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Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor

The hypoxic microenvironment in solid tumors severely limits the efficacy of photodynamic therapy (PDT). Therefore, the development of nanocarriers co-loaded with photosensitizers and oxygen, together with imaging guidance ability, is of great significance in cancer therapy. However, previously repo...

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Autores principales: Shi, Xiudong, Yang, Weitao, Ma, Qiong, Lu, Yang, Xu, Yan, Bian, Kexin, Liu, Fengjun, Shi, Chunzi, Wang, Han, Shi, Yuxin, Zhang, Bingbo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7545996/
https://www.ncbi.nlm.nih.gov/pubmed/33052236
http://dx.doi.org/10.7150/thno.46228
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author Shi, Xiudong
Yang, Weitao
Ma, Qiong
Lu, Yang
Xu, Yan
Bian, Kexin
Liu, Fengjun
Shi, Chunzi
Wang, Han
Shi, Yuxin
Zhang, Bingbo
author_facet Shi, Xiudong
Yang, Weitao
Ma, Qiong
Lu, Yang
Xu, Yan
Bian, Kexin
Liu, Fengjun
Shi, Chunzi
Wang, Han
Shi, Yuxin
Zhang, Bingbo
author_sort Shi, Xiudong
collection PubMed
description The hypoxic microenvironment in solid tumors severely limits the efficacy of photodynamic therapy (PDT). Therefore, the development of nanocarriers co-loaded with photosensitizers and oxygen, together with imaging guidance ability, is of great significance in cancer therapy. However, previously reported synthetic methods for these multi-functional probes are complicated, and the raw materials used are toxic. Methods: Herein, the human endogenous protein, hemoglobin (Hb), was used for the simultaneous biomimetic synthesis of Gd-based nanostructures and co-loading of Chlorine e6 (Ce6) and oxygen for alleviating the hypoxic environment of tumors and accomplishing magnetic resonance imaging (MRI)-guided enhanced PDT. The Gd@Hb(Ce6-PEG) nanoprobes were synthesized via a green and protein biomimetic approach. The physicochemical properties, including relaxivity, oxygen-carrying/release capability, and PDT efficacy of Gd@Hb(Ce6-PEG), were measured in vitro and in vivo on tumor-bearing mice after intravenous injection. Morphologic and functional MRI were carried out to evaluate the efficacy of PDT. Results: The results demonstrated the successful synthesis of compact Gd@Hb(Ce6-PEG) nanostructures with desired multi-functionalities. Following treatment with the nanoparticles, the embedded MR moiety was effective in lighting tumor lesions and guiding therapy. The oxygen-carrying capability of Hb after biomimetic synthesis was confirmed by spectroscopic analysis and oxygen detector in vitro. Further, tumor oxygenation for alleviating tumor hypoxia in vivo after intravenous injection of Gd@Hb(Ce6-PEG) was verified by photoacoustic imaging and immunofluorescence staining. The potent treatment efficacy of PDT on early-stage was observed by the morphologic and functional MR imaging. Importantly, rapid renal clearance of the particles was observed after treatment. Conclusion: In this study, by using a human endogenous protein, we demonstrated the biomimetic synthesis of multi-functional nanoprobes for simultaneous tumor oxygenation and imaging-guided enhanced PDT. The therapeutic efficacy could be quantitatively confirmed at 6 h post PDT with diffusion-weighted imaging (DWI).
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spelling pubmed-75459962020-10-12 Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor Shi, Xiudong Yang, Weitao Ma, Qiong Lu, Yang Xu, Yan Bian, Kexin Liu, Fengjun Shi, Chunzi Wang, Han Shi, Yuxin Zhang, Bingbo Theranostics Research Paper The hypoxic microenvironment in solid tumors severely limits the efficacy of photodynamic therapy (PDT). Therefore, the development of nanocarriers co-loaded with photosensitizers and oxygen, together with imaging guidance ability, is of great significance in cancer therapy. However, previously reported synthetic methods for these multi-functional probes are complicated, and the raw materials used are toxic. Methods: Herein, the human endogenous protein, hemoglobin (Hb), was used for the simultaneous biomimetic synthesis of Gd-based nanostructures and co-loading of Chlorine e6 (Ce6) and oxygen for alleviating the hypoxic environment of tumors and accomplishing magnetic resonance imaging (MRI)-guided enhanced PDT. The Gd@Hb(Ce6-PEG) nanoprobes were synthesized via a green and protein biomimetic approach. The physicochemical properties, including relaxivity, oxygen-carrying/release capability, and PDT efficacy of Gd@Hb(Ce6-PEG), were measured in vitro and in vivo on tumor-bearing mice after intravenous injection. Morphologic and functional MRI were carried out to evaluate the efficacy of PDT. Results: The results demonstrated the successful synthesis of compact Gd@Hb(Ce6-PEG) nanostructures with desired multi-functionalities. Following treatment with the nanoparticles, the embedded MR moiety was effective in lighting tumor lesions and guiding therapy. The oxygen-carrying capability of Hb after biomimetic synthesis was confirmed by spectroscopic analysis and oxygen detector in vitro. Further, tumor oxygenation for alleviating tumor hypoxia in vivo after intravenous injection of Gd@Hb(Ce6-PEG) was verified by photoacoustic imaging and immunofluorescence staining. The potent treatment efficacy of PDT on early-stage was observed by the morphologic and functional MR imaging. Importantly, rapid renal clearance of the particles was observed after treatment. Conclusion: In this study, by using a human endogenous protein, we demonstrated the biomimetic synthesis of multi-functional nanoprobes for simultaneous tumor oxygenation and imaging-guided enhanced PDT. The therapeutic efficacy could be quantitatively confirmed at 6 h post PDT with diffusion-weighted imaging (DWI). Ivyspring International Publisher 2020-09-19 /pmc/articles/PMC7545996/ /pubmed/33052236 http://dx.doi.org/10.7150/thno.46228 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
Shi, Xiudong
Yang, Weitao
Ma, Qiong
Lu, Yang
Xu, Yan
Bian, Kexin
Liu, Fengjun
Shi, Chunzi
Wang, Han
Shi, Yuxin
Zhang, Bingbo
Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor
title Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor
title_full Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor
title_fullStr Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor
title_full_unstemmed Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor
title_short Hemoglobin-mediated biomimetic synthesis of paramagnetic O(2)-evolving theranostic nanoprobes for MR imaging-guided enhanced photodynamic therapy of tumor
title_sort hemoglobin-mediated biomimetic synthesis of paramagnetic o(2)-evolving theranostic nanoprobes for mr imaging-guided enhanced photodynamic therapy of tumor
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7545996/
https://www.ncbi.nlm.nih.gov/pubmed/33052236
http://dx.doi.org/10.7150/thno.46228
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