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Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform

Photothermal nanotheranostics, especially in the near infrared II (NIR-II) region, exhibits a great potential in precision and personalized medicine, owing to high tissue penetration of NIR-II light. NIR-II-photothermal nanoplatforms with high biocompatibility as well as high photothermal effect are...

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Autores principales: Ling, Xiang, Jin, Zhaokui, Jiang, Qi, Wang, Xiaotao, Wei, Bin, Wang, Zhongchang, Xu, Yangsen, Cao, Tianye, Engle, Jonathan W, Cai, Weibo, Su, Chenliang, He, Qianjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8274553/
https://www.ncbi.nlm.nih.gov/pubmed/34262791
http://dx.doi.org/10.1093/nsr/nwaa156
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author Ling, Xiang
Jin, Zhaokui
Jiang, Qi
Wang, Xiaotao
Wei, Bin
Wang, Zhongchang
Xu, Yangsen
Cao, Tianye
Engle, Jonathan W
Cai, Weibo
Su, Chenliang
He, Qianjun
author_facet Ling, Xiang
Jin, Zhaokui
Jiang, Qi
Wang, Xiaotao
Wei, Bin
Wang, Zhongchang
Xu, Yangsen
Cao, Tianye
Engle, Jonathan W
Cai, Weibo
Su, Chenliang
He, Qianjun
author_sort Ling, Xiang
collection PubMed
description Photothermal nanotheranostics, especially in the near infrared II (NIR-II) region, exhibits a great potential in precision and personalized medicine, owing to high tissue penetration of NIR-II light. NIR-II-photothermal nanoplatforms with high biocompatibility as well as high photothermal effect are urgently needed but rarely reported so far. Te nanomaterials possess high absorbance to NIR-II light but also exhibit high cytotoxicity, impeding their biomedical applications. In this work, the controllable incorporation of biocompatible Se into the lattice of Te nanostructures is proposed to intrinsically tune their inherent cytotoxicity and enhance their biocompatibility, developing TeSe(x) nano-alloys as a new kind of theranostic nanoplatform. We have uncovered that the cytotoxicity of Te nanomaterials primarily derives from irreversible oxidation stress and intracellular imbalance of organization and energy, and can be eliminated by incorporating a moderate proportion of Se (x = 0.43). We have also discovered that the as-prepared TeSe(x) nano-alloys have extraordinarily high NIR-II-photothermal conversion efficiency (77.2%), (64)Cu coordination and computed tomography contrast capabilities, enabling high-efficacy multimodal photothermal/photoacoustic/positron emission tomography/computed tomography imaging-guided NIR-II-photothermal therapy of cancer. The proposed nano-alloying strategy provides a new route to improve the biocompatibility of biomedical nanoplatforms and endow them with versatile theranostic functions.
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spelling pubmed-82745532021-10-21 Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform Ling, Xiang Jin, Zhaokui Jiang, Qi Wang, Xiaotao Wei, Bin Wang, Zhongchang Xu, Yangsen Cao, Tianye Engle, Jonathan W Cai, Weibo Su, Chenliang He, Qianjun Natl Sci Rev Materials Science Photothermal nanotheranostics, especially in the near infrared II (NIR-II) region, exhibits a great potential in precision and personalized medicine, owing to high tissue penetration of NIR-II light. NIR-II-photothermal nanoplatforms with high biocompatibility as well as high photothermal effect are urgently needed but rarely reported so far. Te nanomaterials possess high absorbance to NIR-II light but also exhibit high cytotoxicity, impeding their biomedical applications. In this work, the controllable incorporation of biocompatible Se into the lattice of Te nanostructures is proposed to intrinsically tune their inherent cytotoxicity and enhance their biocompatibility, developing TeSe(x) nano-alloys as a new kind of theranostic nanoplatform. We have uncovered that the cytotoxicity of Te nanomaterials primarily derives from irreversible oxidation stress and intracellular imbalance of organization and energy, and can be eliminated by incorporating a moderate proportion of Se (x = 0.43). We have also discovered that the as-prepared TeSe(x) nano-alloys have extraordinarily high NIR-II-photothermal conversion efficiency (77.2%), (64)Cu coordination and computed tomography contrast capabilities, enabling high-efficacy multimodal photothermal/photoacoustic/positron emission tomography/computed tomography imaging-guided NIR-II-photothermal therapy of cancer. The proposed nano-alloying strategy provides a new route to improve the biocompatibility of biomedical nanoplatforms and endow them with versatile theranostic functions. Oxford University Press 2020-07-06 /pmc/articles/PMC8274553/ /pubmed/34262791 http://dx.doi.org/10.1093/nsr/nwaa156 Text en © The Author(s) 2020. Published by Oxford University Press on behalf of China Science Publishing & Media Ltd. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Materials Science
Ling, Xiang
Jin, Zhaokui
Jiang, Qi
Wang, Xiaotao
Wei, Bin
Wang, Zhongchang
Xu, Yangsen
Cao, Tianye
Engle, Jonathan W
Cai, Weibo
Su, Chenliang
He, Qianjun
Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform
title Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform
title_full Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform
title_fullStr Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform
title_full_unstemmed Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform
title_short Engineering biocompatible TeSe(x) nano-alloys as a versatile theranostic nanoplatform
title_sort engineering biocompatible tese(x) nano-alloys as a versatile theranostic nanoplatform
topic Materials Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8274553/
https://www.ncbi.nlm.nih.gov/pubmed/34262791
http://dx.doi.org/10.1093/nsr/nwaa156
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