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Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors

[Image: see text] The viscoelasticity of the cytoplasm plays a critical role in cell morphology, cell division, and intracellular transport. Viscoelasticity is also interconnected with other biophysical properties, such as temperature, which is known to influence cellular bioenergetics. Probing the...

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Autores principales: Gu, Qiushi, Shanahan, Louise, Hart, Jack W., Belser, Sophia, Shofer, Noah, Atatüre, Mete, Knowles, Helena S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10604098/
https://www.ncbi.nlm.nih.gov/pubmed/37791968
http://dx.doi.org/10.1021/acsnano.3c05285
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author Gu, Qiushi
Shanahan, Louise
Hart, Jack W.
Belser, Sophia
Shofer, Noah
Atatüre, Mete
Knowles, Helena S.
author_facet Gu, Qiushi
Shanahan, Louise
Hart, Jack W.
Belser, Sophia
Shofer, Noah
Atatüre, Mete
Knowles, Helena S.
author_sort Gu, Qiushi
collection PubMed
description [Image: see text] The viscoelasticity of the cytoplasm plays a critical role in cell morphology, cell division, and intracellular transport. Viscoelasticity is also interconnected with other biophysical properties, such as temperature, which is known to influence cellular bioenergetics. Probing the connections between intracellular temperature and cytoplasmic viscoelasticity provides an exciting opportunity for the study of biological phenomena, such as metabolism and disease progression. The small length scales and transient nature of changes in these parameters combined with their complex interdependencies pose a challenge for biosensing tools, which are often limited to a single readout modality. Here, we present a dual-mode quantum sensor capable of performing simultaneous nanoscale thermometry and rheometry in dynamic cellular environments. We use nitrogen-vacancy centers in diamond nanocrystals as biocompatible sensors for in vitro measurements. We combine subdiffraction resolution single-particle tracking in a fluidic environment with optically detected magnetic resonance spectroscopy to perform simultaneous sensing of viscoelasticity and temperature. We use our sensor to demonstrate probing of the temperature-dependent viscoelasticity in complex media at the nanoscale. We then investigate the interplay between intracellular forces and the cytoplasmic rheology in live cells. Finally, we identify different rheological regimes and reveal evidence of active trafficking and details of the nanoscale viscoelasticity of the cytoplasm.
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spelling pubmed-106040982023-10-28 Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors Gu, Qiushi Shanahan, Louise Hart, Jack W. Belser, Sophia Shofer, Noah Atatüre, Mete Knowles, Helena S. ACS Nano [Image: see text] The viscoelasticity of the cytoplasm plays a critical role in cell morphology, cell division, and intracellular transport. Viscoelasticity is also interconnected with other biophysical properties, such as temperature, which is known to influence cellular bioenergetics. Probing the connections between intracellular temperature and cytoplasmic viscoelasticity provides an exciting opportunity for the study of biological phenomena, such as metabolism and disease progression. The small length scales and transient nature of changes in these parameters combined with their complex interdependencies pose a challenge for biosensing tools, which are often limited to a single readout modality. Here, we present a dual-mode quantum sensor capable of performing simultaneous nanoscale thermometry and rheometry in dynamic cellular environments. We use nitrogen-vacancy centers in diamond nanocrystals as biocompatible sensors for in vitro measurements. We combine subdiffraction resolution single-particle tracking in a fluidic environment with optically detected magnetic resonance spectroscopy to perform simultaneous sensing of viscoelasticity and temperature. We use our sensor to demonstrate probing of the temperature-dependent viscoelasticity in complex media at the nanoscale. We then investigate the interplay between intracellular forces and the cytoplasmic rheology in live cells. Finally, we identify different rheological regimes and reveal evidence of active trafficking and details of the nanoscale viscoelasticity of the cytoplasm. American Chemical Society 2023-10-04 /pmc/articles/PMC10604098/ /pubmed/37791968 http://dx.doi.org/10.1021/acsnano.3c05285 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Gu, Qiushi
Shanahan, Louise
Hart, Jack W.
Belser, Sophia
Shofer, Noah
Atatüre, Mete
Knowles, Helena S.
Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors
title Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors
title_full Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors
title_fullStr Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors
title_full_unstemmed Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors
title_short Simultaneous Nanorheometry and Nanothermometry Using Intracellular Diamond Quantum Sensors
title_sort simultaneous nanorheometry and nanothermometry using intracellular diamond quantum sensors
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10604098/
https://www.ncbi.nlm.nih.gov/pubmed/37791968
http://dx.doi.org/10.1021/acsnano.3c05285
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