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Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules

[Image: see text] 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 n...

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Autores principales: Iyisan, Banu, Thiramanas, Raweewan, Nazarova, Nadzeya, Avlasevich, Yuri, Mailänder, Volker, Baluschev, Stanislav, Landfester, Katharina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7656512/
https://www.ncbi.nlm.nih.gov/pubmed/32432855
http://dx.doi.org/10.1021/acs.biomac.0c00377
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author Iyisan, Banu
Thiramanas, Raweewan
Nazarova, Nadzeya
Avlasevich, Yuri
Mailänder, Volker
Baluschev, Stanislav
Landfester, Katharina
author_facet Iyisan, Banu
Thiramanas, Raweewan
Nazarova, Nadzeya
Avlasevich, Yuri
Mailänder, Volker
Baluschev, Stanislav
Landfester, Katharina
author_sort Iyisan, Banu
collection PubMed
description [Image: see text] 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.
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spelling pubmed-76565122020-11-12 Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules Iyisan, Banu Thiramanas, Raweewan Nazarova, Nadzeya Avlasevich, Yuri Mailänder, Volker Baluschev, Stanislav Landfester, Katharina Biomacromolecules [Image: see text] 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. American Chemical Society 2020-05-20 2020-11-09 /pmc/articles/PMC7656512/ /pubmed/32432855 http://dx.doi.org/10.1021/acs.biomac.0c00377 Text en This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Iyisan, Banu
Thiramanas, Raweewan
Nazarova, Nadzeya
Avlasevich, Yuri
Mailänder, Volker
Baluschev, Stanislav
Landfester, Katharina
Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules
title Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules
title_full Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules
title_fullStr Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules
title_full_unstemmed Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules
title_short Temperature Sensing in Cells Using Polymeric Upconversion Nanocapsules
title_sort temperature sensing in cells using polymeric upconversion nanocapsules
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7656512/
https://www.ncbi.nlm.nih.gov/pubmed/32432855
http://dx.doi.org/10.1021/acs.biomac.0c00377
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