Journal of Hebei University (Natural Science Edition) ›› 2017, Vol. 37 ›› Issue (2): 147-154.DOI: 10.3969/j.issn.1000-1565.2017.02.007
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SU Huijuan,ZHAO Xudong,ZHANG Li,FAN Wenjie,WANG Yucong,JIA Hongxia
Received:
2016-11-21
Online:
2017-03-25
Published:
2017-03-25
CLC Number:
SU Huijuan,ZHAO Xudong,ZHANG Li,FAN Wenjie,WANG Yucong,JIA Hongxia. A new method for visual detection of pyrophosphate[J]. Journal of Hebei University (Natural Science Edition), 2017, 37(2): 147-154.
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URL: //xbzrb.hbu.edu.cn/EN/10.3969/j.issn.1000-1565.2017.02.007
[1] MATHEWS C K,VAN HOLDE K E.Biochemistry[M].Redwood City,CA,USA:The Benjamin/Cummings Publishing Company,1990. [2] LEHNINGER A,NELSON D L,COX M M.Lehninger principles of biochemistry[M].5th edn.New York,NY:W.H.Freeman,2008. [3] KIM S K,LEE D H,HONG J I,et al.Chemosensors for pyrophosphate[J].Acc Chem Res,2009,42(1):23-31.DOI:10.1021/ar800003f. [4] XU S Q,HE M,YU H P,et al.A quantitative method to measure telomerase activity by bioluminescence conneted with telomeric repeat amplification protocol[J].Anal Biochem,2001,299(2):188-193.DOI:10.1006/abio.2001.5418. [5] TIMMS A E,ZHANG Y,RUSSELL R G G,et al.Genetic studies of disorders of calcium crystal deposition[J].Rheumatology,2002,41(7):725-729.DOI:10.1093/rheumatology/41.7.725. [6] RATNER B,HOFFMAN A,SCHOEN F,et al.Biomaterials science[M].London:Academic Press,1996. [7] CHEUNG C P,SUHADOLNIK R J.Analysis of inorganic pyrophosphate at the picomole level[J].Anal Biochem,1977,83(1):61-63.DOI:10.1016/0003-2697(77)90510-3. [8] LEE S L,YUEN K,JOLLIFFE K A,et al.Fluorescent and colorimetric chemosensors for pyrophosphate[J].Chem Soc Rev,2015,44:1749-1762.DOI:10.1039/c4cs00353e. [9] CUI H,CAI F,XU Q.Determination of tripolyphosphate in frozen cod and scallop adductor by ion chromatography[J].J Chromatogr A,2000,884(1-2):89-92.DOI:10.1016/S0021-9673(00)00055-8. [10] NGO H T,LIU X J,JOLLIFFE K A.Anion recognition and sensing with Zn(Ⅱ)-dipicolylamine complexes[J].Chem Soc Rev,2012,41:4928-4965.DOI:10.1039/C2CS35087D. [11] ZHAO X Y,LIU Y,SCHANZE K S.A conjugated polyelectrolyte-based fluorescence sensor for pyrophosphate[J].Chem Commun,2007:2914-2916.DOI:10.1039/B706629E. [12] LIU J X,DING S N.Monitoring pyrophosphate anions via cobalt(Ⅱ)-modulated fluorescence of cadmium sulfide quantum dots[J].Anal Methods,2016,8:2170-2175.DOI:10.1039/C5AY03116H. [13] TSAY O G,MANJARE S T,KIM H,et al.Novel reversible Zn2+-assisted biological phosphate“turn-On”probing through stable aryl-hydrazone salicylaldimine conjugation that attenuates ligand hydrolysis[J].Inorg Chem,2013,52(17):10052-10061.DOI:10.1021/ic4013526. [14] LOHANI C R,KIM J M,CHUNG S Y,et al.Colorimetric and fluorescent sensing of pyrophosphate in 100% aqueous solution by a system comprised of rhodamine B compound and Al3+ complex[J].Analyst,2010,135:2079-2048.DOI:10.1039/C0AN00059K. [15] ZHAO X J,HE L,HUANG C Z.Highly selective visual distinction of pyrophosphate from other phosphate anions with 4-[(5-chloro-2-pyridyl)azo] -1,3-diaminobenzene in the presence of copper(Ⅱ)ions[J].Talanta,2012,101:59-63.DOI:10.1016/j.talanta.2012.08.046. [16] ZHU W H,HUANG X M,GUO Z Q,et al.A novel NIR fluorescent turn-on sensor for the detection of pyrophosphate anion in complete water system[J].Chem Commun,2012,48,1784-1786.DOI:10.1039/C2CC16902A. [17] LI Y,DONG X H,ZHONG C,et al.A water-soluble two-photon fluorescent turn-on probe for pyrophosphate anion:design,synthesis and properties[J].Sensor Actuat B:Chem,2013,183:124-128.DOI:10.1016/j.snb.2013.03.112. [18] SU X,ZHANG C,XIAO X J,et al.A kinetic method for expeditious detection of pyrophosphate anions at nanomolar concentrations based on a nucleic acid fluorescent sensor[J].Chem Commun,2013,49,798-800.DOI:10.1039/C2CC38020J. [19] BAWENDI M G,STEIGERWALD M W,BRUS L E.The quantum mechanics of larger semiconductor clusters(“quantum dots”)[J].Annu Rev of Phys