INTERACT-MEMNP

Interaction and actuation of lipid membranes with magnetic nanoparticles

 Coordinatore UNIVERSITAET FUER BODENKULTUR WIEN 

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 Nazionalità Coordinatore Austria [AT]
 Totale costo 1˙483˙486 €
 EC contributo 1˙483˙486 €
 Programma FP7-IDEAS-ERC
Specific programme: "Ideas" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call ERC-2012-StG_20111109
 Funding Scheme ERC-SG
 Anno di inizio 2013
 Periodo (anno-mese-giorno) 2013-01-01   -   2017-12-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    UNIVERSITAET FUER BODENKULTUR WIEN

 Organization address address: Gregor Mendel Strasse 33
city: WIEN
postcode: 1180

contact info
Titolo: Mr.
Nome: Dieter
Cognome: Jäger
Email: send email
Telefono: +43 1 476542200

AT (WIEN) hostInstitution 1˙483˙486.50
2    UNIVERSITAET FUER BODENKULTUR WIEN

 Organization address address: Gregor Mendel Strasse 33
city: WIEN
postcode: 1180

contact info
Titolo: Prof.
Nome: Erik
Cognome: Reimhult
Email: send email
Telefono: 431477000000
Fax: 4314789112

AT (WIEN) hostInstitution 1˙483˙486.50

Mappa


 Word cloud

Esplora la "nuvola delle parole (Word Cloud) per avere un'idea di massima del progetto.

nps    lipid    incorporation    smart    synthetic    membranes    self    biomimetic    cell    mechanisms    drug    platform    biological    membrane    np    functional    materials   

 Obiettivo del progetto (Objective)

'Cell membranes contain a large part of the delicate machinery of life and comprise the barriers controlling access to and from the interior of the cell. With the increasing use of nanoparticles (NPs) in medical imaging, drug delivery, cosmetics and materials the need is great and increasing to understand how NPs physically interact with cell membranes. On the one hand it is important to understand mechanisms to control risks of novel nanomaterials and to design therapeutic agents which can enter cells specifically and non-destructively. On the other hand, the structure and function of biological membranes inspire development of biomimetic smart materials for biotechnological applications which exploit or are modeled on biological membranes, but given enhanced functionality and external control of properties through incorporation of functional NPs. The aim of the proposed work is to develop understanding of the biophysical interaction of functional NPs with lipid membranes, in particular NP incorporation into and penetration through lipid membranes. Further, the aim is, based on that knowledge, to understand and control the self-assembly of superparamagnetic NPs into synthetic and cell lipid membranes to actuate them and control their physical properties in pursuit of novel biomimetic smart materials and cell analytical methods. The required level of control for this research has until recently been beyond the reach of existing NP systems (lack of synthetic control, stability and characterization) and methodology (lipid membrane models and high resolution techniques for their investigation). However, it can now be achieved using the Fe3O4 NP platform and surface-based and vesicular membrane model systems of tuned composition that I have developed. Using the same platform, breakthrough magneto-responsive biomimetic smart materials with application in drug delivery and cell manipulation with novel mechanisms of actuation will be self-assembled and investigated.'

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