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A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses

COVID‐19 pandemic, caused by severe acute respiratory syndrome coronavirus 2, has resulted in global social and economic disruption, putting the world economy to the largest global recession since the Great Depression. To control the spread of COVID‐19, cutting off the transmission route is a critic...

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Autores principales: Wu, Ming‐Yu, Gu, Meijia, Leung, Jong‐Kai, Li, Xinmei, Yuan, Yuncong, Shen, Chao, Wang, Lianrong, Zhao, Engui, Chen, Sijie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8420407/
https://www.ncbi.nlm.nih.gov/pubmed/34190409
http://dx.doi.org/10.1002/smll.202101770
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author Wu, Ming‐Yu
Gu, Meijia
Leung, Jong‐Kai
Li, Xinmei
Yuan, Yuncong
Shen, Chao
Wang, Lianrong
Zhao, Engui
Chen, Sijie
author_facet Wu, Ming‐Yu
Gu, Meijia
Leung, Jong‐Kai
Li, Xinmei
Yuan, Yuncong
Shen, Chao
Wang, Lianrong
Zhao, Engui
Chen, Sijie
author_sort Wu, Ming‐Yu
collection PubMed
description COVID‐19 pandemic, caused by severe acute respiratory syndrome coronavirus 2, has resulted in global social and economic disruption, putting the world economy to the largest global recession since the Great Depression. To control the spread of COVID‐19, cutting off the transmission route is a critical step. In this work, the efficient inactivation of human coronavirus with photodynamic therapy (PDT) by employing photosensitizers with aggregation‐induced emission characteristics (DTTPB) is reported. DTTPB is designed to bear a hydrophilic head and two hydrophobic tails, mimicking the structure of phospholipids on biological membranes. DTTPB demonstrates a broad absorption band covering the whole visible light range and high molar absorptivity, as well as excellent reactive oxygen species sensitizing ability, making it an excellent candidate for PDT. Besides, DTTPB can target membrane structure, and bind to the envelope of human coronaviruses. Upon light irradiation, DTTPB demonstrates highly effective antiviral behavior: human coronavirus treated with DTTPB and white‐light irradiation can be efficiently inactivated with complete loss of infectivity, as revealed by the significant decrease of virus RNA and proteins in host cells. Thus, DTTPB sensitized PDT can efficiently prevent the infection and the spread of human coronavirus, which provides a new avenue for photodynamic combating of COVID‐19.
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spelling pubmed-84204072021-09-07 A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses Wu, Ming‐Yu Gu, Meijia Leung, Jong‐Kai Li, Xinmei Yuan, Yuncong Shen, Chao Wang, Lianrong Zhao, Engui Chen, Sijie Small Research Articles COVID‐19 pandemic, caused by severe acute respiratory syndrome coronavirus 2, has resulted in global social and economic disruption, putting the world economy to the largest global recession since the Great Depression. To control the spread of COVID‐19, cutting off the transmission route is a critical step. In this work, the efficient inactivation of human coronavirus with photodynamic therapy (PDT) by employing photosensitizers with aggregation‐induced emission characteristics (DTTPB) is reported. DTTPB is designed to bear a hydrophilic head and two hydrophobic tails, mimicking the structure of phospholipids on biological membranes. DTTPB demonstrates a broad absorption band covering the whole visible light range and high molar absorptivity, as well as excellent reactive oxygen species sensitizing ability, making it an excellent candidate for PDT. Besides, DTTPB can target membrane structure, and bind to the envelope of human coronaviruses. Upon light irradiation, DTTPB demonstrates highly effective antiviral behavior: human coronavirus treated with DTTPB and white‐light irradiation can be efficiently inactivated with complete loss of infectivity, as revealed by the significant decrease of virus RNA and proteins in host cells. Thus, DTTPB sensitized PDT can efficiently prevent the infection and the spread of human coronavirus, which provides a new avenue for photodynamic combating of COVID‐19. John Wiley and Sons Inc. 2021-06-30 2021-07-28 /pmc/articles/PMC8420407/ /pubmed/34190409 http://dx.doi.org/10.1002/smll.202101770 Text en © 2021 The Authors. Small published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Wu, Ming‐Yu
Gu, Meijia
Leung, Jong‐Kai
Li, Xinmei
Yuan, Yuncong
Shen, Chao
Wang, Lianrong
Zhao, Engui
Chen, Sijie
A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses
title A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses
title_full A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses
title_fullStr A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses
title_full_unstemmed A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses
title_short A Membrane‐Targeting Photosensitizer with Aggregation‐Induced Emission Characteristics for Highly Efficient Photodynamic Combat of Human Coronaviruses
title_sort membrane‐targeting photosensitizer with aggregation‐induced emission characteristics for highly efficient photodynamic combat of human coronaviruses
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8420407/
https://www.ncbi.nlm.nih.gov/pubmed/34190409
http://dx.doi.org/10.1002/smll.202101770
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