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Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging

Distance-dependent magnetic resonance tuning (MRET) technology enables the sensing and quantitative imaging of biological targets in vivo, with the advantage of deep tissue penetration and less interactions with the surroundings as compared to fluorescence-based Förster resonance energy transfer (FR...

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Autores principales: Wang, Zhongling, Xue, Xiangdong, Lu, Hongwei, He, Yixuan, Lu, Ziwei, Chen, Zhijie, Yuan, Ye, Tang, Na, Dreyer, Courtney A., Quigley, Lizabeth, Curro, Nicholas, Lam, Kit S., Walton, Jeffrey H., Lin, Tzu-yin, Louie, Angelique Y., Gilbert, Dustin A., Liu, Kai, Ferrara, Katherine W., Li, Yuanpei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7307456/
https://www.ncbi.nlm.nih.gov/pubmed/32451501
http://dx.doi.org/10.1038/s41565-020-0678-5
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author Wang, Zhongling
Xue, Xiangdong
Lu, Hongwei
He, Yixuan
Lu, Ziwei
Chen, Zhijie
Yuan, Ye
Tang, Na
Dreyer, Courtney A.
Quigley, Lizabeth
Curro, Nicholas
Lam, Kit S.
Walton, Jeffrey H.
Lin, Tzu-yin
Louie, Angelique Y.
Gilbert, Dustin A.
Liu, Kai
Ferrara, Katherine W.
Li, Yuanpei
author_facet Wang, Zhongling
Xue, Xiangdong
Lu, Hongwei
He, Yixuan
Lu, Ziwei
Chen, Zhijie
Yuan, Ye
Tang, Na
Dreyer, Courtney A.
Quigley, Lizabeth
Curro, Nicholas
Lam, Kit S.
Walton, Jeffrey H.
Lin, Tzu-yin
Louie, Angelique Y.
Gilbert, Dustin A.
Liu, Kai
Ferrara, Katherine W.
Li, Yuanpei
author_sort Wang, Zhongling
collection PubMed
description Distance-dependent magnetic resonance tuning (MRET) technology enables the sensing and quantitative imaging of biological targets in vivo, with the advantage of deep tissue penetration and less interactions with the surroundings as compared to fluorescence-based Förster resonance energy transfer (FRET). However, applications of MRET technology in vivo are currently limited by the moderate contrast enhancement and stability of T(1)-based MRET probes. Here we report a new two-way magnetic resonance tuning (t-MRET) nanoprobe with dually activatable T(1) and T(2) magnetic resonance signals that is coupled with dual-contrast enhanced subtraction imaging (DESI). This integrated platform achieves substantially improved contrast enhancement with minimal background signal and can be used to quantitatively image molecular targets in tumours and to sensitively detect very small intracranial brain tumours in patient-derived xenograft models. The high tumour-to-normal tissue ratio offered by t-MRET in combination with DESI provides new opportunities for molecular diagnostics and image-guided biomedical applications.
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spelling pubmed-73074562020-11-25 Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging Wang, Zhongling Xue, Xiangdong Lu, Hongwei He, Yixuan Lu, Ziwei Chen, Zhijie Yuan, Ye Tang, Na Dreyer, Courtney A. Quigley, Lizabeth Curro, Nicholas Lam, Kit S. Walton, Jeffrey H. Lin, Tzu-yin Louie, Angelique Y. Gilbert, Dustin A. Liu, Kai Ferrara, Katherine W. Li, Yuanpei Nat Nanotechnol Article Distance-dependent magnetic resonance tuning (MRET) technology enables the sensing and quantitative imaging of biological targets in vivo, with the advantage of deep tissue penetration and less interactions with the surroundings as compared to fluorescence-based Förster resonance energy transfer (FRET). However, applications of MRET technology in vivo are currently limited by the moderate contrast enhancement and stability of T(1)-based MRET probes. Here we report a new two-way magnetic resonance tuning (t-MRET) nanoprobe with dually activatable T(1) and T(2) magnetic resonance signals that is coupled with dual-contrast enhanced subtraction imaging (DESI). This integrated platform achieves substantially improved contrast enhancement with minimal background signal and can be used to quantitatively image molecular targets in tumours and to sensitively detect very small intracranial brain tumours in patient-derived xenograft models. The high tumour-to-normal tissue ratio offered by t-MRET in combination with DESI provides new opportunities for molecular diagnostics and image-guided biomedical applications. 2020-05-25 2020-06 /pmc/articles/PMC7307456/ /pubmed/32451501 http://dx.doi.org/10.1038/s41565-020-0678-5 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Wang, Zhongling
Xue, Xiangdong
Lu, Hongwei
He, Yixuan
Lu, Ziwei
Chen, Zhijie
Yuan, Ye
Tang, Na
Dreyer, Courtney A.
Quigley, Lizabeth
Curro, Nicholas
Lam, Kit S.
Walton, Jeffrey H.
Lin, Tzu-yin
Louie, Angelique Y.
Gilbert, Dustin A.
Liu, Kai
Ferrara, Katherine W.
Li, Yuanpei
Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging
title Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging
title_full Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging
title_fullStr Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging
title_full_unstemmed Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging
title_short Two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging
title_sort two-way magnetic resonance tuning and enhanced subtraction imaging for non-invasive and quantitative biological imaging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7307456/
https://www.ncbi.nlm.nih.gov/pubmed/32451501
http://dx.doi.org/10.1038/s41565-020-0678-5
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