2,465
Views
14
CrossRef citations to date
0
Altmetric
Research Article

Quartz crystal microbalance based histidine sensor

, , &
Pages 221-227 | Received 14 Sep 2018, Accepted 04 Nov 2018, Published online: 27 Jan 2019

References

  • Hu Y, Wang Q, Zheng C, et al. Recyclable decoration of amine-functionalized magnetic nanoparticles with Ni2+ for determination of histidine by photochemical vapor generation atomic spectrometry. Anal Chem. 2014;86:842–848.
  • Wu C, Fan D, Zhou C, et al. Colorimetric strategy for highly sensitive and selective simultaneous detection of histidine and cysteine based on G‑Quadruplex-Cu(II) metalloenzyme. Anal Chem. 2016;88:2899–2903.
  • Qiao Y, Chen B, Yang Y, et al. Rational design of a highly selective fluorescent sensor for L-histidine detection in aqueous solution. Dalton Trans. 2016;45:1310–1314.
  • Qiu S, Miao M, Wang T, et al. A fluorescent probe for detection of histidine in cellular homogenate and ovalbumin based on the strategy of click chemistry. Biosens Bioelectron. 2013;42:332–336.
  • Watanabe M, Suliman ME, Qureshi AR, et al. Consequences of low plasma histidine in chronic kidney disease patients: associations with inflammation, oxidative stress, and mortality. Am J Clin Nutr. 2008;87:1860–1866.
  • Li LD, Chen ZB, Zhao HT, et al. Electrochemical real-time detection of l-histidine via self-cleavage of DNAzymes. Biosens Bioelectron. 2011;26:2781–2785.
  • Chen GN, Wu XP, Duan JP, et al. A study on electrochemistry of histidine and its metabolites based on the diazo coupling reaction. Talanta. 1999;49:319–330.
  • Li Q, Jin CL, Xu LS, et al. Histidine enhances carbamazepine action against seizures and improves spatial memory deficits induced by chronic transauricular kindling in rats. Acta Pharmacol Sin. 2005;26:1297–1302.
  • Attia MS. Nano optical probe samarium tetracycline complex for early diagnosis of histidinemia in new born children. Biosens Bioelectron. 2017;94:81–86.
  • Rao ML, Stefan H, Scheid C, et al. Serum amino acids, liver status, and antiepileptic drug therapy in epilepsy. Epilepsia. 1993;34:347–354.
  • Niu YC, Feng RN, Hou Y, et al. Histidine and arginine are associated with inflammation and oxidative stress in obese women. Br J Nutr. 2012;108:7–61.
  • Yu H, Xu L, You T. Indirect electrochemiluminescence detection of lysine and histidine separated by capillary electrophoresis based on charge displacement. Luminescence. 2013;28:217–221.
  • Ruta J, Grosset C, Ravelet C, et al. Chiral resolution of histidine using an anti-D-histidine L-RNA aptamer microbore column. J Chromatogr B Analyt Technol Biomed Life Sci. 2007;845:186–190.
  • Bae DR, Han WS, Lim JM, et al. Lysine-functionalized silver nanoparticles for visual detection and separation of histidine and histidine-tagged proteins. Langmuir. 2010;26:2181–2185.
  • Ye S, Guo Y, Xiao J, et al. A sensitive SERS assay of L-histidine via a DNAzyme-activated target recycling cascade amplification strategy. Chem Commun. 2013;49:3643–3645.
  • Hu F, Rohr KS, Hong M. NMR Detection of pH-dependent histidine-water proton exchange reveals the conduction mechanism of a transmembrane proton channel. J Am Chem Soc. 2012;134:3703–3713.
  • Prasad BB, Kumar D, Madhuri R, et al. Metal ion mediated imprinting for electrochemical enantioselective sensing of l-histidine at trace level. Biosens Bioelectron. 2011;28:117–126.
  • Whitcombe MJ, Chianella I, Larcombe L, et al. The rational development of molecularly imprinted polymer-based sensors for protein detection. Chem Soc Rev. 2011;40:1547–1571.
  • Mosbach K, Ramström O. The emerging technique of molecular imprinting and its future impact on biotechnology. Nat Biotechnol. 1996;14:163–170.
  • Wulff G, Sarhan A. Use of polymers with enzyme-analogous structures for the resolution of racemates. Angew Chem Int Ed. 1972;11:341–342.
  • Whitcombe MJ, Kirsch N, Nicholls IA. Molecular imprinting science and technology: a survey of the literature for the years 2004-2011. J Mol Recognit. 2014;27:297–401.
  • Dickert FL. Molecular imprinting and functional polymers for all transducers and applications. Sensors 2018;18:327–332.
  • Yilmaz E, Majidi D, Ozgur E, et al. Whole cell imprinting based Escherichia Coli sensors: a study for SPR and QCM. Sens. Actuator B-Chem. 2015;209:714–721.
  • Diltemiz SE, Keçili R, Ersöz A, et al. Molecular imprinting technology in quartz crystal microbalance (QCM) Sensors. Sensor. 2017;17:454–473.
  • Liu S, Zhou D, Guo T. Construction of a novel macroporous imprinted biosensor based on quartz crystal microbalance for ribonuclease A detection. Biosens Bioelectron. 2013;42:80–86.
  • Feng F, Zheng J, Qin P, et al. A novel quartz crystal microbalance sensor array based on molecular imprinted polymers for simultaneous detection of clenbuterol and its metabolites. Talanta. 2017;167:2017.
  • Speight RE, Cooper MA. A survey of the 2010 quartz crystal microbalance literature. J Mol Recognit. 2012;25:451–473.
  • Sener G, Ozgur E, Yilmaz E, et al. Quartz crystal microbalance based nanosensor for lysozyme detection with lysozyme imprinted nanoparticles. Biosens Bioelectron. 2010;26:815–821.
  • Garipcan B, Denizli A. A novel affinity support material for the separation of immunoglobulin G from human plasma. Macromol Biosci. 2002;2:135–144.
  • Miller JC, Miller JN. Statistics and chemometrics for analytical chemistry. 5th ed. Ellis-Horwood: New York; 2005. Chapter 5, p. 110–154.
  • Lin LP, Huang LS, Lin CW, et al. Determination of binding constant of DNA-binding drug to target dna by surface plasmon resonance biosensor technology. Curr Drug Targets Immune Endocr Metabol Disord. 2005;5:61–72.
  • Umpleby RJ, Baxter SC, Chen Y, et al. Characterization of molecularly imprinted polymers with the langmuir-freundlich isotherm. Anal Chem. 2001;73:4584–4591.