Citation: Huan-Ren Cheng, Ying Qian. Two novel rhodamine-perylenediimide fluorescent probes: Synthesis, photophysical properties, and cell imaging[J]. Chinese Chemical Letters, 2016, 27(6): 879-886. doi: 10.1016/j.cclet.2016.01.039
Two novel rhodamine-perylenediimide fluorescent probes: Synthesis, photophysical properties, and cell imaging
English
Two novel rhodamine-perylenediimide fluorescent probes: Synthesis, photophysical properties, and cell imaging
-
Key words:
- Perylenediimide
- / Rhodamine
- / Photoinduced electron transfer
- / Dual-switch
-
-
[1] W.S. Zhang, B. Tang, X. Liu, et al., A highly sensitive acidic pH fluorescent probe and its application to HepG2 cells, Analyst 134 (2009) 367-371.
-
[2] H. Deveci, A. Akcil, I. Alp, Bioleaching of complex zinc sulphides using mesophilic and thermophilic bacteria: comparative importance of pH and iron, Hydrometallurgy 73 (2004) 293-303.
-
[3] M.K. Nielsen, N. Arneborg, S12.7 The effect of citric acid and pH on growth and metabolism of anaerobic Saccharomyces cerevisiae and Zygosaccharomyces bailii cultures, Food Microbiol. 24 (2007) 101-105.
-
[4] J. Hynes, T. O'Riordan, D. Papkovsky, Y. Will, The use of oxygen and pH-sensitive fluorescent probes for the investigation of perturbed cell metabolism, Biochim. Biophys. Acta 1777 (2008) S77.
-
[5] M. Kroez, E.J. Kanzy, P. Gronski, G. Dickneite, Hypotension with intravenous immunoglobulin therapy: importance of pH and dimer formation, Biologicals 31 (2003) 277-286.
-
[6] J. Hynes, T.C. O'Riordan, A.V. Zhdanov, et al., In vitro analysis of cell metabolism using a long-decay pH-sensitive lanthanide probe and extracellular acidification assay, Anal. Biochem. 390 (2009) 21-28.
-
[7] T. Hasegawa, Y. Kondo, Y. Koizumi, et al., A highly sensitive probe detecting low pH area of HeLa cells based on rhodamine B modified b-cyclodextrins, Bioorg. Med. Chem. 17 (2009) 6015-6019.
-
[8] S. Maskula, J. Nyman, A. Ivaska, Titration of strong and weak acids by sequential injection analysis technique, Talanta 52 (2000) 91-99.
-
[9] T.R.L.C. Paixão, L. Kosminsky, M. Bertotti, Use of electrochemically pretreated glassy carbon electrodes as pH sensors in potentiometric titrations, Sens. Actuators B 87 (2002) 41-46.
-
[10] M. Iga, A. Seki, Y. Kubota, K. Watanabe, Acidity measurements based on a heterocore structured fiber optic sensor, Sens. Actuators B 96 (2003) 234-238.
-
[11] H.F. Ji, K.M. Hansen, Z. Hu, T. Thundat, Detection of pH variation using modified microcantilever sensors, Sens. Actuators B 72 (2001) 233-238.
-
[12] Z. Li, S.Q. Wu, J.H. Han, S.F. Han, Imaging of intracellular acidic compartments with a sensitive rhodamine based fluorogenic pH sensor, Analyst 136 (2011) 3698-3706.
-
[13] S. Kang, S. Kim, Y.K. Yang, S. Bae, J. Tae, Fluorescent and colorimetric detection of acid vapors by using solid-supported rhodamine hydrazides, Tetrahedron Lett. 50 (2009) 2010-2012.
-
[14] Y.Q. Miao, J.R. Chen, K.M. Fang, New technology for the detection of pH, J. Biochem. Biophys. Methods 63 (2005) 1-9.
-
[15] M.Z. Tian, X.J. Peng, F. Feng, et al., Fluorescent pH probes based on boron dipyrromethene dyes, Dyes Pigments 81 (2009) 58-62.
-
[16] B. Tang, F.B. Yu, P. Li, et al., A near-infrared neutral pH fluorescent probe for monitoring minor pH changes: imaging in living HepG2 and HL-7702 cells, J. Am. Chem. Soc. 131 (2009) 3016-3023.
-
[17] Z.P. Liu, C.L. Zhang, W.J. He, et al., A charge transfer type pH responsive fluorescent probe and its intracellular application, New J. Chem. 34 (2010) 656-660.
