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RESEARCH PRODUCT
Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules
Nadzeya V. NazarovaRaweewan ThiramanasYuri AvlasevichVolker MailänderVolker MailänderStanislav BaluschevStanislav BaluschevKatharina LandfesterBanu Iyisansubject
Materials sciencePolymers and PlasticsPolymerschemistry.chemical_elementBioengineering02 engineering and technology010402 general chemistry01 natural sciencesOxygenArticleFluorescenceNanocapsulesBiomaterialsNanocapsulesMaterials ChemistryHumanschemistry.chemical_classificationTemperatureRice bran oilPolymer021001 nanoscience & nanotechnologyFluorescencePhoton upconversion0104 chemical sciences3. Good healthMiniemulsionChemical engineeringchemistryLimiting oxygen concentration0210 nano-technologyHeLa Cellsdescription
Monitoring local temperature inside cells is crucial when interpreting biological activities as enhanced cellular metabolism leads to higher heat production and is commonly correlated with the presence of diseases such as cancer. In this study, we report on polymeric upconversion nanocapsules for potential use as local nanothermometers in cells by exploiting the temperature dependence of the triplet-triplet annihilation upconversion phenomenon. Nanocapsules synthesized by the miniemulsion solvent evaporation technique are composed of a polymer shell and a liquid core of rice bran oil, hosting triplet-triplet annihilation upconversion active dyes as sensitizer and emitter molecules. The sensitivity of the triplet-triplet annihilation upconversion to the local oxygen concentration was overcome by the oxygen reduction ability of the rice bran oil core. The triplet-triplet annihilation upconversion process could thus successfully be applied at different levels of oxygen presence including at ambient conditions. Using this method, the local temperature within a range of 22 to 40 °C could be determined when the upconversion nanocapsules were taken up by HeLa cells with good cellular viability. Thus, the higher cell temperatures where the cells show enhanced metabolic activity led to a significant increase in the delayed fluorescence spectrum of the upconversion nanocapsules. These findings are promising for further development of novel treatment and diagnostic tools in medicine.
year | journal | country | edition | language |
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2020-05-01 |