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dc.contributor.author JAIMES AGUIRRE, LAURA
dc.contributor.author MORALES AVILA, ENRIQUE
dc.contributor.author OCAMPO GARCIA, BLANCA ELI
dc.contributor.author MEDINA VELAZQUEZ, LUIS ALBERTO
dc.contributor.author LOPEZ TELLEZ, GUSTAVO
dc.contributor.author GIBBENS BANDALA, BRENDA VIANEY
dc.contributor.author IZQUIERDO SANCHEZ, BERTHA VANESSA
dc.creator JAIMES AGUIRRE, LAURA; 627663
dc.creator MORALES AVILA, ENRIQUE; 170668
dc.creator OCAMPO GARCIA, BLANCA ELI; 309879
dc.creator MEDINA VELAZQUEZ, LUIS ALBERTO; 121831
dc.creator LOPEZ TELLEZ, GUSTAVO; 236622
dc.creator GIBBENS BANDALA, BRENDA VIANEY; 450667
dc.creator IZQUIERDO SANCHEZ, BERTHA VANESSA; 271276
dc.date.accessioned 2017-10-03T18:26:50Z
dc.date.available 2017-10-03T18:26:50Z
dc.date.issued 2017-03-18
dc.identifier.issn 0928-4931
dc.identifier.uri http://hdl.handle.net/20.500.11799/67425
dc.description.abstract A novel targeted drug delivery nanoparticle system based on poly(D,L-lactide-co-glycolide) acid (PLGA) for delivery of doxorubicin (DOX) was developed. DOX-PLGA NPs were obtained by the emulsification-solvent evaporation technique. Then, their surface was modified with poly(L-γ-glutamic acid) (γ-PGA) and finally conjugated to modified folic acid (FA) as a targeting ligand. The surface modification and FA conjugation were followed by UV–Vis and FT-IR spectroscopies. Morphology was observed by TEM/SEM. Particle size, PDI and zeta potential were measured using DLS studies. Encapsulation and loading efficiencies, and DOX release kinetics were determined. Specific uptake and cell viability of DOX-PLGA/γ-PGA-FA NPs were tested in HeLa cells. Quasi-spherical nanoparticleswith a particle size lower than 600nm(DLS)were obtained. Spectroscopic techniques demonstrated the successful surface modification with γ-PGA and FA conjugation. Release profile of DOX-PLGA/γ-PGA-FA NPs showed a release of 55.4 ± 0.6% after seven days, in an acidic environment. HeLa cells exhibited a decrease in viability when treated with DOX-PLGA/γ-PGA-AF NPs, and cellular uptake was attributed to FA receptor-mediated endocytosis. These results suggest that DOX-PLGA/γ-PGA-FA NPs are a potential targeted drug carrier for further applications in cancer therapy. es
dc.description.sponsorship This study was supported by the International Atomic Energy Agency (CRP-F22064, Contract No. 18358) and the Universidad Autónoma del Estado de México, through the project No. 3543/2013CHT. es
dc.language.iso eng es
dc.publisher Elsevier, Materials Science and Engineering C
dc.relation.ispartofseries DOI;http://dx.doi.org/10.1016/j.msec.2017.03.145
dc.rights openAccess es
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/4.0
dc.subject Folic acid es
dc.subject PLGA nanoparticles es
dc.subject Targeted drug delivery es
dc.subject Multimeric FA nanoparticles es
dc.subject Sustained-release system es
dc.subject.classification BIOLOGÍA Y QUÍMICA
dc.title Biodegradable poly(D,L-lactide-co-glycolide)/poly(L-γ-glutamic acid) nanoparticles conjugated to folic acid for targeted delivery of doxorubicin es
dc.type Artículo es
dc.provenance Científica es
dc.road Dorada es
dc.organismo Química es
dc.ambito Internacional es
dc.cve.CenCos 20401 es
dc.cve.progEstudios 657 es
dc.audience students es
dc.audience researchers es
dc.type.conacyt article
dc.identificator 2


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  • Título
  • Biodegradable poly(D,L-lactide-co-glycolide)/poly(L-γ-glutamic acid) nanoparticles conjugated to folic acid for targeted delivery of doxorubicin
  • Autor
  • JAIMES AGUIRRE, LAURA
  • MORALES AVILA, ENRIQUE
  • OCAMPO GARCIA, BLANCA ELI
  • MEDINA VELAZQUEZ, LUIS ALBERTO
  • LOPEZ TELLEZ, GUSTAVO
  • GIBBENS BANDALA, BRENDA VIANEY
  • IZQUIERDO SANCHEZ, BERTHA VANESSA
  • Fecha de publicación
  • 2017-03-18
  • Editor
  • Elsevier, Materials Science and Engineering C
  • Tipo de documento
  • Artículo
  • Palabras clave
  • Folic acid
  • PLGA nanoparticles
  • Targeted drug delivery
  • Multimeric FA nanoparticles
  • Sustained-release system
  • Los documentos depositados en el Repositorio Institucional de la Universidad Autónoma del Estado de México se encuentran a disposición en Acceso Abierto bajo la licencia Creative Commons: Atribución-NoComercial-SinDerivar 4.0 Internacional (CC BY-NC-ND 4.0)

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