-
[18] L.J. Liu, P. Guo, L. Chai, et al., Fluorescent and colorimetric detection of pH by a rhodamine-based probe, Sens. Actuators B 194 (2014) 498-502.
-
[19] M.Z. Tian, X.J. Peng, J.L. Fan, J.Y. Wang, S.G. Sun, A fluorescent sensor for pH based on rhodamine fluorophore, Dyes Pigments 95 (2012) 112-115.
-
[20] X. Zhang, Y. Shiraishi, T. Hirai, Cu (II)-Selective Green fluorescence of a rhodamine-diacetic acid conjugate, Org. Lett. 24 (2007) 5039-5042.
-
[21] Y. Zhao, Y. Sun, X. Lv, et al., Rhodamine-based chemosensor for Hg2+ in aqueous solution with a broad pH range and its application in live cell imaging, Org. Biomol. Chem. 8 (2010) 4143-4147.
-
[22] L. Yuan, W.Y. Lin, Y.M. Feng, A rational approach to tuning the pKa values of rhodamines for living cell fluorescence imaging, Org. Biomol. Chem. 9 (2011) 1723-1726.
-
[23] L. Feng, H. Li, Y.J. Lv, Y.F. Guan, Colorimetric and "turn-on" fluorescent determination of Cu2+ ions based on rhodamine-quinoline derivative, Analyst 137 (2012) 5829-5833.
-
[24] S.T. Cai, Y. Lu, S. He, et al., A highly sensitive and selective turn-on fluorescent chemosensor for palladium based on a phosphine-rhodamine conjugate, Chem. Commun. 49 (2013) 822-824.
-
[25] N.R. Chereddy, S. Thennarasu, A.B. Mandal, Incorporation of triazole into a quinoline-rhodamine conjugate imparts iron (III) selective complexation permitting detection at nanomolar levels, Dalton Trans. 41 (2012) 11753-11759.
-
[26] H.L. Li, H. Guan, X.R. Duan, et al., An acid catalyzed reversible ring-opening/ringclosure reaction involving a cyano-rhodamine spirolactam, Org. Biomol. Chem. 11 (2013) 1805-1809.
-
[27] P. Mahato, S. Saha, E. Suresh, et al., Ratiometric detection of Cr3+ and Hg2+ by a naphthalimide-rhodamine based fluorescent probe, Inorg. Chem. 51 (2012) 1769-1777.
-
[28] H. Zheng, X.Q. Zhan, Q.N. Bian, X.J. Zhang, Advances in modifying fluorescein and rhodamine fluorophores as fluorescent chemosensors, Chem. Commun. 49 (2013) 429-447.
-
[29] X.L. Wu, X.L. Jin, Y.X. Wang, et al., Synthesis and spectral properties of novel chlorinated pH fluorescent probes, J. Lumin. 131 (2011) 776-780.
-
[30] N.I. Georgiev, A.M. Asiri, A.H. Qusti, K.A. Alamry, V.B. Bojinov, A pH sensitive and selective ratiometric PAMAM wavelength-shifting bichromophoric system based on PET, FRET and ICT, Dyes Pigments 102 (2014) 35-45.
-
[31] H.S. Lv, J. Liu, J. Zhao, B.X. Zhao, J.Y. Miao, Highly selective and sensitive pHresponsive fluorescent probe in living Hela and HUVEC cells, Sens. Actuators B 177 (2013) 956-963.
-
[32] Z.Q. Hua, M. Li, M.D. Liu, W.M. Zhuang, G.K. Li, A highly sensitive fluorescent acidic pH probe based on rhodamine B diethyl-2-aminobutenedioate conjugate and its application in living cells, Dyes Pigments 96 (2013) 71-75.
-
[33] H.S. Lv, S.Y. Huang, B.X. Zhao, J.Y. Miao, A new rhodamine B-based lysosomal pH fluorescent indicator, Anal. Chim. Acta 788 (2013) 177-182.
-
[34] J.L. Fan, C.Y. Lin, H.L. Li, et al., A ratiometric lysosomal pH chemosensor based on fluorescence resonance energy transfer, Dyes Pigments 99 (2013) 620-626.
-
[35] J.Q. Feng, B.L. Liang, D.L. Wang, L. Xue, X.Y. Li, Novel fluorescent dyes with fused perylene tetracarboxlic diimide and BODIPY analogue structures, Org. Lett. 10 (2008) 4437-4440.
