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FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells

[Image: see text] Vitamin E plays an exemplary role in living organisms. α-Tocopherol is the most superior and active form of naturally occurring vitamin E that meets the requirements of human beings as it possesses the α-tocopherol transfer protein (α-TTP). α-Tocopherol deficiency can lead to sever...

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Autores principales: Kausar, Habiba, Ambrin, Ghazala, Okla, Mohammad K., Alamri, Saud A., Soufan, Walid H., Ibrahim, Eid I., Abdel-Maksoud, Mostafa A., Ahmad, Altaf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8028167/
https://www.ncbi.nlm.nih.gov/pubmed/33842772
http://dx.doi.org/10.1021/acsomega.1c00041
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author Kausar, Habiba
Ambrin, Ghazala
Okla, Mohammad K.
Alamri, Saud A.
Soufan, Walid H.
Ibrahim, Eid I.
Abdel-Maksoud, Mostafa A.
Ahmad, Altaf
author_facet Kausar, Habiba
Ambrin, Ghazala
Okla, Mohammad K.
Alamri, Saud A.
Soufan, Walid H.
Ibrahim, Eid I.
Abdel-Maksoud, Mostafa A.
Ahmad, Altaf
author_sort Kausar, Habiba
collection PubMed
description [Image: see text] Vitamin E plays an exemplary role in living organisms. α-Tocopherol is the most superior and active form of naturally occurring vitamin E that meets the requirements of human beings as it possesses the α-tocopherol transfer protein (α-TTP). α-Tocopherol deficiency can lead to severe anemia, certain cancers, several neurodegenerative and cardiovascular diseases, and most importantly male infertility. As a result of the depletion of its natural sources, researchers have tried to employ metabolic engineering to enhance α-tocopherol production to meet the human consumption demand. However, the metabolic engineering approach relies on the metabolic flux of a metabolite in its biosynthetic pathway. Analysis of the metabolic flux of a metabolite needs a method that can monitor the α-tocopherol level in living cells. This study was undertaken to construct a FRET (fluorescence resonance energy transfer)-based nanosensor for monitoring the α-tocopherol flux in prokaryotic and eukaryotic living cells. The human α-TTP was sandwiched between a pair of FRET fluorophores to construct the nanosensor, which was denoted as FLIP-α (the fluorescence indicator for α-tocopherol). FLIP-α showed excellence in monitoring the α-tocopherol flux with high specificity. The sensor was examined for its pH stability for physiological applications, where it shows no pH hindrance to its activity. The calculated affinity of this nanosensor was 100 μM. It monitored the real-time flux of α-tocopherol in bacterial and yeast cells, proving its biocompatibility in monitoring the α-tocopherol dynamics in living cells. Being noninvasive, FLIP-α provides high temporal and spatial resolutions, which holds an indispensable significance in bioimaging metabolic pathways that are highly compartmentalized.
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spelling pubmed-80281672021-04-09 FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells Kausar, Habiba Ambrin, Ghazala Okla, Mohammad K. Alamri, Saud A. Soufan, Walid H. Ibrahim, Eid I. Abdel-Maksoud, Mostafa A. Ahmad, Altaf ACS Omega [Image: see text] Vitamin E plays an exemplary role in living organisms. α-Tocopherol is the most superior and active form of naturally occurring vitamin E that meets the requirements of human beings as it possesses the α-tocopherol transfer protein (α-TTP). α-Tocopherol deficiency can lead to severe anemia, certain cancers, several neurodegenerative and cardiovascular diseases, and most importantly male infertility. As a result of the depletion of its natural sources, researchers have tried to employ metabolic engineering to enhance α-tocopherol production to meet the human consumption demand. However, the metabolic engineering approach relies on the metabolic flux of a metabolite in its biosynthetic pathway. Analysis of the metabolic flux of a metabolite needs a method that can monitor the α-tocopherol level in living cells. This study was undertaken to construct a FRET (fluorescence resonance energy transfer)-based nanosensor for monitoring the α-tocopherol flux in prokaryotic and eukaryotic living cells. The human α-TTP was sandwiched between a pair of FRET fluorophores to construct the nanosensor, which was denoted as FLIP-α (the fluorescence indicator for α-tocopherol). FLIP-α showed excellence in monitoring the α-tocopherol flux with high specificity. The sensor was examined for its pH stability for physiological applications, where it shows no pH hindrance to its activity. The calculated affinity of this nanosensor was 100 μM. It monitored the real-time flux of α-tocopherol in bacterial and yeast cells, proving its biocompatibility in monitoring the α-tocopherol dynamics in living cells. Being noninvasive, FLIP-α provides high temporal and spatial resolutions, which holds an indispensable significance in bioimaging metabolic pathways that are highly compartmentalized. American Chemical Society 2021-03-23 /pmc/articles/PMC8028167/ /pubmed/33842772 http://dx.doi.org/10.1021/acsomega.1c00041 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Kausar, Habiba
Ambrin, Ghazala
Okla, Mohammad K.
Alamri, Saud A.
Soufan, Walid H.
Ibrahim, Eid I.
Abdel-Maksoud, Mostafa A.
Ahmad, Altaf
FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells
title FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells
title_full FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells
title_fullStr FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells
title_full_unstemmed FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells
title_short FRET-Based Genetically Encoded Nanosensor for Real-Time Monitoring of the Flux of α-Tocopherol in Living Cells
title_sort fret-based genetically encoded nanosensor for real-time monitoring of the flux of α-tocopherol in living cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8028167/
https://www.ncbi.nlm.nih.gov/pubmed/33842772
http://dx.doi.org/10.1021/acsomega.1c00041
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