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MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury

Rationale: Myocardial injury triggers intense oxidative stress, inflammatory response, and cytokine release, which are essential for myocardial repair and remodeling. Excess reactive oxygen species (ROS) scavenging and inflammation elimination have long been considered to reverse myocardial injuries...

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Autores principales: Xiang, Kaiyan, Wu, Haoguang, Liu, Yu, Wang, Sheng, Li, Xueling, Yang, Bowei, Zhang, Yunming, Ma, Long, Lu, Guangming, He, Liangcan, Ni, Qianqian, Zhang, Longjiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10196836/
https://www.ncbi.nlm.nih.gov/pubmed/37215581
http://dx.doi.org/10.7150/thno.83543
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author Xiang, Kaiyan
Wu, Haoguang
Liu, Yu
Wang, Sheng
Li, Xueling
Yang, Bowei
Zhang, Yunming
Ma, Long
Lu, Guangming
He, Liangcan
Ni, Qianqian
Zhang, Longjiang
author_facet Xiang, Kaiyan
Wu, Haoguang
Liu, Yu
Wang, Sheng
Li, Xueling
Yang, Bowei
Zhang, Yunming
Ma, Long
Lu, Guangming
He, Liangcan
Ni, Qianqian
Zhang, Longjiang
author_sort Xiang, Kaiyan
collection PubMed
description Rationale: Myocardial injury triggers intense oxidative stress, inflammatory response, and cytokine release, which are essential for myocardial repair and remodeling. Excess reactive oxygen species (ROS) scavenging and inflammation elimination have long been considered to reverse myocardial injuries. However, the efficacy of traditional treatments (antioxidant, anti-inflammatory drugs and natural enzymes) is still poor due to their intrinsic defects such as unfavorable pharmacokinetics and bioavailability, low biological stability, and potential side effects. Nanozyme represents a candidate to effectively modulate redox homeostasis for the treatment of ROS related inflammation diseases. Methods: We develop an integrated bimetallic nanozyme derived from metal-organic framework (MOF) to eliminate ROS and alleviate inflammation. The bimetallic nanozyme (Cu-TCPP-Mn) is synthesized by embedding manganese and copper into the porphyrin followed by sonication, which could mimic the cascade activities of superoxide dismutase (SOD) and catalase (CAT) to transform oxygen radicals to hydrogen peroxide, followed by the catalysis of hydrogen peroxide into oxygen and water. Enzyme kinetic analysis and oxygen-production velocities analysis were performed to evaluate the enzymatic activities of Cu-TCPP-Mn. We also established myocardial infarction (MI) and myocardial ischemia-reperfusion (I/R) injury animal models to verify the ROS scavenging and anti-inflammation effect of Cu-TCPP-Mn. Results: As demonstrated by kinetic analysis and oxygen-production velocities analysis, Cu-TCPP-Mn nanozyme possesses good performance in both SOD- and CAT-like activities to achieve synergistic ROS scavenging effect and provide protection for myocardial injury. In both MI and I/R injury animal models, this bimetallic nanozyme represents a promising and reliable technology to protect the heart tissue from oxidative stress and inflammation-induced injury, and enables the myocardial function to recover from otherwise severe damage. Conclusions: This research provides a facile and applicable method to develop a bimetallic MOF nanozyme, which represents a promising alternative to the treatment of myocardial injuries.
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spelling pubmed-101968362023-05-20 MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury Xiang, Kaiyan Wu, Haoguang Liu, Yu Wang, Sheng Li, Xueling Yang, Bowei Zhang, Yunming Ma, Long Lu, Guangming He, Liangcan Ni, Qianqian Zhang, Longjiang Theranostics Research Paper Rationale: Myocardial injury triggers intense oxidative stress, inflammatory response, and cytokine release, which are essential for myocardial repair and remodeling. Excess reactive oxygen species (ROS) scavenging and inflammation elimination have long been considered to reverse myocardial injuries. However, the efficacy of traditional treatments (antioxidant, anti-inflammatory drugs and natural enzymes) is still poor due to their intrinsic defects such as unfavorable pharmacokinetics and bioavailability, low biological stability, and potential side effects. Nanozyme represents a candidate to effectively modulate redox homeostasis for the treatment of ROS related inflammation diseases. Methods: We develop an integrated bimetallic nanozyme derived from metal-organic framework (MOF) to eliminate ROS and alleviate inflammation. The bimetallic nanozyme (Cu-TCPP-Mn) is synthesized by embedding manganese and copper into the porphyrin followed by sonication, which could mimic the cascade activities of superoxide dismutase (SOD) and catalase (CAT) to transform oxygen radicals to hydrogen peroxide, followed by the catalysis of hydrogen peroxide into oxygen and water. Enzyme kinetic analysis and oxygen-production velocities analysis were performed to evaluate the enzymatic activities of Cu-TCPP-Mn. We also established myocardial infarction (MI) and myocardial ischemia-reperfusion (I/R) injury animal models to verify the ROS scavenging and anti-inflammation effect of Cu-TCPP-Mn. Results: As demonstrated by kinetic analysis and oxygen-production velocities analysis, Cu-TCPP-Mn nanozyme possesses good performance in both SOD- and CAT-like activities to achieve synergistic ROS scavenging effect and provide protection for myocardial injury. In both MI and I/R injury animal models, this bimetallic nanozyme represents a promising and reliable technology to protect the heart tissue from oxidative stress and inflammation-induced injury, and enables the myocardial function to recover from otherwise severe damage. Conclusions: This research provides a facile and applicable method to develop a bimetallic MOF nanozyme, which represents a promising alternative to the treatment of myocardial injuries. Ivyspring International Publisher 2023-04-29 /pmc/articles/PMC10196836/ /pubmed/37215581 http://dx.doi.org/10.7150/thno.83543 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/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
Xiang, Kaiyan
Wu, Haoguang
Liu, Yu
Wang, Sheng
Li, Xueling
Yang, Bowei
Zhang, Yunming
Ma, Long
Lu, Guangming
He, Liangcan
Ni, Qianqian
Zhang, Longjiang
MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury
title MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury
title_full MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury
title_fullStr MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury
title_full_unstemmed MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury
title_short MOF-derived bimetallic nanozyme to catalyze ROS scavenging for protection of myocardial injury
title_sort mof-derived bimetallic nanozyme to catalyze ros scavenging for protection of myocardial injury
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10196836/
https://www.ncbi.nlm.nih.gov/pubmed/37215581
http://dx.doi.org/10.7150/thno.83543
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