Literature DB >> 12594571

Heat shock protein 70 expression induces antitumor immunity during intracellular hyperthermia using magnetite nanoparticles.

Akira Ito1, Masashige Shinkai, Hiroyuki Honda, Kazuhiro Yoshikawa, Shinsuke Saga, Toshihiko Wakabayashi, Jun Yoshida, Takeshi Kobayashi.   

Abstract

In this study we demonstrated that heat shock protein (HSP) 70 expression by hyperthermia induced antitumor immunity in the T-9 rat glioma. Our hyperthermic system using magnetic nanoparticles induced necrotic cell death that correlated with HSP70 expression. We purified the HSP70-peptide complexes from the tumor after hyperthermia to investigate whether HSP70 was involved in the antitumor immunity, and we found that in the F344 rats immunized with T-9-derived HSP70 the tumor growth of T-9 was significantly suppressed. Tumor rejection assay after hyperthermic treatment of implanted T-9 cells with incorporated magnetite cationic liposomes (MCL) was performed to investigate whether antitumor immunity was induced by release of HSP70 from the necrotic cells in the F344 rat. Tumor growth was strongly suppressed in the rats subjected to hyperthermia of implanted T-9 cells, and 50% of rats were protected from challenge with T-9 cells. Immunogenicity was enhanced when the HSP70-overexpressing T-9 cells were killed via necrosis in rats by hyperthermia, after which all rats were completely protected from challenge with T-9 cells. Our hyperthermic system produces vaccination with HSP70-peptide via necrotic tumor cell death in vivo, resulting in antitumor immunity. This phenomenon, which may be termed in situ vaccination, has important implications for the development of novel antitumor therapies.

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Year:  2003        PMID: 12594571     DOI: 10.1007/s00262-002-0335-x

Source DB:  PubMed          Journal:  Cancer Immunol Immunother        ISSN: 0340-7004            Impact factor:   6.968


  33 in total

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Journal:  Int J Clin Exp Pathol       Date:  2014-06-15

Review 2.  Magnetic nanomaterials for hyperthermia-based therapy and controlled drug delivery.

Authors:  Challa S S R Kumar; Faruq Mohammad
Journal:  Adv Drug Deliv Rev       Date:  2011-04-05       Impact factor: 15.470

3.  Using nanoparticles for in situ vaccination against cancer: mechanisms and immunotherapy benefits.

Authors:  Michael-Joseph Gorbet; Akansha Singh; Chenkai Mao; Steven Fiering; Ashish Ranjan
Journal:  Int J Hyperthermia       Date:  2020-12       Impact factor: 3.914

Review 4.  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

5.  Biomedical Nanomagnetics: A Spin Through Possibilities in Imaging, Diagnostics, and Therapy.

Authors:  Kannan M Krishnan
Journal:  IEEE Trans Magn       Date:  2010-07-01       Impact factor: 1.700

6.  Effects of titanium dioxide nanoparticle aggregate size on gene expression.

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Journal:  Int J Mol Sci       Date:  2010-06-07       Impact factor: 5.923

Review 7.  Immunotherapy of malignant brain tumors.

Authors:  Duane A Mitchell; Peter E Fecci; John H Sampson
Journal:  Immunol Rev       Date:  2008-04       Impact factor: 12.988

Review 8.  Hyperthermia treatment advances for brain tumors.

Authors:  Georgios P Skandalakis; Daniel R Rivera; Caroline D Rizea; Alexandros Bouras; Joe Gerald Jesu Raj; Dominique Bozec; Constantinos G Hadjipanayis
Journal:  Int J Hyperthermia       Date:  2020-07       Impact factor: 3.914

9.  Enhancing therapeutic efficacy through designed aggregation of nanoparticles.

Authors:  Tanmoy Sadhukha; Timothy S Wiedmann; Jayanth Panyam
Journal:  Biomaterials       Date:  2014-06-16       Impact factor: 12.479

10.  Combined magnetic nanoparticle-based microRNA and hyperthermia therapy to enhance apoptosis in brain cancer cells.

Authors:  Perry T Yin; Birju P Shah; Ki-Bum Lee
Journal:  Small       Date:  2014-06-20       Impact factor: 13.281

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