized surface, magnetic nanoparticles are provided with enhanced functionality that allows them to selectively attach to target cells or tissues and play their therapeutic role in them. In particular, iron oxide nanoparticles are being actively investigated to achieve highly efficient carcinogenic cell destruction through magnetic hyperthermia treatments. Hyperthermia in different approaches has been used combined with radiotherapy during the last decades, however, serious harmful secondary effects have been found in healthy tissues to be associated with these treatments. In this framework, nanotechnology provides a novel and original solution with magnetic hyperthermia, which is based on the use of magnetic nanoparticles to remotely induce local heat when a radiofrequency magnetic field is applied, provoking a temperature increase in those tissues and organs where the tumoral cells are present. Therefore, one important factor that determines the efficiency of this technique is the ability of magnetic nanoparticles to be driven and accumulated in the desired area inside the body. With this aim, magnetic nanoparticles must be strategically surface functionalized to selectively target the injured cells and tissues.

Entities:  

Keywords:  Hyperthermia; Nanoparticles; Nanotechnology

Year:  2013        PMID: 24416585      PMCID: PMC3863197          DOI: 10.1016/j.rpor.2013.09.011

Source DB:  PubMed          Journal:  Rep Pract Oncol Radiother        ISSN: 1507-1367


  10 in total

1.  Intrinsic magnetism and hyperthermia in bioactive Fe-doped hydroxyapatite.

Authors:  Anna Tampieri; Teresa D'Alessandro; Monica Sandri; Simone Sprio; Elena Landi; Luca Bertinetti; Silvia Panseri; Giancarlo Pepponi; Joerg Goettlicher; Manuel Bañobre-López; Jose Rivas
Journal:  Acta Biomater       Date:  2011-09-29       Impact factor: 8.947

2.  Functionalization of monodisperse magnetic nanoparticles.

Authors:  Marco Lattuada; T Alan Hatton
Journal:  Langmuir       Date:  2007-02-13       Impact factor: 3.882

Review 3.  Battling tumors with magnetic nanotherapeutics and hyperthermia: turning up the heat.

Authors:  Robert B Campbell
Journal:  Nanomedicine (Lond)       Date:  2007-10       Impact factor: 5.307

Review 4.  Magnetic iron oxide nanoparticles: synthesis, stabilization, vectorization, physicochemical characterizations, and biological applications.

Authors:  Sophie Laurent; Delphine Forge; Marc Port; Alain Roch; Caroline Robic; Luce Vander Elst; Robert N Muller
Journal:  Chem Rev       Date:  2008-06       Impact factor: 60.622

Review 5.  Synthesis and bio-functionalization of magnetic nanoparticles for medical diagnosis and treatment.

Authors:  Thomas D Schladt; Kerstin Schneider; Hansjörg Schild; Wolfgang Tremel
Journal:  Dalton Trans       Date:  2011-03-01       Impact factor: 4.390

Review 6.  Theranostic magnetic nanoparticles.

Authors:  Dongwon Yoo; Jae-Hyun Lee; Tae-Hyun Shin; Jinwoo Cheon
Journal:  Acc Chem Res       Date:  2011-08-08       Impact factor: 22.384

Review 7.  Magnetic nanoparticles: synthesis, functionalization, and applications in bioimaging and magnetic energy storage.

Authors:  Natalie A Frey; Sheng Peng; Kai Cheng; Shouheng Sun
Journal:  Chem Soc Rev       Date:  2009-06-23       Impact factor: 54.564

8.  Magnetic poly(ε-caprolactone)/iron-doped hydroxyapatite nanocomposite substrates for advanced bone tissue engineering.

Authors:  A Gloria; T Russo; U D'Amora; S Zeppetelli; T D'Alessandro; M Sandri; M Bañobre-López; Y Piñeiro-Redondo; M Uhlarz; A Tampieri; J Rivas; T Herrmannsdörfer; V A Dediu; L Ambrosio; R De Santis
Journal:  J R Soc Interface       Date:  2013-01-09       Impact factor: 4.118

9.  Metallic iron nanoparticles for MRI contrast enhancement and local hyperthermia.

Authors:  Costas G Hadjipanayis; Michael J Bonder; Srinivasan Balakrishnan; Xiaoxia Wang; Hui Mao; George C Hadjipanayis
Journal:  Small       Date:  2008-11       Impact factor: 13.281

10.  The influence of colloidal parameters on the specific power absorption of PAA-coated magnetite nanoparticles.

Authors:  Yolanda Piñeiro-Redondo; Manuel Bañobre-López; Iván Pardiñas-Blanco; Gerardo Goya; M Arturo López-Quintela; José Rivas
Journal:  Nanoscale Res Lett       Date:  2011-05-16       Impact factor: 4.703

  10 in total
  65 in total

Review 1.  Uptake and metabolism of iron oxide nanoparticles in brain cells.

