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Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53

Rationale: The p53 gene is a well-known tumor suppressor, and its mutation often contributes to the occurrence and development of tumors. Due to the diversity and complexity of p53 mutations, there is still no effective p53 gene therapy. In this study, we designed and constructed an aptazyme switch...

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Autores principales: Huang, Xinbo, Wang, Mingxia, Liu, Yuchen, Gui, Yaoting
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7978309/
https://www.ncbi.nlm.nih.gov/pubmed/33754021
http://dx.doi.org/10.7150/thno.55856
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author Huang, Xinbo
Wang, Mingxia
Liu, Yuchen
Gui, Yaoting
author_facet Huang, Xinbo
Wang, Mingxia
Liu, Yuchen
Gui, Yaoting
author_sort Huang, Xinbo
collection PubMed
description Rationale: The p53 gene is a well-known tumor suppressor, and its mutation often contributes to the occurrence and development of tumors. Due to the diversity and complexity of p53 mutations, there is still no effective p53 gene therapy. In this study, we designed and constructed an aptazyme switch that could effectively sense cellular wild-type p53 protein and regulate downstream gene function flexibly. The application of this artificial device in combination with Cre-LoxP and dCas9-VP64 tools achieved a precisely targeted killing effect on tumor cells. Methods: The affinity of the aptamer to p53 protein was verified by SPR. p53 aptazyme and gene circuits were chemically synthesized. The function of the gene circuit was detected by cell proliferation assay, apoptosis assay and Western blot. The nude mouse transplantation tumor experiment was used to evaluate the inhibitory effect of gene circuits on tumor cells in vivo. Results: The results of the SPR experiment showed that the p53 aptamer RNA sequence had a robust binding effect with p53 protein. The p53 aptazyme could efficiently sense wild-type p53 protein and initiate self-cleavage in cells. The Cre-p53 aptazyme gene circuit and dCas9-VP64/sgRNA mediated gene circuit designed based on p53 aptazyme significantly inhibited the growth and promoted the apoptosis of wild-type p53-deficient cancer cells in vitro. In addition, the gene circuits also had a significant inhibitory effect on tumors in vivo. Conclusion: The study developed a novel and efficient ribozyme switch for p53-specific recognition and provided a modular strategy for aptazyme binding to cellular proteins. In addition, the p53 aptazyme successfully inhibited tumor growth through a combined application with other synthetic biological tools, providing a new perspective for cancer therapy.
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spelling pubmed-79783092021-03-21 Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53 Huang, Xinbo Wang, Mingxia Liu, Yuchen Gui, Yaoting Theranostics Research Paper Rationale: The p53 gene is a well-known tumor suppressor, and its mutation often contributes to the occurrence and development of tumors. Due to the diversity and complexity of p53 mutations, there is still no effective p53 gene therapy. In this study, we designed and constructed an aptazyme switch that could effectively sense cellular wild-type p53 protein and regulate downstream gene function flexibly. The application of this artificial device in combination with Cre-LoxP and dCas9-VP64 tools achieved a precisely targeted killing effect on tumor cells. Methods: The affinity of the aptamer to p53 protein was verified by SPR. p53 aptazyme and gene circuits were chemically synthesized. The function of the gene circuit was detected by cell proliferation assay, apoptosis assay and Western blot. The nude mouse transplantation tumor experiment was used to evaluate the inhibitory effect of gene circuits on tumor cells in vivo. Results: The results of the SPR experiment showed that the p53 aptamer RNA sequence had a robust binding effect with p53 protein. The p53 aptazyme could efficiently sense wild-type p53 protein and initiate self-cleavage in cells. The Cre-p53 aptazyme gene circuit and dCas9-VP64/sgRNA mediated gene circuit designed based on p53 aptazyme significantly inhibited the growth and promoted the apoptosis of wild-type p53-deficient cancer cells in vitro. In addition, the gene circuits also had a significant inhibitory effect on tumors in vivo. Conclusion: The study developed a novel and efficient ribozyme switch for p53-specific recognition and provided a modular strategy for aptazyme binding to cellular proteins. In addition, the p53 aptazyme successfully inhibited tumor growth through a combined application with other synthetic biological tools, providing a new perspective for cancer therapy. Ivyspring International Publisher 2021-03-04 /pmc/articles/PMC7978309/ /pubmed/33754021 http://dx.doi.org/10.7150/thno.55856 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Huang, Xinbo
Wang, Mingxia
Liu, Yuchen
Gui, Yaoting
Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53
title Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53
title_full Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53
title_fullStr Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53
title_full_unstemmed Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53
title_short Synthesis of RNA-based gene regulatory devices for redirecting cellular signaling events mediated by p53
title_sort synthesis of rna-based gene regulatory devices for redirecting cellular signaling events mediated by p53
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7978309/
https://www.ncbi.nlm.nih.gov/pubmed/33754021
http://dx.doi.org/10.7150/thno.55856
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