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Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer

Extracellular vesicles (EVs) are cell-derived, membranous nanoparticles that mediate intercellular communication by transferring biomolecules between cells. As natural vehicles, EVs may exhibit higher delivery efficiency, lower immunogenicity, and better compatibility than existing RNA carriers. A m...

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Autores principales: Diao, Yanjun, Wang, Gangqiang, Zhu, Bingbing, Li, Zhuo, Wang, Shan, Yu, Lijuan, Li, Rui, Fan, Weixiao, Zhang, Yue, Zhou, Lei, Yang, Liu, Hao, Xiaoke, Liu, Jiayun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8855870/
https://www.ncbi.nlm.nih.gov/pubmed/35171081
http://dx.doi.org/10.1080/15384047.2021.2024040
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author Diao, Yanjun
Wang, Gangqiang
Zhu, Bingbing
Li, Zhuo
Wang, Shan
Yu, Lijuan
Li, Rui
Fan, Weixiao
Zhang, Yue
Zhou, Lei
Yang, Liu
Hao, Xiaoke
Liu, Jiayun
author_facet Diao, Yanjun
Wang, Gangqiang
Zhu, Bingbing
Li, Zhuo
Wang, Shan
Yu, Lijuan
Li, Rui
Fan, Weixiao
Zhang, Yue
Zhou, Lei
Yang, Liu
Hao, Xiaoke
Liu, Jiayun
author_sort Diao, Yanjun
collection PubMed
description Extracellular vesicles (EVs) are cell-derived, membranous nanoparticles that mediate intercellular communication by transferring biomolecules between cells. As natural vehicles, EVs may exhibit higher delivery efficiency, lower immunogenicity, and better compatibility than existing RNA carriers. A major limitation of their therapeutic use is the shortage of efficient, robust, and scalable methods to load siRNA of interest. Here, we report a novel strategy using polycationic membrane-penetrating peptide TAT to encapsulate siRNAs into EVs. Three TAT peptides were co-expressed with DRBD as 3TD fusion protein. The sequence-independent binding of DRBD facilitates multiplex genes targeting of mixed siRNAs. Functional assays for siRNA-mediated gene silencing of CRPC were performed after engineered EVs treatment. EVs were isolated using differential centrifugation from WPMY-1 cell culture medium. The increase of merged yellow fluorescence in the engineered EVs showed by TIRFM and the decrease in zeta potential absolute values certified the co-localization of siRNA with EVs, which indicated that siRNA had been successfully delivered into WPMY-1 EVs. qRT-PCR analysis revealed that the mRNA level of FLOH1, NKX3, and DHRS7 was dramatically decreased when cells were treated with engineered EVs loaded with siRNAs mixtures relative to the level of untreated cells. Western and flow cytometry results indicate that delivery of siRNA mixtures by engineered EVs can effectively downregulate AR expression and induce LNCaP-AI cell apoptosis. The uptake efficiency of the EVs and the significantly downregulated expression of three genes suggested the potential of TAT as efficient siRNA carriers by keeping the function of the cargoes.
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spelling pubmed-88558702022-02-19 Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer Diao, Yanjun Wang, Gangqiang Zhu, Bingbing Li, Zhuo Wang, Shan Yu, Lijuan Li, Rui Fan, Weixiao Zhang, Yue Zhou, Lei Yang, Liu Hao, Xiaoke Liu, Jiayun Cancer Biol Ther Research Paper Extracellular vesicles (EVs) are cell-derived, membranous nanoparticles that mediate intercellular communication by transferring biomolecules between cells. As natural vehicles, EVs may exhibit higher delivery efficiency, lower immunogenicity, and better compatibility than existing RNA carriers. A major limitation of their therapeutic use is the shortage of efficient, robust, and scalable methods to load siRNA of interest. Here, we report a novel strategy using polycationic membrane-penetrating peptide TAT to encapsulate siRNAs into EVs. Three TAT peptides were co-expressed with DRBD as 3TD fusion protein. The sequence-independent binding of DRBD facilitates multiplex genes targeting of mixed siRNAs. Functional assays for siRNA-mediated gene silencing of CRPC were performed after engineered EVs treatment. EVs were isolated using differential centrifugation from WPMY-1 cell culture medium. The increase of merged yellow fluorescence in the engineered EVs showed by TIRFM and the decrease in zeta potential absolute values certified the co-localization of siRNA with EVs, which indicated that siRNA had been successfully delivered into WPMY-1 EVs. qRT-PCR analysis revealed that the mRNA level of FLOH1, NKX3, and DHRS7 was dramatically decreased when cells were treated with engineered EVs loaded with siRNAs mixtures relative to the level of untreated cells. Western and flow cytometry results indicate that delivery of siRNA mixtures by engineered EVs can effectively downregulate AR expression and induce LNCaP-AI cell apoptosis. The uptake efficiency of the EVs and the significantly downregulated expression of three genes suggested the potential of TAT as efficient siRNA carriers by keeping the function of the cargoes. Taylor & Francis 2022-02-16 /pmc/articles/PMC8855870/ /pubmed/35171081 http://dx.doi.org/10.1080/15384047.2021.2024040 Text en © 2022 The Author(s). Published with license by Taylor & Francis Group, LLC. 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 use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Diao, Yanjun
Wang, Gangqiang
Zhu, Bingbing
Li, Zhuo
Wang, Shan
Yu, Lijuan
Li, Rui
Fan, Weixiao
Zhang, Yue
Zhou, Lei
Yang, Liu
Hao, Xiaoke
Liu, Jiayun
Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer
title Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer
title_full Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer
title_fullStr Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer
title_full_unstemmed Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer
title_short Loading of ”cocktail siRNAs” into extracellular vesicles via TAT-DRBD peptide for the treatment of castration-resistant prostate cancer
title_sort loading of ”cocktail sirnas” into extracellular vesicles via tat-drbd peptide for the treatment of castration-resistant prostate cancer
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8855870/
https://www.ncbi.nlm.nih.gov/pubmed/35171081
http://dx.doi.org/10.1080/15384047.2021.2024040
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