Chem,1990,41:477-496.DOI:10.1146/annurev.pc.41.100190.002401. [20] CHEN Y F,ROSENZWEIG Z.Luminescent CdS quantum dots as selective ion probes[J].Anal Chem,2002,74(19):5132-5138.DOI:10.1021/ac0258251. [21] SONG Y Y,CAO X B,GUO Y,et al.Fabrication of mesoporous CdTe/ZnO@SiO2 core/shell nanostructures with tunable dual emission and ultrasensitive fluorescence response to metal ions[J].Chem Mater,2009,21(1):68-77.DOI:10.1021/cm801925j. [22] KONESWARAN M,NARAYANASWAMY R.L-Cysteine-capped ZnS quantum dots based fluorescence sensor for Cu2+ ion[J].Sensor Actuat B:Chem,2009,139(1):104-109.DOI:10.1016/j.snb.2008.09.028. [23] LOU Y B,ZHAO Y X,CHEN J X,et al.Metal ions optical sensing by semiconductor quantum dots[J].J Mater Chem luor C,2014,2:595-613.DOI:10.1039/C3TC31937G. [24] ZHAO X,DU J,WU Y Z.Synthesis of highly luminescent POSS-coated CdTe quantum dots and their application in trace Cu2+ detection[J].J Mater Chem A,2013,1:11748-11753.DOI:10.1039/C3TA12335A. [25] XIA Y S,ZHU C Q.Aqueous synthesis of type-II core/shell CdTe/CdSe quantum dots for near-infrared fluorescent sensing of copper(Ⅱ)[J].Analyst,2008,133:928-932.DOI:10.1039/B801963K. [26] FREEMAN R,FINDER T,WILLNER I.Multiplexed analysis of Hg2+ and Ag+ ions by nucleic acid functionalized CdSe/ ZnS quantum dots and their use for logic gate operations[J].Angew Chem,Int Ed,2009,48(42):7818-7821.DOI:10.1002/anie.200902395. [27] CHEN J L,ZHU C Q.Functionalized cadmium sulfide quantum dots as fluorescence probe for silver ion determination[J].Anal Chim Acta,2005,546(2):147-153.DOI:10.1016/j.aca.2005.05.006. [28] ALI E M,ZHENG Y G,YU H H,et al.Ultrasensitive Pb2+ detection by glutathione-capped quantum dots[J].Anal Chem,2007,79(24):9452-9458.DOI:10.1021/ac071074x. [29] KE J,LI X Y,ZHAO Q D,et al.Ultrasensitive quantum dot fluorescence quenching assay for selective detection of mercury ions in drinking water[J].Sci Rep-uk,2014,4:5624.DOI:10.1038/srep05624. [30] LU X H,ZHAO Y J,ZHANG J J,et al.Copper ion-induced fluorescence band shift of CdTe quantum dots:a highly specific strategy for visual detection of Cu2+ with a portable UV lamp[J].Analyst,2015,140:7859-7863.DOI:10.1039/C5AN01963J. [31] XU K F,CHEN Z H,ZHOU L,et al.Fluorometric method for inorganic pyrophosphatase activity detection and inhibitor screening based on click chemistry[J].Anal Chem,2015,87(1):816-820.DOI:10.1021/ac503958r. [32] POZNYAK S K,OSIPOVICH N P,SHAVEL A,et al.Size-dependent electrochemical behavior of thiol-capped CdTe nanocrystals in aqueous solution[J].J Phys Chem B,2005,109(3):1094-1100.DOI:10.1021/jp0460801. [33] ZHANG K,MEI Q S,GUAN G J,et al.Ligand replacement-induced fluorescence switch of quantum dots for ultrasensitive detection of organophosphorothioate pesticides[J].Anal Chem,2010,82(22):9579-9586.DOI:10.1021/ac102531z. [34] GUO Z Q,ZHU W H,TIAN H.Hydrophilic copolymer bearing dicyanomethylene-4H-pyran moiety as fluorescent film sensor for Cu2+ and pyrophosphate anion[J].Macromolecules,2010,43:739-744.DOI:10.1021/ma902466g. [35] GE J Z,LIU Z H,CAO Q Y,et al.A pyrene-functionalized polynorbornene for ratiometric fluorescence sensing of pyrophosphate[J].Chem Asia J,2016,11:687-690.DOI:10.1002/asia.201501363. [36] ZHAO X Y,SCHANZE K S.Fluorescent ratiometric sensing of pyrophosphate via induced aggregation of a conjugated polyelectrolyte[J].Chem Commun,2010,46:6075-6077.DOI:10.1039/c0cc01332c. [37] LIU J M,CUI M L,JIANG S L,et al.BSA-protected gold nanoclusters as fluorescent sensor for selective and sensitive detection of pyrophosphate[J].Anal Methods,2013,5:3942-3947.DOI:10.1039/c3ay00054k. [38] GAO J,RIIS-JOHANNESSEN T,SCOPELLITI R,et al.A fluorescent sensor for pyrophosphate based on a Pd(Ⅱ)complex[J].Dalton Trans,2010,39:7114-7118.DOI:10.1039/c0dt00434k. [39] NOIPA T,NGAMDEE K,TUNTULANI T,et al.Cysteamine CdS quantum dots decorated with Fe3+ as a fluorescence sensor for the detection of PPi[J].Spectrochim Acta Part A,2014,118:17-23.DOI:10.1016/j.saa.2013.08.067. |
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