-
[36] C.T. Zhao, Y.X. Zhang, R.J. Li, X.Y. Li, J.Z. Jiang, Di (alkoxy)-and di (alkylthio)-substituted perylene-3, 4;9,1'-tetracarboxy diimides with tunable electrochemical and photophysical properties, J. Org. Chem. 72 (2007) 2402-2410.
-
[37] W. Xu, H.L. Chen, Y.F. Wang, et al., Photoinduced electron and energy transfer in dyads of porphyrin dimer and perylene tetracarboxylic diimide, Chem. Phys. Chem. 9 (2008) 1409-1415.
-
[38] B.A. Jones, M.J. Ahrens, M.H. Yoon, et al., High-Mobility air-stable n-type semiconductors with processing versatility: dicyanoperylene-3, 4:9, 1'-bis (dicarboximides), Angew. Chem. Int. Ed. 43 (2004) 6363-6366.
-
[39] K.L. Liu, Z.J. Xu, M.Z. Yin, et al., A multifunctional perylenediimide derivative (DTPDI) can be used as a recyclable specific Hg2+ ion sensor and an efficient DNA delivery carrier, J. Mater. Chem. B 2 (2014) 2093-2096.
-
[40] N.I. Georgiev, A.R. Sakr, V.B. Bojinov, Design and synthesis of novel fiuorescence sensing perylene diimides based on photoinduced electron transfer, Dyes Pigments 91 (2011) 332-339.
-
[41] L.M. Huang, S.W. Tam-Chang, 9-Piperazine substituted perylene-3, 4-dicarboximide as a fluorescent probe in ratiometric analysis, Chem. Commun. 47 (2011) 2291-2293.
-
[42] Y.X. Wu, X.B. Zhang, J.B. Li, et al., Bispyrene-fluorescein hybrid based FRET cassette: a convenient platform toward ratiometric time-resolved probe for bioanalytical applications, Anal. Chem. 86 (2014) 10389-10396.
-
[43] S.S. You, Q. Cai, K. Müllen, W.T. Yang, M.Z. Yin, pH-sensitive unimolecular fluorescent polymeric micelles: from volume phase transition to optical response, Chem. Commun. 50 (2014) 823-825.
-
[44] F.S. Goodson, D.K. Panda, S. Ray, et al., Tunable electronic interactions between anions and perylenediimide, Org. Biomol. Chem. 11 (2011) 4797-4803.
-
[45] U. Hahn, J.F. Nierengarten, B. Delavaux-Nicot, et al., Fullerodendrimers with a perylenediimide core, New J. Chem. 35 (2011) 2234-2244.
-
[46] J.H. Hurenkamp, W.R. Browne, R. Augulis, et al., Intramolecular energy transfer in a tetra-coumarinperylene system: influence of solvent and bridging unit on electronic properties, Org. Biomol. Chem. 5 (2007) 3354-3362.
-
[47] J.S. Kim, D.T. Quang, Calixarene-derived fluorescent probes, Chem. Rev. 107 (2007) 3780-3799.
-
[48] C.T. Chen, W.P. Huang, A highly selective fluorescent chemosensor for lead ions, J. Am. Chem. Soc. 124 (2002) 6246-6247.
-
[49] J.H. Huang, Y.F. Xu, X.H. Qian, A rhodamine-based Hg2+ sensor with high selectivity and sensitivity in aqueous solution: A NS2-containing receptor, J. Org. Chem. 74 (2009) 2167-2170.
-
[50] M.J. Ahrens, M.J. Tauber, M.R. Wasielewski, Bis (n-octylamino) perylene-3, 4: 9, 1'-bis (dicarboximide)s and their radial cations: synthesis, electrochemistry, and ENDOR spectroscopy, J. Org. Chem. 71 (2006) 2107-2114.
-
[51] T.E. Kaiser, V. Stepanenko, F. Würthner, Fluorescent J-aggregates of core-substituted perylene bisimides: studies on structure-property relationship, nucleationelongation mechanism, and sergeants-and-soldiers principle, J. Am. Chem. Soc. 131 (2009) 6719-6732.
-
[52] G.A. Crosby, J.N. Demas, The measurement of photoluminescence quantum yields. Review, J. Phys. Chem. 75 (1971) 991-1024.
-
[53] D. Staneva, P. Bosch, A.M. Asiri, L.A. Taib, I. Grabchev, Studying pH dependence of the photophysical properties of a blue emitting fiuorescent PAMAM dendrimer and evaluation of its sensor potential, Dyes Pigments 105 (2014) 114-120.
-
-
扫一扫看文章
计量
- PDF下载量: 1
- 文章访问数: 1531
- HTML全文浏览量: 32

下载: