Poly(Lactide-co-Glycolide) Nanoparticles, Layer by Layer Engineered for the Sustainable Delivery of AntiTNF-?
Romero, G; Ochoteco, O; Sanz, DJ; Estrela-Lopis, I; Donath, E; Moya, SE.
Macromol. Biosci., 2013, 13, 903-912
Lipid layer engineering of poly(lactide-co-glycolide) nanoparticles to control their uptake and intracellular co-localisation
Romero, G; Sanz, DJ; Qiu, Y; Yu, D; Mao, Z; Gao, C; Moya, SE.
J. Mater. Chem. B, 2013, 1, 2252-2259
Biodistribution of different sized nanoparticles assessed by positron emission tomography: A general strategy for direct activation of metal oxide particles
Pérez-Campaña, C; Gómez-Vallejo, V; Puigivila, M; Martín, A; Calvo-Fernández, T; Moya, SE; Ziolo, RF; Reese, T; Llop, J.
ACS Nano, 2013, 7, 3498-3505
Indentation of highly charged PSPM brushes measured by force spectroscopy: Application of a compressible fluid model
Cuellar, JL; Llarena, I; Moya, SE; Donath, E.
Macromolecules, 2013, 46, 2323-2330
Responsive polyelectrolyte multilayers assembled at high ionic strength with an unusual collapse at low ionic strength
Irigoyen, J; Han, L; Llarena, I; Mao, Z; Gao, C; Moya, SE.
Macromol. Rapid Commun., 2012, 33, 1964-1969
Tracing nanoparticles in vivo: A new general synthesis of positron emitting metal oxide nanoparticles by proton beam activation
Pérez-Campaña, C; Gómez-Vallejo, V; Martin, A; San Sebastián, E; Moya, SE; Reese, T; Ziolo, RF; Llop, J.
Analyst, 2012, 137, 4902-4906