2020
Next generation miRNA inhibition using short anti-seed PNAs encapsulated in PLGA nanoparticles
Malik S, Lim J, Slack FJ, Braddock DT, Bahal R. Next generation miRNA inhibition using short anti-seed PNAs encapsulated in PLGA nanoparticles. Journal Of Controlled Release 2020, 327: 406-419. PMID: 32835710, PMCID: PMC7606596, DOI: 10.1016/j.jconrel.2020.08.026.Peer-Reviewed Original ResearchConceptsShort PNA probesPNA probesPLGA nanoparticlesRelease profileNanoparticle formulationNanoparticlesSuperior loadingEfficient transfection efficiencyCationic domainsPotential cancer therapySystemic deliveryTarget proteinsSize distributionProbeTransfection efficiencyMiRNA-155New avenuesPNAUniform distributionProof of conceptCancer therapeuticsCancer therapyReagentsChronic toxicityMicroscopy
2016
A Novel Inherently Radiopaque Bead for Transarterial Embolization to Treat Liver Cancer - A Pre-clinical Study
Duran R, Sharma K, Dreher MR, Ashrafi K, Mirpour S, Lin M, Schernthaner RE, Schlachter TR, Tacher V, Lewis AL, Willis S, Hartog M, Radaelli A, Negussie AH, Wood BJ, Geschwind JF. A Novel Inherently Radiopaque Bead for Transarterial Embolization to Treat Liver Cancer - A Pre-clinical Study. Theranostics 2016, 6: 28-39. PMID: 26722371, PMCID: PMC4679352, DOI: 10.7150/thno.13137.Peer-Reviewed Original ResearchConceptsEquilibrium water contentDurable suspensionLower equilibrium water contentPhysicomechanical propertiesBead locationSingle shotBead sizeSize distributionSimilar penetrationSimilar size distributionX-ray attenuationBead typesWater contentDeliverabilityBeadsLC beadsHigh densitySuspension timePenetrationCone-beam CTDensityRoMicroshperesSuspensionNon-target arteries
2014
Comparison of three nanoparticle sizing instruments: The influence of particle morphology
Zimmerman N, Pollitt K, Jeong C, Wang J, Jung T, Cooper J, Wallace J, Evans G. Comparison of three nanoparticle sizing instruments: The influence of particle morphology. Atmospheric Environment 2014, 86: 140-147. DOI: 10.1016/j.atmosenv.2013.12.023.Peer-Reviewed Original ResearchEngine Exhaust Particle SizerFast mobility particle sizerScanning mobility particle sizerMobility particle sizerParticle sizerSoot particulatesTSI Fast Mobility Particle SizerSizing instrumentsDiesel soot particulatesNear-road measurementsUltrafine condensation particle counterCondensation particle counterParticle sizing instrumentsAgglomerate natureAgglomerate particlesTransmission electron microscopyParticle concentrationParticle morphologyParticle counterSize distributionSizerElectron microscopyParticulatesExhaust particulatesParticles
2012
Contact percolation transition in athermal particulate systems
Shen T, O'Hern CS, Shattuck MD. Contact percolation transition in athermal particulate systems. Physical Review E 2012, 85: 011308. PMID: 22400566, DOI: 10.1103/physreve.85.011308.Peer-Reviewed Original ResearchConceptsBidisperse particle size distributionsPercolation transitionCompression stepParticle size distributionMechanical responseSystem-spanning clusterDisplacement fieldDilute configurationsApplied stressCooperative particle motionParticle motionIsotropic compressionPercolating networkParticulate systemsElastic energyFrictionless particlesTwo-dimensional systemsUnjammed stateSize distributionDynamical matrixJammed systemsAdjacency matrixSuccessive compressionSpatial dimensionsComputer simulations
2001
A simple direct preparation of nanocrystalline γ-Mn2O3 at ambient temperature
Gui Z, Fan R, Chen X, Wu Y. A simple direct preparation of nanocrystalline γ-Mn2O3 at ambient temperature. Inorganic Chemistry Communications 2001, 4: 294-296. DOI: 10.1016/s1387-7003(01)00196-4.Peer-Reviewed Original ResearchTransmission electron microscopy imagesNarrow size distributionΓ-Mn2O3Concentration of N2H4Electron microscopy imagesHomogeneous nanoparticlesCrystallite sizeAqueous KMnO4Good phase purityHydrazine solutionMicroscopy imagesPhase purityAverage grain sizeAnnealing temperatureX-ray powder diffraction patternsSize distributionDiffraction patternsDirect preparationAmbient temperatureGrain sizeNanoparticlesReaction factorsPowder diffraction patternsSizeTemperature
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