Authors:  Charlotte Petters; Ellen Irrsack; Michael Koch; Ralf Dringen
Journal:  Neurochem Res       Date:  2014-07-11       Impact factor: 3.996

Review 2.  Radiosensitizing properties of magnetic hyperthermia mediated by superparamagnetic iron oxide nanoparticles (SPIONs) on human cutaneous melanoma cell lines.

Authors:  Jakub Dalibor Rybka
Journal:  Rep Pract Oncol Radiother       Date:  2019-02-06

3.  Biodistribution and toxicity of epitope-functionalized dextran iron oxide nanoparticles in a pregnant murine model.

Authors:  Amir Bolandparvaz; Natalia Vapniarsky; Rian Harriman; Kenneth Alvarez; Jasmeen Saini; Zexi Zang; Judy Van De Water; Jamal S Lewis
Journal:  J Biomed Mater Res A       Date:  2020-02-26       Impact factor: 4.396

4.  Towards a nanoparticle-based prophylactic for maternal autoantibody-related autism.

Authors:  Amir Bolandparvaz; Rian Harriman; Kenneth Alvarez; Kristina Lilova; Zexi Zang; Andy Lam; Elizabeth Edmiston; Alexandra Navrotsky; Natalia Vapniarsky; Judy Van De Water; Jamal S Lewis
Journal:  Nanomedicine       Date:  2019-07-23       Impact factor: 5.307

Review 5.  Magnetic hyperthermia therapy for the treatment of glioblastoma: a review of the therapy's history, efficacy and application in humans.

Authors:  Keon Mahmoudi; Alexandros Bouras; Dominique Bozec; Robert Ivkov; Constantinos Hadjipanayis
Journal:  Int J Hyperthermia       Date:  2018-02-06       Impact factor: 3.914

6.  Magnetic Particle Imaging: A Novel in Vivo Imaging Platform for Cancer Detection.

Authors:  Elaine Y Yu; Mindy Bishop; Bo Zheng; R Matthew Ferguson; Amit P Khandhar; Scott J Kemp; Kannan M Krishnan; Patrick W Goodwill; Steven M Conolly
Journal:  Nano Lett       Date:  2017-02-21       Impact factor: 11.189

Review 7.  Targeting the microenvironment of pancreatic cancer: overcoming treatment barriers and improving local immune responses.

Authors:  J Strauss; C Alewine; W D Figg; A Duffy
Journal:  Clin Transl Oncol       Date:  2015-12-11       Impact factor: 3.405

8.  Magnetoelectric nanoparticles for delivery of antitumor peptides into glioblastoma cells by magnetic fields.

Authors:  Tiffanie S Stewart; Abhignyan Nagesetti; Rakesh Guduru; Ping Liang; Emmanuel Stimphil; Ali Hadjikhani; Luis Salgueiro; Jeffrey Horstmyer; Renzhi Cai; Andrew Schally; Sakhrat Khizroev
Journal:  Nanomedicine (Lond)       Date:  2018-01-18       Impact factor: 5.307

9.  Preparation of Folic Acid-Targeted Temperature-Sensitive Magnetoliposomes and their Antitumor Effects In Vitro and In Vivo.

Authors:  Xihui Wang; Rui Yang; Chunyan Yuan; Yanli An; Qiusha Tang; Daozhen Chen
Journal:  Target Oncol       Date:  2018-08       Impact factor: 4.493

10.  Gold-coated iron oxide nanoparticles trigger apoptosis in the process of thermo-radiotherapy of U87-MG human glioma cells.

Authors:  Ali Neshastehriz; Zohreh Khosravi; Habib Ghaznavi; Ali Shakeri-Zadeh
Journal:  Radiat Environ Biophys       Date:  2018-09-10       Impact factor: 1.925

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