View : 577 Download: 0

Full metadata record

DC Field Value Language
dc.contributor.author이혁진*
dc.date.accessioned2016-08-28T11:08:44Z-
dc.date.available2016-08-28T11:08:44Z-
dc.date.issued2012*
dc.identifier.issn1748-3387*
dc.identifier.otherOAK-13786*
dc.identifier.urihttps://dspace.ewha.ac.kr/handle/2015.oak/229735-
dc.description.abstractNanoparticles are used for delivering therapeutics into cells. However, size, shape, surface chemistry and the presentation of targeting ligands on the surface of nanoparticles can affect circulation half-life and biodistribution, cell-specific internalization, excretion, toxicity and efficacy. A variety of materials have been explored for delivering small interfering RNAs (siRNAs)ĝa therapeutic agent that suppresses the expression of targeted genes. However, conventional delivery nanoparticles such as liposomes and polymeric systems are heterogeneous in size, composition and surface chemistry, and this can lead to suboptimal performance, a lack of tissue specificity and potential toxicity. Here, we show that self-assembled DNA tetrahedral nanoparticles with a well-defined size can deliver siRNAs into cells and silence target genes in tumours. Monodisperse nanoparticles are prepared through the self-assembly of complementary DNA strands. Because the DNA strands are easily programmable, the size of the nanoparticles and the spatial orientation and density of cancer-targeting ligands (such as peptides and folate) on the nanoparticle surface can be controlled precisely. We show that at least three folate molecules per nanoparticle are required for optimal delivery of the siRNAs into cells and, gene silencing occurs only when the ligands are in the appropriate spatial orientation. In vivo, these nanoparticles showed a longer blood circulation time (t 1/2 24.2 min) than the parent siRNA (t 1/2 6 min).© 2012 Macmillan Publishers Limited.*
dc.languageEnglish*
dc.titleMolecularly self-assembled nucleic acid nanoparticles for targeted in vivo siRNA delivery*
dc.typeArticle*
dc.relation.issue6*
dc.relation.volume7*
dc.relation.indexSCI*
dc.relation.indexSCIE*
dc.relation.indexSCOPUS*
dc.relation.startpage389*
dc.relation.lastpage393*
dc.relation.journaltitleNature Nanotechnology*
dc.identifier.doi10.1038/nnano.2012.73*
dc.identifier.wosidWOS:000305008200013*
dc.identifier.scopusid2-s2.0-84863726330*
dc.author.googleLee H.*
dc.author.googleLytton-Jean A.K.R.*
dc.author.googleChen Y.*
dc.author.googleLove K.T.*
dc.author.googlePark A.I.*
dc.author.googleKaragiannis E.D.*
dc.author.googleSehgal A.*
dc.author.googleQuerbes W.*
dc.author.googleZurenko C.S.*
dc.author.googleJayaraman M.*
dc.author.googlePeng C.G.*
dc.author.googleCharisse K.*
dc.author.googleBorodovsky A.*
dc.author.googleManoharan M.*
dc.author.googleDonahoe J.S.*
dc.author.googleTruelove J.*
dc.author.googleNahrendorf M.*
dc.author.googleLanger R.*
dc.author.googleAnderson D.G.*
dc.contributor.scopusid이혁진(55233457200)*
dc.date.modifydate20240220111730*
Appears in Collections:
약학대학 > 약학과 > Journal papers
Files in This Item:
There are no files associated with this item.
Export
RIS (EndNote)
XLS (Excel)
XML


qrcode

BROWSE