Exfoliated near infrared fluorescent silicate nanosheets for (bio)photonics
Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment Ca...
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Published in | Nature communications Vol. 11; no. 1; pp. 1495 - 11 |
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Main Authors | , , , , , , , , , , , , , , , , , |
Format | Journal Article |
Language | English |
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Nature Publishing Group UK
20.03.2020
Nature Publishing Group Nature Portfolio |
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Abstract | Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment CaCuSi
4
O
10
(Egyptian Blue, EB) via ball milling and facile tip sonication into NIR fluorescent nanosheets (EB-NS). The size of EB-NS can be tailored to diameters <20 nm and heights down to 1 nm. EB-NS fluoresce at 910 nm and the fluorescence intensity correlates with the number of Cu
2+
ions. Furthermore, EB-NS display no bleaching and high brightness compared with other NIR fluorophores. The versatility of EB-NS is demonstrated by in-vivo single-particle tracking and microrheology measurements in
Drosophila melanogaster
embryos. EB-NS can be uptaken by plants and remotely detected in a low-cost stand-off detection setup. In summary, EB-NS have the potential for a wide range of bioimaging applications.
Near-infrared (NIR) fluorophores have attracted interest for bioimaging; yet availability, biocompatibility and application can be an issue. Here, the authors report on the development of Egyptian Blue nanosheets with high NIR fluorescence and photostability demonstrating bioimaging applications in vivo. |
---|---|
AbstractList | Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment CaCuSi4O10 (Egyptian Blue, EB) via ball milling and facile tip sonication into NIR fluorescent nanosheets (EB-NS). The size of EB-NS can be tailored to diameters <20 nm and heights down to 1 nm. EB-NS fluoresce at 910 nm and the fluorescence intensity correlates with the number of Cu2+ ions. Furthermore, EB-NS display no bleaching and high brightness compared with other NIR fluorophores. The versatility of EB-NS is demonstrated by in-vivo single-particle tracking and microrheology measurements in Drosophila melanogaster embryos. EB-NS can be uptaken by plants and remotely detected in a low-cost stand-off detection setup. In summary, EB-NS have the potential for a wide range of bioimaging applications.Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment CaCuSi4O10 (Egyptian Blue, EB) via ball milling and facile tip sonication into NIR fluorescent nanosheets (EB-NS). The size of EB-NS can be tailored to diameters <20 nm and heights down to 1 nm. EB-NS fluoresce at 910 nm and the fluorescence intensity correlates with the number of Cu2+ ions. Furthermore, EB-NS display no bleaching and high brightness compared with other NIR fluorophores. The versatility of EB-NS is demonstrated by in-vivo single-particle tracking and microrheology measurements in Drosophila melanogaster embryos. EB-NS can be uptaken by plants and remotely detected in a low-cost stand-off detection setup. In summary, EB-NS have the potential for a wide range of bioimaging applications. Near-infrared (NIR) fluorophores have attracted interest for bioimaging; yet availability, biocompatibility and application can be an issue. Here, the authors report on the development of Egyptian Blue nanosheets with high NIR fluorescence and photostability demonstrating bioimaging applications in vivo. Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment CaCuSi 4 O 10 (Egyptian Blue, EB) via ball milling and facile tip sonication into NIR fluorescent nanosheets (EB-NS). The size of EB-NS can be tailored to diameters <20 nm and heights down to 1 nm. EB-NS fluoresce at 910 nm and the fluorescence intensity correlates with the number of Cu 2+ ions. Furthermore, EB-NS display no bleaching and high brightness compared with other NIR fluorophores. The versatility of EB-NS is demonstrated by in-vivo single-particle tracking and microrheology measurements in Drosophila melanogaster embryos. EB-NS can be uptaken by plants and remotely detected in a low-cost stand-off detection setup. In summary, EB-NS have the potential for a wide range of bioimaging applications. Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment CaCuSi 4 O 10 (Egyptian Blue, EB) via ball milling and facile tip sonication into NIR fluorescent nanosheets (EB-NS). The size of EB-NS can be tailored to diameters <20 nm and heights down to 1 nm. EB-NS fluoresce at 910 nm and the fluorescence intensity correlates with the number of Cu 2+ ions. Furthermore, EB-NS display no bleaching and high brightness compared with other NIR fluorophores. The versatility of EB-NS is demonstrated by in-vivo single-particle tracking and microrheology measurements in Drosophila melanogaster embryos. EB-NS can be uptaken by plants and remotely detected in a low-cost stand-off detection setup. In summary, EB-NS have the potential for a wide range of bioimaging applications. Near-infrared (NIR) fluorophores have attracted interest for bioimaging; yet availability, biocompatibility and application can be an issue. Here, the authors report on the development of Egyptian Blue nanosheets with high NIR fluorescence and photostability demonstrating bioimaging applications in vivo. Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment CaCuSi4O10 (Egyptian Blue, EB) via ball milling and facile tip sonication into NIR fluorescent nanosheets (EB-NS). The size of EB-NS can be tailored to diameters <20 nm and heights down to 1 nm. EB-NS fluoresce at 910 nm and the fluorescence intensity correlates with the number of Cu2+ ions. Furthermore, EB-NS display no bleaching and high brightness compared with other NIR fluorophores. The versatility of EB-NS is demonstrated by in-vivo single-particle tracking and microrheology measurements in Drosophila melanogaster embryos. EB-NS can be uptaken by plants and remotely detected in a low-cost stand-off detection setup. In summary, EB-NS have the potential for a wide range of bioimaging applications.Near-infrared (NIR) fluorophores have attracted interest for bioimaging; yet availability, biocompatibility and application can be an issue. Here, the authors report on the development of Egyptian Blue nanosheets with high NIR fluorescence and photostability demonstrating bioimaging applications in vivo. Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and autofluorescence. However, there are few NIR fluorescent materials known and suitable for biomedical applications. Here we exfoliate the layered pigment CaCuSi O (Egyptian Blue, EB) via ball milling and facile tip sonication into NIR fluorescent nanosheets (EB-NS). The size of EB-NS can be tailored to diameters <20 nm and heights down to 1 nm. EB-NS fluoresce at 910 nm and the fluorescence intensity correlates with the number of Cu ions. Furthermore, EB-NS display no bleaching and high brightness compared with other NIR fluorophores. The versatility of EB-NS is demonstrated by in-vivo single-particle tracking and microrheology measurements in Drosophila melanogaster embryos. EB-NS can be uptaken by plants and remotely detected in a low-cost stand-off detection setup. In summary, EB-NS have the potential for a wide range of bioimaging applications. |
ArticleNumber | 1495 |
Author | Selvaggio, Gabriele Lv, Zhiyi Kuhlemann, llyas Erpenbeck, Luise Karius, Volker Mann, Florian A. Großhans, Jörg Oswald, Tabea A. Kruss, Sebastian Chizhik, Alexey Janshoff, Andreas Pablo Giraldo, Juan Preiß, Helen Herrmann, Niklas Meyer, Daniel Spreinat, Alexander Nißler, Robert Vuong, Loan |
Author_xml | – sequence: 1 givenname: Gabriele surname: Selvaggio fullname: Selvaggio, Gabriele organization: Institute of Physical Chemistry, University of Göttingen – sequence: 2 givenname: Alexey surname: Chizhik fullname: Chizhik, Alexey organization: Third Institute of Physics, University of Göttingen – sequence: 3 givenname: Robert surname: Nißler fullname: Nißler, Robert organization: Institute of Physical Chemistry, University of Göttingen – sequence: 4 givenname: llyas orcidid: 0000-0003-4254-2898 surname: Kuhlemann fullname: Kuhlemann, llyas organization: Institute of Physical Chemistry, University of Göttingen – sequence: 5 givenname: Daniel surname: Meyer fullname: Meyer, Daniel organization: Institute of Physical Chemistry, University of Göttingen – sequence: 6 givenname: Loan surname: Vuong fullname: Vuong, Loan organization: Institute of Organic and Biomolecular Chemistry, University of Göttingen – sequence: 7 givenname: Helen surname: Preiß fullname: Preiß, Helen organization: Institute of Physical Chemistry, University of Göttingen – sequence: 8 givenname: Niklas surname: Herrmann fullname: Herrmann, Niklas organization: Institute of Physical Chemistry, University of Göttingen – sequence: 9 givenname: Florian A. surname: Mann fullname: Mann, Florian A. organization: Institute of Physical Chemistry, University of Göttingen – sequence: 10 givenname: Zhiyi surname: Lv fullname: Lv, Zhiyi organization: Institute of Developmental Biochemistry, Medical School, University of Göttingen – sequence: 11 givenname: Tabea A. orcidid: 0000-0001-9150-3487 surname: Oswald fullname: Oswald, Tabea A. organization: Institute of Organic and Biomolecular Chemistry, University of Göttingen – sequence: 12 givenname: Alexander surname: Spreinat fullname: Spreinat, Alexander organization: Institute of Physical Chemistry, University of Göttingen – sequence: 13 givenname: Luise surname: Erpenbeck fullname: Erpenbeck, Luise organization: Department of Dermatology, Venereology and Allergology, University Medical Center Göttingen – sequence: 14 givenname: Jörg surname: Großhans fullname: Großhans, Jörg organization: Institute of Developmental Biochemistry, Medical School, University of Göttingen – sequence: 15 givenname: Volker surname: Karius fullname: Karius, Volker organization: Department of Sedimentology and Environmental Geology, Geoscience Center, University of Göttingen – sequence: 16 givenname: Andreas surname: Janshoff fullname: Janshoff, Andreas organization: Institute of Physical Chemistry, University of Göttingen – sequence: 17 givenname: Juan orcidid: 0000-0002-8400-8944 surname: Pablo Giraldo fullname: Pablo Giraldo, Juan organization: Department of Botany and Plant Sciences, University of California – sequence: 18 givenname: Sebastian orcidid: 0000-0003-0638-9822 surname: Kruss fullname: Kruss, Sebastian email: skruss@gwdg.de organization: Institute of Physical Chemistry, University of Göttingen |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/32198383$$D View this record in MEDLINE/PubMed |
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Snippet | Imaging of complex (biological) samples in the near-infrared (NIR) is beneficial due to reduced light scattering, absorption, phototoxicity, and... Near-infrared (NIR) fluorophores have attracted interest for bioimaging; yet availability, biocompatibility and application can be an issue. Here, the authors... |
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Title | Exfoliated near infrared fluorescent silicate nanosheets for (bio)photonics |
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