Literature DB >> 25415565

Magnetically triggered release of molecular cargo from iron oxide nanoparticle loaded microcapsules.

Susana Carregal-Romero1, Pablo Guardia, Xiang Yu, Raimo Hartmann, Teresa Pellegrino, Wolfgang J Parak.   

Abstract

Photothermal release of cargo molecules has been extensively studied for bioapplications. For instance, microcapsules decorated with plasmonic nanoparticles have been widely used in in vitro assays. However, some concerns about their suitability for some in vivo applications cannot be easily overcome, in particular the limited penetration depth of light (even infrared). Magnetic nanoparticles are alternative heat-mediators for local heating, which can be triggered by applying an alternating magnetic field (AMF). AMFs are much less absorbed by tissue than light and thus can penetrate deeper overcoming the above mentioned limitations. Here we present iron oxide nanocube-modified microcapsules as a platform for magnetically triggered molecular release. Layer-by-layer assembled polyelectrolyte microcapsules with 4.6 μm diameter, which had 18 nm diameter iron oxide nanocubes integrated in their walls, were synthesized. The microcapsules were further loaded with an organic fluorescent polymer (Cascade Blue-labelled dextran), which was used as a model of molecular cargo. Through an AMF the magnetic nanoparticles were able to heat their surroundings and destroy the microcapsule walls, leading to a final release of the embedded cargo to the surrounding solution. The cargo release was monitored in solution by measuring the increase in both absorbance and fluorescence signal after the exposure to an AMF. Our results demonstrate that magnetothermal release of the encapsulated material is possible using magnetic nanoparticles with a high heating performance.

Entities:  

Year:  2015        PMID: 25415565     DOI: 10.1039/c4nr04055d

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  19 in total

Review 1.  Diverse Applications of Nanomedicine.

Authors:  Beatriz Pelaz; Christoph Alexiou; Ramon A Alvarez-Puebla; Frauke Alves; Anne M Andrews; Sumaira Ashraf; Lajos P Balogh; Laura Ballerini; Alessandra Bestetti; Cornelia Brendel; Susanna Bosi; Monica Carril; Warren C W Chan; Chunying Chen; Xiaodong Chen; Xiaoyuan Chen; Zhen Cheng; Daxiang Cui; Jianzhong Du; Christian Dullin; Alberto Escudero; Neus Feliu; Mingyuan Gao; Michael George; Yury Gogotsi; Arnold Grünweller; Zhongwei Gu; Naomi J Halas; Norbert Hampp; Roland K Hartmann; Mark C Hersam; Patrick Hunziker; Ji Jian; Xingyu Jiang; Philipp Jungebluth; Pranav Kadhiresan; Kazunori Kataoka; Ali Khademhosseini; Jindřich Kopeček; Nicholas A Kotov; Harald F Krug; Dong Soo Lee; Claus-Michael Lehr; Kam W Leong; Xing-Jie Liang; Mei Ling Lim; Luis M Liz-Marzán; Xiaowei Ma; Paolo Macchiarini; Huan Meng; Helmuth Möhwald; Paul Mulvaney; Andre E Nel; Shuming Nie; Peter Nordlander; Teruo Okano; Jose Oliveira; Tai Hyun Park; Reginald M Penner; Maurizio Prato; Victor Puntes; Vincent M Rotello; Amila Samarakoon; Raymond E Schaak; Youqing Shen; Sebastian Sjöqvist; Andre G Skirtach; Mahmoud G Soliman; Molly M Stevens; Hsing-Wen Sung; Ben Zhong Tang; Rainer Tietze; Buddhisha N Udugama; J Scott VanEpps; Tanja Weil; Paul S Weiss; Itamar Willner; Yuzhou Wu; Lily Yang; Zhao Yue; Qian Zhang; Qiang Zhang; Xian-En Zhang; Yuliang Zhao; Xin Zhou; Wolfgang J Parak
Journal:  ACS Nano       Date:  2017-03-14       Impact factor: 15.881

2.  Catalytic antimicrobial robots for biofilm eradication.

Authors:  Geelsu Hwang; Amauri J Paula; Elizabeth E Hunter; Yuan Liu; Alaa Babeer; Bekir Karabucak; Kathleen Stebe; Vijay Kumar; Edward Steager; Hyun Koo
Journal:  Sci Robot       Date:  2019-04-24

Review 3.  Micro/Nanosystems for Magnetic Targeted Delivery of Bioagents.

Authors:  Francesca Garello; Yulia Svenskaya; Bogdan Parakhonskiy; Miriam Filippi
Journal:  Pharmaceutics       Date:  2022-05-26       Impact factor: 6.525

Review 4.  A perspective on a rapid and radiation-free tracer imaging modality, magnetic particle imaging, with promise for clinical translation.

Authors:  Prashant Chandrasekharan; Zhi Wei Tay; Xinyi Yedda Zhou; Elaine Yu; Ryan Orendorff; Daniel Hensley; Quincy Huynh; K L Barry Fung; Caylin Colson VanHook; Patrick Goodwill; Bo Zheng; Steven Conolly
Journal:  Br J Radiol       Date:  2018-06-21       Impact factor: 3.039

5.  In-situ particles reorientation during magnetic hyperthermia application: Shape matters twice.

Authors:  Konstantinos Simeonidis; M Puerto Morales; Marzia Marciello; Makis Angelakeris; Patricia de la Presa; Ana Lazaro-Carrillo; Andrea Tabero; Angeles Villanueva; Oksana Chubykalo-Fesenko; David Serantes
Journal:  Sci Rep       Date:  2016-12-06       Impact factor: 4.379

6.  Magnetic Vortices as Efficient Nano Heaters in Magnetic Nanoparticle Hyperthermia.

Authors:  N A Usov; M S Nesmeyanov; V P Tarasov
Journal:  Sci Rep       Date:  2018-01-19       Impact factor: 4.379

7.  3D Nanoporous Anodic Alumina Structures for Sustained Drug Release.

Authors:  Maria Porta-I-Batalla; Elisabet Xifré-Pérez; Chris Eckstein; Josep Ferré-Borrull; Lluis F Marsal
Journal:  Nanomaterials (Basel)       Date:  2017-08-21       Impact factor: 5.076

Review 8.  Recent insights in nanotechnology-based drugs and formulations designed for effective anti-cancer therapy.

Authors:  Ewelina Piktel; Katarzyna Niemirowicz; Marzena Wątek; Tomasz Wollny; Piotr Deptuła; Robert Bucki
Journal:  J Nanobiotechnology       Date:  2016-05-26       Impact factor: 10.435

9.  Recent progress on nanoparticle-based drug delivery systems for cancer therapy.

Authors:  Yanru Xin; Mingming Yin; Liyuan Zhao; Fanling Meng; Liang Luo
Journal:  Cancer Biol Med       Date:  2017-08       Impact factor: 4.248

10.  Magnetic hyperthermia controlled drug release in the GI tract: solving the problem of detection.

Authors:  Joseph C Bear; P Stephen Patrick; Alfred Casson; Paul Southern; Fang-Yu Lin; Michael J Powell; Quentin A Pankhurst; Tammy Kalber; Mark Lythgoe; Ivan P Parkin; Andrew G Mayes
Journal:  Sci Rep       Date:  2016-09-27       Impact factor: 4.379

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