Special issue on “Fluorescent probes”

Adam C. Sedgwick, Tony D. James

PDF(121 KB)
PDF(121 KB)
Front. Chem. Sci. Eng. ›› 2020, Vol. 14 ›› Issue (1) : 1-3. DOI: 10.1007/s11705-019-1910-4
EDITORIAL
EDITORIAL

Special issue on “Fluorescent probes”

Author information +
History +

Cite this article

Download citation ▾
Adam C. Sedgwick, Tony D. James. Special issue on “Fluorescent probes”. Front. Chem. Sci. Eng., 2020, 14(1): 1‒3 https://doi.org/10.1007/s11705-019-1910-4

References

[1]
Sedgwick A C, Wu L, Han H H, Bull S D, He X P, James T D, Sessler J L, Tang B Z, Tian H, Yoon J. Excited-state intramolecular proton-transfer (ESIPT) based fluorescence sensors and imaging agents. Chemical Society Reviews, 2018, 47(23): 8842–8880
CrossRef Google scholar
[2]
Wu D, Sedgwick A C, Gunnlaugsson T, Akkaya E U, Yoon J, James T D. Fluorescent chemosensors: The past, present and future. Chemical Society Reviews, 2017, 46(23): 7105–7123
CrossRef Google scholar
[3]
Chan J, Dodani S C, Chang C J. Reaction-based small-molecule fluorescent probes for chemoselective bioimaging. Nature Chemistry, 2012, 4(12): 973–984
CrossRef Google scholar
[4]
Wu L, Sedgwick A C, Sun X L, Bull S D, He X P, James T D. Reaction-based fluorescent probes for the detection and imaging of reactive oxygen, nitrogen, and sulfur species. Accounts of Chemical Research, 2019, 52(9): 2582–2597
CrossRef Google scholar
[5]
Perry G, Cortezon-Tamarit F, Pascu S I. Detection and monitoring prostate specific antigen using nanotechnology approaches to biosensing. Frontiers of Chemical Science and Engineering, 2020, 14(1): 4–18
[6]
Lopez-Alled C M, Sanchez-Fernandez A, Edler K J, Sedgwick A C, Bull S D, McMullin C L, Kociok-Köhn G, James T D, Wenk J, Lewis S E. Azulene-boronate esters: Colorimetric indicators for fluoride in drinking water. Chemical Communications (Cambridge), 2017, 53(93): 12580–12583
CrossRef Google scholar
[7]
Martínez-Calvo M, Bright S A, Veale E B, Henwood A F, Williams D C, Gunnlaugsson T. 4-Amino-1,8-naphthalimide based fluorescent photoinduced electron transfer (PET) pH sensors as liposomal cellular imaging agents: The effect of substituent patterns on PET directional quenching. Frontiers of Chemical Science and Engineering, 2020, 14(1): 61–75
[8]
Sedgwick A C, Han H H, Gardiner J E, Bull S D, He X P, James T D. The development of a novel AND logic based fluorescence probe for the detection of peroxynitrite and GSH. Chemical Science (Cambridge), 2018, 9(15): 3672–3676
CrossRef Google scholar
[9]
Sedgwick A C, Dou W T, Jiao J B, Wu L, Williams G T, Jenkins A T A, Bull S D, Sessler J L, He X P, James T D. An ESIPT Probe for the Ratiometric Imaging of Peroxynitrite Facilitated by Binding to Abeta-Aggregates. Journal of the American Chemical Society, 2018, 140(43): 14267–14271
CrossRef Google scholar
[10]
Wu L, Han H H, Liu L, Gardiner J E, Sedgwick A C, Huang C, Bull S D, He X P, James T D. ESIPT-based fluorescence probe for the rapid detection of peroxynitrite ‘AND’ biological thiols. Chemical Communications (Cambridge), 2018, 54(80): 11336–11339
CrossRef Google scholar
[11]
Erbas-Cakmak S, Kolemen S, Sedgwick A C, Gunnlaugsson T, James T D, Yoon J, Akkaya E U. Molecular logic gates: The past, present and future. Chemical Society Reviews, 2018, 47(7): 2228–2248
CrossRef Google scholar
[12]
Odyniec M L, Sedgwick A C, Swan A H, Weber M, Tang T M S, Gardiner J E, Zhang M, Jiang Y B, Kociok-Kohn G, Elmes R B P, Bull S D, He X P, James T D. ‘AND’-based fluorescence scaffold for the detection of ROS/RNS and a second analyte. Chemical Communications (Cambridge), 2018, 54(61): 8466–8469
