55
Views
1
CrossRef citations to date
0
Altmetric
Original Research

A “turn-on” fluorescent microbead sensor for detecting nitric oxide

, &
Pages 115-123 | Published online: 19 Dec 2014

References

  • IgnarroLJBugaGMWoodKSByrnsREChaudhuriGEndothelium-derived relaxing factor produced and released from artery and vein is nitric oxideProc Natl Acad Sci U S A198784926592692827174
  • PalmerRMFerrigeAGMoncadaSNitric oxide release accounts for the biological activity of endothelium-derived relaxing factorNature19873275245263495737
  • FurchgottRFEndothelium-derived relaxing factor: discovery, early studies, and identification as nitric oxideAngew Chem Int Ed19993818701880
  • IgnarroLJNitric oxide: a unique endogenous signaling molecule in vascular biologyAngew Chem Int Ed19993818821892
  • WinkDAVodovotzYLavalJLavalFDewhirstMWMitchellJBThe multifaceted roles of nitric oxide in cancerCarcinogenesis1998197117219635855
  • MoncadaSPalmerRMHiggsEANitric oxide: physiology, pathophysiology, and pharmacologyPharmacol Rev1991431091421852778
  • KerwinJFJrLancasterJRJrFeldmanPLNitric oxide: a new paradigm for second messengersMed Chem19953843434362
  • FeldmanPLGriffithOWStuehrDJThe surprising life of nitric oxideJ Chem Eng News1993712638
  • BredtDSSnyderSHAnnu Rev BiochemNitric oxide: a physiologic messenger molecule199463175195
  • MuradFDiscovery of some of the biological effects of nitric oxide and its role in cell signalingAngew Chem Int Ed19993818561868
  • ButlerARWilliamsDLHThe physiological role of nitric oxideChem Soc Rev199322233241
  • RubboHDarley-UsmarVFreemanBANitric oxide regulation of tissue free radical injuryChem Res Toxicol199698098208828915
  • FurchgottRFVanhouttePMEndothelium-derived relaxing and contracting factorsFASEB J19893200720182545495
  • NaganoTYoshimuraTBioimaging of nitric oxideChem Rev20021021235127011942795
  • BediouiFVilleneuveNElectrochemical nitric oxide sensors for biological samples: principle, selected examples and applicationElectroanalysis200315518
  • FujiiSYoshimuraTA new trend in iron-dithiocarbamate complexes: as an endogenous NO trapping agentCoord Chem Rev20001988999
  • BrienJFMcLaughlinBENakatsuKMarksGSChemiluminescence headspace-gas analysis for determination of nitric oxide formation in biological systemsMethods Enzymol199626883928782575
  • FranzKJSinghNLippardSJMetal-based NO sensing by selective ligand dissociationAngew Chem Int Ed20003921202122
  • KatayamaYSohNMaedaMStrategies and development of molecular probes for nitrogen monoxide monitoringBull Chem Soc Jpn20027516811691
  • HilderbrandSALimMHLippardSJDirhodium tetracarboxylate scaffolds as reversible fluorescence-based nitric oxide sensorsJ Am Chem Soc20041264972497815080703
  • GaoXNieSQuantum dot-encoded mesoporous beads with high brightness and uniformity: rapid readout using flow cytometryAnal Chem2004762406241015080756
  • SatheTRAgrawalANieSMesoporous silica beads embedded with semiconductor quantum dots and iron oxide nanocrystals: dual-function microcarriers for optical encoding and magnetic separationAnal Chem2006785627563216906704
  • LeeD-SLeeJ-CKooE-HCdSe/Zns-QD incorporated microbeads for ultra-sensitive chemo-sensor applicationsJ Korean Phys Soc20105711111114
  • YanJEstevezCSmithJEDye-doped nanoparticles for bioanalysisNano Today200724450
  • ZhaoXTapec-DytiocoRTanWUltrasensitive DNA detection using highly fluorescent bioconjugated nanoparticlesJ Am Chem Soc20031251147413129331
  • KohYBChristophGGMetal-metal bonding in dirhodium tetracarboxylates. Structure of the bis(pyridine) adduct of tetra-.mu.-acetato-dirhodium(II)Inorganic Chemistry1978179
  • CottonFAWaltonRAMultiple Bonds Between Metal Atoms2nd edOxford, UKOxford University Press1993