TY - JOUR
T1 - A multicolor and ratiometric fluorescent sensing platform for metal ions based on arene–metal-ion contact
AU - Kanegae, Anna
AU - Takata, Yusuke
AU - Takashima, Ippei
AU - Uchinomiya, Shohei
AU - Kawagoe, Ryosuke
AU - Usui, Kazuteru
AU - Yamashita, Akira
AU - Wongkongkatep, Jirarut
AU - Sugimoto, Manabu
AU - Ojida, Akio
N1 - Funding Information:
This work was supported by the Grant-in-Aid for Scientific Research on Innovative Areas “Chemistry for Multimolecular Crowding Biosystems” (JSPS KAKENHI Grant No. JP17H06349) and the Grant-in-Aid for Scientific Research B (JSPS KAKENHI Grant No. JP20H02861 to A.O.). A.O. acknowledges Naito Science Foundation and Toray Science Foundation for their financial supports. S.U. acknowledges Grant-in-Aid for Young Scientists B (JSPS KAKENHI Grant No. JP17K14518) for its financial support.
Publisher Copyright:
© 2021, The Author(s).
PY - 2021/12
Y1 - 2021/12
N2 - Despite continuous and active development of fluorescent metal-ion probes, their molecular design for ratiometric detection is restricted by the limited choice of available sensing mechanisms. Here we present a multicolor and ratiometric fluorescent sensing platform for metal ions based on the interaction between the metal ion and the aromatic ring of a fluorophore (arene–metal-ion, AM, coordination). Our molecular design provided the probes possessing a 1,9-bis(2′-pyridyl)-2,5,8-triazanonane as a flexible metal ion binding unit attached to a tricyclic fluorophore. This architecture allows to sense various metal ions, such as Zn(II), Cu(II), Cd(II), Ag(I), and Hg(II) with emission red-shifts. We showed that this probe design is applicable to a series of tricyclic fluorophores, which allow ratiometric detection of the metal ions from the blue to the near-infrared wavelengths. X-ray crystallography and theoretical calculations indicate that the coordinated metal ion has van der Waals contact with the fluorophore, perturbing the dye’s electronic structure and ring conformation to induce the emission red-shift. A set of the probes was useful for the differential sensing of eight metal ions in a one-pot single titration via principal component analysis. We also demonstrate that a xanthene fluorophore is applicable to the ratiometric imaging of metal ions under live-cell conditions.
AB - Despite continuous and active development of fluorescent metal-ion probes, their molecular design for ratiometric detection is restricted by the limited choice of available sensing mechanisms. Here we present a multicolor and ratiometric fluorescent sensing platform for metal ions based on the interaction between the metal ion and the aromatic ring of a fluorophore (arene–metal-ion, AM, coordination). Our molecular design provided the probes possessing a 1,9-bis(2′-pyridyl)-2,5,8-triazanonane as a flexible metal ion binding unit attached to a tricyclic fluorophore. This architecture allows to sense various metal ions, such as Zn(II), Cu(II), Cd(II), Ag(I), and Hg(II) with emission red-shifts. We showed that this probe design is applicable to a series of tricyclic fluorophores, which allow ratiometric detection of the metal ions from the blue to the near-infrared wavelengths. X-ray crystallography and theoretical calculations indicate that the coordinated metal ion has van der Waals contact with the fluorophore, perturbing the dye’s electronic structure and ring conformation to induce the emission red-shift. A set of the probes was useful for the differential sensing of eight metal ions in a one-pot single titration via principal component analysis. We also demonstrate that a xanthene fluorophore is applicable to the ratiometric imaging of metal ions under live-cell conditions.
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U2 - 10.1038/s42004-021-00541-y
DO - 10.1038/s42004-021-00541-y
M3 - Article
AN - SCOPUS:85109316042
SN - 2399-3669
VL - 4
JO - Communications Chemistry
JF - Communications Chemistry
IS - 1
M1 - 104
ER -