A Proposal to Develop a Microfluidic Platform with GMR Sensors and the Use of Magnetic Nanoparticles in Order to Detect Cancerous Cells: Preliminary experimentation

Author(s):  
C. Lopez ◽  
G. Oza ◽  
J.R. Casannova ◽  
L.G Arriaga ◽  
L. Leija ◽  
...  
2017 ◽  
Vol 241 ◽  
pp. 438-445 ◽  
Author(s):  
Georgios Kokkinis ◽  
Susana Cardoso ◽  
Franz Keplinger ◽  
Ioanna Giouroudi

2017 ◽  
Vol 105 (3) ◽  
Author(s):  
Gokhan Takan ◽  
Ozge Kozgus Guldu ◽  
Emin Ilker Medine

AbstractMagnetic nanoparticles have promising biomedical applications such as drug delivery, novel therapeutics and diagnostic imaging. Magnetic drug delivery combination works on the delivery of magnetic nanoparticles loaded with drug to the target tissue by means of an external magnetic field. Gold coated iron oxide (Fe@Au) nanoparticles can provide useful surface chemistry and biological reactivity. Covalent conjugation to the Fe@Au nanoparticles through cleavable linkages can be used to deliver drugs to tumor cells, then the drug can be released by an external. In this paper, purine based cyclin dependent kinases (CDKs) inhibitor Olomoucine (Olo) [2-(Hydroxyethylamino)-6-benzylamino-9-methylpurine] was loaded on gold coated iron oxide (Fe@Au) nanoparticles and radiolabeled with


2021 ◽  
pp. 118027
Author(s):  
Saeed Siavashy ◽  
Madjid Soltani ◽  
Fatemeh Ghorbani-Bidkorbeh ◽  
Newsha Fallah ◽  
Golrokh Farnam ◽  
...  

2012 ◽  
Vol 324 (21) ◽  
pp. 3495-3498 ◽  
Author(s):  
C. Marquina ◽  
J.M. de Teresa ◽  
D. Serrate ◽  
J. Marzo ◽  
F.A. Cardoso ◽  
...  

2016 ◽  
Vol 2016 ◽  
pp. 1-6 ◽  
Author(s):  
Sedighe Arabi ◽  
Hamid Akbari Javar ◽  
Mehdi Khoobi

Magnetic nanoparticles with polymeric coating have great significance in drug delivery purpose. We intended to prepare a modified amphiphilic polymer with targeting susceptibility to reduce side effects to normal cells. In this study polyethyleneimine (PEI) as a polycationic polymer reacted with sebacoyl chloride to make a new amphiphilic polymer and folic acid as a targeting agent to reduce cytotoxicity of polymer and increase specific entrance of nanoparticles to cancerous cells. The obtained polymer (PEI-Sb-FA) was then coated on magnetic nanoparticles (MNPs) to stabilize them. The core-shell nanoparticles were characterized by different methods such as scanning electron microscopy (SEM), X-ray diffraction (XRD), thermogravimetric analysis (TGA), and vibrating sample magnetometer (VSM). Curcumin was finally loaded on PEI-Sb-FA-MNPs and the release behavior was studied in different pH. Curcumin loading of 28.2% was obtained and released drug in acidic pH = 4.5 was more than pH = 7.4, showing drug release sensitivity toward pH of media.


2012 ◽  
Author(s):  
Alessia Pallaoro ◽  
Mehran R. Hoonejani ◽  
Gary B. Braun ◽  
Carl Meinhart ◽  
Martin Moskovits

2008 ◽  
Vol 2 (2) ◽  
Author(s):  
Yuanpeng Li ◽  
Marlene Castro ◽  
Hyungsoon Im ◽  
Xiaofeng Yao ◽  
Sang-Hyun Oh ◽  
...  

Current methods for pathogen detection require days before a result is available, while biosensors offer the advantage of quick, on the spot results. In this project we present the proof of concept of a biosensor that uses giant magnetoresistance (GMR) sensors and a microfluidic system. The bioprobe consists of a 30 bp oligonucleotide, 5′ functionalized with a thiol group (T-DNA30) immobilized on a gold surface. Hybridization was tested with a 5′-biotinylated oligonucleotide complementary to T-DNA30 to which Streptavidin-R-Phycoerythrin was attached later. The difference in fluorescence between the target sample and control samples was observed using a scanning laser confocal fluorescence microscope. The GMR device consists of an Ir0.8Mn0.2∕Co0.9Fe0.1∕Cu∕Co0.9Fe0.1∕Ni0.82Fe0.12 multilayer structure. Magnetic nanoparticles were deposited directly on the surface of the GMR sensors. An external magnetic field was employed to polarize the nanoparticles, which can then be detected by comparing the resistance change loops of the GMR sensors before and after their deposition. A transparent elastomer, polydimethylsiloxane (PDMS), was used for the microfluidic system. The system comprises two microfluidic channels separated by a 200μm PDMS wall. The channel width is 200μm and its height 100μm. The PDMS channel was permanently bonded to the SiO2 surface of the GMR sensor. The integrated biosensor will immobilize thiolated DNA on the gold surface below which the GMR device is located. For hybridization, biotinylated DNA will be used. Finally, magnetic nanoparticles, coated with streptavidin will be attached to the hybridized DNA and detected by the GMR device.


2015 ◽  
Vol 51 (95) ◽  
pp. 16904-16907 ◽  
Author(s):  
D. Ferraro ◽  
Y. Lin ◽  
B. Teste ◽  
D. Talbot ◽  
L. Malaquin ◽  
...  

An automated droplet microfluidic platform is described for the manipulation of magnetic nanoparticles and their assembly with fluorescent silica nanoparticles.


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