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In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat

Abnormal protein phosphorylation may relate to diseases such as Alzheimer’s, schizophrenia, and Parkinson’s. Therefore, the real-time detection of phosphoproteins in sweat was of great significance for the early knowledge, detection, and treatment of neurological diseases. In this work, anatase/ruti...

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Detalles Bibliográficos
Autores principales: Qiao, Yuting, Liu, Xianrong, Jia, Zhi, Zhang, Peng, Gao, Li, Liu, Bingxin, Qiao, Lijuan, Zhang, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9599406/
https://www.ncbi.nlm.nih.gov/pubmed/36291003
http://dx.doi.org/10.3390/bios12100865
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author Qiao, Yuting
Liu, Xianrong
Jia, Zhi
Zhang, Peng
Gao, Li
Liu, Bingxin
Qiao, Lijuan
Zhang, Lei
author_facet Qiao, Yuting
Liu, Xianrong
Jia, Zhi
Zhang, Peng
Gao, Li
Liu, Bingxin
Qiao, Lijuan
Zhang, Lei
author_sort Qiao, Yuting
collection PubMed
description Abnormal protein phosphorylation may relate to diseases such as Alzheimer’s, schizophrenia, and Parkinson’s. Therefore, the real-time detection of phosphoproteins in sweat was of great significance for the early knowledge, detection, and treatment of neurological diseases. In this work, anatase/rutile TiO(2) was in situ grown on the MXene surface to constructing the intercalation structure MXene@anatase/rutile TiO(2) ternary heterostructure as a sensing platform for detecting phosphoprotein in sweat. Here, the intercalation structure of MXene acted as electron and diffusion channels for phosphoproteins. The in situ grown anatase/rutile TiO(2) with n-n-type heterostructure provided specific adsorption sites for the phosphoproteins. The determination of phosphoprotein covered concentrations in sweat, with linear range from 0.01 to 1 mg/mL, along with a low LOD of 1.52 μM. It is worth noting that, since the macromolecular phosphoprotein was adsorbed on the surface of the material, the electrochemical signal gradually decreased with the increase of phosphoprotein concentration. In addition, the active sites in the MXene@anatase/rutile TiO(2) ternary heterojunction and synergistic effect of the heterojunction were verified by first-principle calculations to further realize the response to phosphoproteins. Additionally, the effective diffusion capacity and mobility of phosphoprotein molecules in the ternary heterojunction structure were studied by molecular dynamics simulation. Furthermore, the constructed sensing platform showed high selectivity, repeatability, reproducibility, and stability, and this newly developed sensor can detect for phosphoprotein in actual sweat samples. This satisfactory sensing strategy could be promoted to realize the noninvasive and continuous detection of sweat.
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spelling pubmed-95994062022-10-27 In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat Qiao, Yuting Liu, Xianrong Jia, Zhi Zhang, Peng Gao, Li Liu, Bingxin Qiao, Lijuan Zhang, Lei Biosensors (Basel) Article Abnormal protein phosphorylation may relate to diseases such as Alzheimer’s, schizophrenia, and Parkinson’s. Therefore, the real-time detection of phosphoproteins in sweat was of great significance for the early knowledge, detection, and treatment of neurological diseases. In this work, anatase/rutile TiO(2) was in situ grown on the MXene surface to constructing the intercalation structure MXene@anatase/rutile TiO(2) ternary heterostructure as a sensing platform for detecting phosphoprotein in sweat. Here, the intercalation structure of MXene acted as electron and diffusion channels for phosphoproteins. The in situ grown anatase/rutile TiO(2) with n-n-type heterostructure provided specific adsorption sites for the phosphoproteins. The determination of phosphoprotein covered concentrations in sweat, with linear range from 0.01 to 1 mg/mL, along with a low LOD of 1.52 μM. It is worth noting that, since the macromolecular phosphoprotein was adsorbed on the surface of the material, the electrochemical signal gradually decreased with the increase of phosphoprotein concentration. In addition, the active sites in the MXene@anatase/rutile TiO(2) ternary heterojunction and synergistic effect of the heterojunction were verified by first-principle calculations to further realize the response to phosphoproteins. Additionally, the effective diffusion capacity and mobility of phosphoprotein molecules in the ternary heterojunction structure were studied by molecular dynamics simulation. Furthermore, the constructed sensing platform showed high selectivity, repeatability, reproducibility, and stability, and this newly developed sensor can detect for phosphoprotein in actual sweat samples. This satisfactory sensing strategy could be promoted to realize the noninvasive and continuous detection of sweat. MDPI 2022-10-12 /pmc/articles/PMC9599406/ /pubmed/36291003 http://dx.doi.org/10.3390/bios12100865 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Qiao, Yuting
Liu, Xianrong
Jia, Zhi
Zhang, Peng
Gao, Li
Liu, Bingxin
Qiao, Lijuan
Zhang, Lei
In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat
title In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat
title_full In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat
title_fullStr In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat
title_full_unstemmed In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat
title_short In Situ Growth Intercalation Structure MXene@Anatase/Rutile TiO(2) Ternary Heterojunction with Excellent Phosphoprotein Detection in Sweat
title_sort in situ growth intercalation structure mxene@anatase/rutile tio(2) ternary heterojunction with excellent phosphoprotein detection in sweat
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9599406/
https://www.ncbi.nlm.nih.gov/pubmed/36291003
http://dx.doi.org/10.3390/bios12100865
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