Cy5.5 conjugated MnO nanoparticles for magnetic resonance/near-infrared fluorescence dual-modal imaging of brain gliomas
[Display omitted] •MnO NPs were prepared by a thermal decomposition method.•Water dispersible MnO NPs were obtained by carboxyl silane modification.•PEG-Cy5.5 conjugated MnO NPs were fabricated as a dual-modal nanoprobe.•MnO-PEG-Cy5.5 nanoprobe enables a better detection of brain gliomas. The fusion...
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Veröffentlicht in: | Journal of colloid and interface science 2015-11, Vol.457, p.27-34 |
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Sprache: | eng |
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•MnO NPs were prepared by a thermal decomposition method.•Water dispersible MnO NPs were obtained by carboxyl silane modification.•PEG-Cy5.5 conjugated MnO NPs were fabricated as a dual-modal nanoprobe.•MnO-PEG-Cy5.5 nanoprobe enables a better detection of brain gliomas.
The fusion of molecular and anatomical modalities facilitates more reliable and accurate detection of tumors. Herein, we prepared the PEG-Cy5.5 conjugated MnO nanoparticles (MnO-PEG-Cy5.5 NPs) with magnetic resonance (MR) and near-infrared fluorescence (NIRF) imaging modalities. The applicability of MnO-PEG-Cy5.5 NPs as a dual-modal (MR/NIRF) imaging nanoprobe for the detection of brain gliomas was investigated. In vivo MR contrast enhancement of the MnO-PEG-Cy5.5 nanoprobe in the tumor region was demonstrated. Meanwhile, whole-body NIRF imaging of glioma bearing nude mouse exhibited distinct tumor localization upon injection of MnO-PEG-Cy5.5 NPs. Moreover, ex vivo CLSM imaging of the brain slice hosting glioma indicated the preferential accumulation of MnO-PEG-Cy5.5 NPs in the glioma region. Our results therefore demonstrated the potential of MnO-PEG-Cy5.5 NPs as a dual-modal (MR/NIRF) imaging nanoprobe in improving the diagnostic efficacy by simultaneously providing anatomical information from deep inside the body and more sensitive information at the cellular level. |
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ISSN: | 0021-9797 1095-7103 |
DOI: | 10.1016/j.jcis.2015.06.046 |