Literature DB >> 31287950

Flower-like Mn-Doped Magnetic Nanoparticles Functionalized with αvβ3-Integrin-Ligand to Efficiently Induce Intracellular Heat after Alternating Magnetic Field Exposition, Triggering Glioma Cell Death.

S Del Sol-Fernández1, Y Portilla-Tundidor2, L Gutiérrez3, O F Odio1, E Reguera1, D F Barber2, M P Morales4.   

Abstract

Despite the potential of magnetic nanoparticles (NPs) to mediate intracellular hyperthermia when exposed to an alternating magnetic field (AMF), several studies indicate that the intracellular heating capacity of magnetic NPs depends on factors such as cytoplasm viscosity, nanoparticle aggregation within subcellular compartments, and dipolar interactions. In this work, we report the design and synthesis of monodispersed flowerlike superparamagnetic manganese iron oxide NPs with maximized SAR (specific absorption rate) and evaluate their efficacy as intracellular heaters in the human tumor-derived glioblastoma cell line U87MG. Three main strategies to tune the particle anisotropy of the core and the surface to reach the maximum heating efficiency were adopted: (1) varying the crystalline anisotropy by inserting a low amount of Mn2+ in the inverse spinel structure, (2) varying the NP shape to add an additional anisotropy source while keeping the superparamagnetic behavior, and (3) maximizing NP-cell affinity through conjugation with a biological targeting molecule to reach the NP concentration required to increase the temperature within the cell. We investigate possible effects produced by these improved NPs under the AMF (f = 96 kHz, H = 47 kA/m) exposure in the glioblastoma cell line U87MG by monitoring the expression of hsp70 gene and reactive oxygen species (ROS) production, as both effects have been described to be induced by increasing the intracellular temperature. The induced cell responses include cellular membrane permeabilization and rupture with concomitant high ROS appearance and hsp70 expression, followed by cell death. The responses were largely limited to cells that contained the NPs exposed to the AMF. Our results indicate that the developed strategies to optimize particle anisotropy in this work are a promising guidance to improve the heating efficiency of magnetic NPs in the human glioma cell line.

Entities:  

Keywords:  biological responses to heat; cell death; intracellular hyperthermia; manganese iron oxide nanoparticles; optimized uptake; oxidative stress

Year:  2019        PMID: 31287950     DOI: 10.1021/acsami.9b08318

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  11 in total

1.  LncRNA NNT-AS1 promote glioma cell proliferation and metastases through miR-494-3p/PRMT1 axis.

Authors:  Dahai Zheng; Daliang Chen; Famu Lin; Xiang Wang; Lenian Lu; Shi Luo; Jianmin Chen; Xiaobing Xu
Journal:  Cell Cycle       Date:  2020-05-18       Impact factor: 4.534

Review 2.  Understanding nanoparticle endocytosis to improve targeting strategies in nanomedicine.

Authors:  Mauro Sousa de Almeida; Eva Susnik; Barbara Drasler; Patricia Taladriz-Blanco; Alke Petri-Fink; Barbara Rothen-Rutishauser
Journal:  Chem Soc Rev       Date:  2021-03-05       Impact factor: 54.564

Review 3.  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

4.  Therapeutic Efficiency of Multiple Applications of Magnetic Hyperthermia Technique in Glioblastoma Using Aminosilane Coated Iron Oxide Nanoparticles: In Vitro and In Vivo Study.

Authors:  Gabriel N A Rego; Mariana P Nucci; Javier B Mamani; Fernando A Oliveira; Luciana C Marti; Igor S Filgueiras; João M Ferreira; Caroline C Real; Daniele de Paula Faria; Paloma L Espinha; Daianne M C Fantacini; Lucas E B Souza; Dimas T Covas; Carlos A Buchpiguel; Lionel F Gamarra
Journal:  Int J Mol Sci       Date:  2020-01-31       Impact factor: 5.923

Review 5.  Iron Speciation in Animal Tissues Using AC Magnetic Susceptibility Measurements: Quantification of Magnetic Nanoparticles, Ferritin, and Other Iron-Containing Species.

Authors:  Yilian Fernández-Afonso; Laura Asín; Lilianne Beola; María Moros; Jesús M de la Fuente; Raluca M Fratila; Valeria Grazú; Lucía Gutiérrez
Journal:  ACS Appl Bio Mater       Date:  2022-02-18

6.  Magneto-optical hyperthermia agents based on probiotic bacteria loaded with magnetic and gold nanoparticles.

Authors:  Víctor Garcés; Ana González; Natividad Gálvez; José M Delgado-López; Jose J Calvino; Susana Trasobares; Yilian Fernández-Afonso; Lucía Gutiérrez; José M Dominguez-Vera
Journal:  Nanoscale       Date:  2022-04-14       Impact factor: 7.790

7.  Magnetism-mediated targeting hyperthermia-immunotherapy in "cold" tumor with CSF1R inhibitor.

Authors:  Yuefei Fang; Yang He; Canhao Wu; Meng Zhang; Zeyun Gu; Jiaxin Zhang; Ergang Liu; Qin Xu; Akmal M Asrorov; Yongzhuo Huang
Journal:  Theranostics       Date:  2021-05-03       Impact factor: 11.556

8.  AVNP2 protects against cognitive impairments induced by C6 glioma by suppressing tumour associated inflammation in rats.

Authors:  Junyang Li; Meicen Liu; Jin Gao; Yu Jiang; Limin Wu; Yuen-Ki Cheong; Guogang Ren; Zhuo Yang
Journal:  Brain Behav Immun       Date:  2020-02-22       Impact factor: 7.217

Review 9.  Review on Recent Progress in Magnetic Nanoparticles: Synthesis, Characterization, and Diverse Applications.

Authors:  Arbab Ali; Tufail Shah; Rehmat Ullah; Pingfan Zhou; Manlin Guo; Muhammad Ovais; Zhiqiang Tan; YuKui Rui
Journal:  Front Chem       Date:  2021-07-13       Impact factor: 5.221

10.  Enhancing Magnetic Hyperthermia Nanoparticle Heating Efficiency with Non-Sinusoidal Alternating Magnetic Field Waveforms.

Authors:  Michael Zeinoun; Javier Domingo-Diez; Miguel Rodriguez-Garcia; Oscar Garcia; Miroslav Vasic; Milagros Ramos; José Javier Serrano Olmedo
Journal:  Nanomaterials (Basel)       Date:  2021-11-29       Impact factor: 5.076

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