2025
Biomechanics of soft biological tissues and organs, mechanobiology, homeostasis and modelling
Holzapfel G, Humphrey J, Ogden R. Biomechanics of soft biological tissues and organs, mechanobiology, homeostasis and modelling. Journal Of The Royal Society Interface 2025, 22: 20240361. PMID: 39876788, PMCID: PMC11775666, DOI: 10.1098/rsif.2024.0361.Peer-Reviewed Original ResearchConceptsSoft biological tissuesConstitutive relationsLoad-bearing soft tissuesNonlinear stress analysisMethods of continuum mechanicsInelastic constitutive relationsBiomechanics of soft biological tissueDiverse loading conditionsBiological tissuesConstitutive formulationLocal mechanical environmentMechanical behaviorStress analysisLoading conditionsContinuum mechanicsMechanical responseDiverse microstructuresMulti-axialMechanical environmentMechanobiologyTissue propertiesBiomechanical studiesClinical interventionsExperimental findingsMicrostructure
2024
Multiscale homogenized constrained mixture model of the bio-chemo-mechanics of soft tissue growth and remodeling
Paukner D, Humphrey J, Cyron C. Multiscale homogenized constrained mixture model of the bio-chemo-mechanics of soft tissue growth and remodeling. Biomechanics And Modeling In Mechanobiology 2024, 23: 2115-2136. PMID: 39419845, PMCID: PMC11554721, DOI: 10.1007/s10237-024-01884-w.Peer-Reviewed Original ResearchConstrained mixture modelsNonlinear continuum mechanicsSoft biological tissuesChemo-mechanical interactionsSolid mechanicsChemo-mechanical couplingContinuum mechanicsOrdinary differential equationsSignal processingBiological tissuesMixture modelDifferential equationsEquationsSimulate many casesTissue growthOrgan-scale
2022
A photoacoustic patch for three-dimensional imaging of hemoglobin and core temperature
Gao X, Chen X, Hu H, Wang X, Yue W, Mu J, Lou Z, Zhang R, Shi K, Chen X, Lin M, Qi B, Zhou S, Lu C, Gu Y, Yang X, Ding H, Zhu Y, Huang H, Ma Y, Li M, Mishra A, Wang J, Xu S. A photoacoustic patch for three-dimensional imaging of hemoglobin and core temperature. Nature Communications 2022, 13: 7757. PMID: 36522334, PMCID: PMC9755152, DOI: 10.1038/s41467-022-35455-3.Peer-Reviewed Original ResearchConceptsVertical-cavity surface-emitting lasersArray of ultrasonic transducersSurface-emitting lasersWearable electronicsVCSEL diodeUltrasonic transducersVertical-cavityPhotoacoustic signal amplitudeMonitoring of biomoleculesFast responseElectronic patchSoft substratesAcoustic wavesLaser pulsesSignal amplitudeBiological tissuesThree-dimensionalDiodesSpatial resolutionTemperatureTransducerSurface3D Bioprinting Using Hydrogels: Cell Inks and Tissue Engineering Applications
Dell A, Wagner G, Own J, Geibel J. 3D Bioprinting Using Hydrogels: Cell Inks and Tissue Engineering Applications. Pharmaceutics 2022, 14: 2596. PMID: 36559090, PMCID: PMC9784738, DOI: 10.3390/pharmaceutics14122596.Peer-Reviewed Original ResearchTissue engineering applicationsPrintable formulationsBioprinting processEngineering applicationsProcess optimizationBioprinting methodInk formulationTissue engineeringTailorable materialsBioprintingBiomedical applicationsBiological tissuesHydrogelsNew hydrogelsInkPromising optionNovel methodApplicationsBiological applicationsFormulationVariety of techniquesEngineeringMethodMaterials
2021
3D super-resolution deep-tissue imaging in living mice
Velasco MGM, Zhang M, Antonello J, Yuan P, Allgeyer ES, May D, M’Saad O, Kidd P, Barentine AES, Greco V, Grutzendler J, Booth MJ, Bewersdorf J. 3D super-resolution deep-tissue imaging in living mice. Optica 2021, 8: 442-450. PMID: 34239948, PMCID: PMC8243577, DOI: 10.1364/optica.416841.Peer-Reviewed Original ResearchWater-immersion objective lensTwo-photon excitationSuper-resolution imagingEmission depletion (STED) microscopyAdaptive opticsSTED systemObjective lensOptical aberrationsDepletion microscopyBiological tissuesNanoscale structuresLiving mouseOrganic dyesOpticsSTEDExcitationMouse brain tissueLiving cellsThree-dimensional visualizationMicroscopyLightUnique insightsImagingLens
2015
Superconductor Analog-to-Digital Converter for High-Resolution Magnetic Resonance Imaging
Radparvar M, Talalaevskii A, Webber R, Kadin A, Track E, de Graaf R, Nixon T, Rothman D. Superconductor Analog-to-Digital Converter for High-Resolution Magnetic Resonance Imaging. IEEE Transactions On Applied Superconductivity 2015, 25: 1-5. DOI: 10.1109/tasc.2014.2361132.Peer-Reviewed Original ResearchSuperconductor ADCHigh power RF transmittersDigital converterHigh dynamic rangeDynamic rangeIntermediate frequency signalSensitive radio receiversMagnetic fieldLow-noise preamplifierK cryocoolerPickup coilRF magnetic fieldFrequency signalsAnalog mixersSuperconductor analogRadio receiverRF transmitterHigh image resolutionSuperior dynamic rangeLarge dynamic rangeLarge static fieldMRI roomConverterBiological tissuesThermal noise
2014
Dual-wavelength band spectroscopic optical frequency domain imaging using plasmon-resonant scattering in metallic nanoparticles.
Kim T, Jang S, Oh N, Kim Y, Park T, Park J, Oh W. Dual-wavelength band spectroscopic optical frequency domain imaging using plasmon-resonant scattering in metallic nanoparticles. Optics Letters 2014, 39: 3082-5. PMID: 24978279, DOI: 10.1364/ol.39.003082.Peer-Reviewed Original ResearchConceptsMetallic nanoparticlesOptical frequency domain imaging systemHigh-resolution spectroscopicOptical frequency domain imagingFrequency domain imagingExogenous contrast agentsScattering sampleElastic scatteringWavelength bandNonspherical nanoparticlesDomain imagingNanoparticlesImaging systemBiological tissuesContrast agentsScatteringSpectroscopicBandLocal increaseImaging
This site is protected by hCaptcha and its Privacy Policy and Terms of Service apply