CrossRef Google scholar
[13]
Romieu A. “AND” luminescent “reactive” molecular logic gates: A gateway to multi-analyte bioimaging and biosensing. Organic & Biomolecular Chemistry, 2015, 13(5): 1294–1306
CrossRef Google scholar
[14]
Kolanowski J L, Liu F, New E J. Fluorescent probes for the simultaneous detection of multiple analytes in biology. Chemical Society Reviews, 2018, 47(1): 195–208
CrossRef Google scholar
[15]
Odyniec M L, Gardiner J E, Sedgwick A C, He X P, Bull S D, James T D. Dual enzyme activated fluorescein based fluorescent probe. Frontiers of Chemical Science and Engineering, 2020, 14(1): 117–121
[16]
Sedgwick A C, Han H H, Gardiner J E, Bull S D, He X P, James T D. Long-wavelength fluorescent boronate probes for the detection and intracellular imaging of peroxynitrite. Chemical Communications (Cambridge), 2017, 53(95): 12822–12825
CrossRef Google scholar
[17]
Sedgwick A C, Gardiner J E, Kim G, Yevglevskis M, Lloyd M D, Jenkins A T A, Bull S D, Yoon J, James T D. Long-wavelength TCF-based fluorescence probes for the detection and intracellular Imaging of biological thiols. Chemical Communications (Cambridge), 2018, 54(38): 4786–4789
CrossRef Google scholar
[18]
Wu D, Durán-Sampedro G, O’Shea D F. Synthesis and properties of water-soluble 1,9-dialkyl-substituted BF2 azadipyrromethene fluorophores. Frontiers of Chemical Science and Engineering, 2020, 14(1): 97–104
[19]
Gurram B, Li M, Fan J, Wang J, Peng X. Near-infrared fluorescent probe for fast track of cyclooxygenase-2 in Golgi apparatus in cancer cells. Frontiers of Chemical Science and Engineering, 2020, 14(1): 41–52
[20]
Brewster J T, Root H D, Mangel D, Samia A, Zafar H, Sedgwick A C, Lynch V M, Sessler J L. UO22+-mediated ring contraction of pyrihexaphyrin: Synthesis of a contracted expanded porphyrin-uranyl complex. Chemical Science (Cambridge), 2019, 10(21): 5596–5602
CrossRef Google scholar
[21]
Root H D, Thiabaud A, Sessler J L. Reduced texaphyrin: A ratiometric optical sensor for heavy metals in aqueous solution. Frontiers of Chemical Science and Engineering, 2020, 14(1): 19–27
[22]
Payne D T, Chahal M K, Březina V, Webre W A, Ariga K, D’Souza F, Labuta J, Hill J P. Diporphyrin tweezer for multichannel spectroscopic analysis of enantiomeric excess. Frontiers of Chemical Science and Engineering, 2020, 14(1): 28–40
[23]
Murfin L C, López-Alled C M, Sedgwick A C, Wenk J, James T D, Lewis S E. A simple, azulene-based colorimetric probe for the detection of nitrite in water. Frontiers of Chemical Science and Engineering, 2020, 14(1): 90–96
[24]
Deng W, Sun P, Fan Q, Zhang L, Minami T. Highly selective detection of copper(II) by a “ligand-free” conjugated copolymer in nucleophilic solvents. Frontiers of Chemical Science and Engineering, 2020, 14(1): 105–111
[25]
Maffeis V, Moni L, Stefano D D, Giordani S, Riva R. Diversity-oriented synthesis of blue emissive nitrogen heterocycles and their conjugation with carbon nano-onions. Frontiers of Chemical Science and Engineering, 2020, 14(1): 76–89
[26]
Xu S, Sedgwick A C, Elfeky S A, Chen W, Jones A S, Williams G T, Jenkins A T A, Bull S D, Fossey J S, James T D. A boronic acid-based fluorescent hydrogel for monosaccharide detection. Frontiers of Chemical Science and Engineering, 2020, 14(1): 112–116

RIGHTS & PERMISSIONS

2019 Higher Education Press and Springer-Verlag GmbH Germany, part of Springer Nature
AI Summary AI Mindmap
PDF(121 KB)

Accesses

Citations

Detail

Sections
Recommended

/