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dc.contributor.authorBertran Cànovas, Òscar
dc.contributor.authorValle Mendoza, Luis Javier del
dc.contributor.authorRevilla López, Guillermo
dc.contributor.authorChaves Barboza, Gustavo Adolfo
dc.contributor.authorCardús Andreu, Lluís
dc.contributor.authorCasas Becerra, María Teresa
dc.contributor.authorCasanovas Salas, Jordi
dc.contributor.authorTurón Dols, Pau
dc.contributor.authorPuiggalí Bellalta, Jordi
dc.contributor.authorAlemán Llansó, Carlos
dc.contributor.otherUniversitat Politècnica de Catalunya. Departament de Física Aplicada
dc.contributor.otherUniversitat Politècnica de Catalunya. Departament d'Enginyeria Química
dc.date.accessioned2014-01-20T16:43:03Z
dc.date.available2014-01-20T16:43:03Z
dc.date.created2014-01-07
dc.date.issued2014-01-07
dc.identifier.citationBertran, O. [et al.]. Mineralization of DNA into nanoparticles of hydroxyapatite. "Dalton transactions", 07 Gener 2014, vol. 43, núm. 1, p. 317-327.
dc.identifier.issn1477-9226
dc.identifier.urihttp://hdl.handle.net/2117/21289
dc.description.abstractEncapsulation of DNA into hydroxyapatite (HAp) has been investigated using a rational approach that involves computer simulation and experimental techniques. The temporal evolution of the radial distribution functions derived from atomistic molecular dynamics simulations of Ca2+, PO4 3− and OH−-containing aqueous solutions in the presence and absence of B-DNA has been used to conclude that the backbone of the double helix acts as a template for HAp growth. More specifically, results reveal the formation of calcium phosphate clusters at the first stages of the simulations, which subsequently reorganize to nucleate HAp. This effect is produced in the absence and, especially, presence, of DNA indicating that the biomolecules do not inhibit but even promote mineral growth. Furthermore, computer simulations suggest that the diffusion of the OH− anions through the inorganic solution is the limiting step for the nucleation of the biomineral. Nanocapsules and crystalline nanorods of HAp containing DNA molecules inside have been prepared by mixing solutions containing Ca2+ and PO4 3− ions with fish sperm DNA at high pH. The dimensions and morphology of such nanostructures have been examined by transmission electron microscopy, while the characterization of the biomineral has been focused on the identification of DNA inside HAp using infrared, X-ray photoelectron and UV-vis spectroscopies, as well as gel electrophoresis. The biominerals reported in this work are important for biomedical applications requiring the protection of DNA from aggressive environmental conditions
dc.format.extent11 p.
dc.language.isoeng
dc.subjectÀrees temàtiques de la UPC::Física
dc.subject.lcshHydroxyapatite
dc.subject.lcshBiomolecules
dc.subject.otherAtomistic molecular dynamics simulations
dc.subject.otherBiomedical applications
dc.subject.otherCrystalline nanorods
dc.subject.otherEnvironmental conditions
dc.subject.otherExperimental techniques
dc.subject.otherHydroxyapatite (HAp)
dc.subject.otherRadial distribution functions
dc.subject.otherX-ray photoelectrons
dc.titleMineralization of DNA into nanoparticles of hydroxyapatite
dc.typeArticle
dc.subject.lemacHidroxiapatita
dc.contributor.groupUniversitat Politècnica de Catalunya. IMEM - Innovació, Modelització i Enginyeria en (BIO) Materials
dc.contributor.groupUniversitat Politècnica de Catalunya. PSEP - Polimers Sintètics: Estructura i Propietats. Polimers Biodegradables
dc.identifier.doi10.1039/c3dt52112e
dc.relation.publisherversionhttp://pubs.rsc.org/en/Content/ArticleLanding/2014/DT/c3dt52112e
dc.rights.accessOpen Access
local.identifier.drac12965765
dc.description.versionPostprint (published version)
local.citation.authorBertran, O.; del Valle, LJ.; Revilla-López, G.; Chaves, G.; Cardus, L.; Casas, M.; Casanovas Salas, Jordi; Turon, P.; Puiggali, J.; Aleman, C.
local.citation.publicationNameDalton transactions
local.citation.volume43
local.citation.number1
local.citation.startingPage317
local.citation.endingPage327


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