Fluorometric determination of the activity and inhibition of terminal deoxynucleotidyl transferase via in-situ formation of copper nanoclusters using enzymatically generated DNA as template

[1]  Yuming Huang,et al.  Recent advances in the analytical applications of copper nanoclusters , 2016 .

[2]  Kemin Wang,et al.  Poly(thymine)-Templated Copper Nanoparticles as a Fluorescent Indicator for Hydrogen Peroxide and Oxidase-Based Biosensing. , 2015, Analytical chemistry.

[3]  X. Qu,et al.  Hybridization chain reaction engineered dsDNA for Cu metallization: an enzyme-free platform for amplified detection of cancer cells and microRNAs. , 2015, Chemical communications.

[4]  Modi Wang,et al.  A luminescence switch-on probe for terminal deoxynucleotidyl transferase (TdT) activity detection by using an iridium(III)-based i-motif probe. , 2015, Chemical communications.

[5]  S. Yao,et al.  Enzymatically generated long polyT-templated copper nanoparticles for versatile biosensing assay of DNA-related enzyme activity , 2015 .

[6]  Chao Lu,et al.  A highly selective fluorescent probe for sulfide ions based on aggregation of Cu nanocluster induced emission enhancement. , 2015, The Analyst.

[7]  Shenghao Xu,et al.  Sequence-dependent dsDNA-templated formation of fluorescent copper nanoparticles. , 2015, Chemistry.

[8]  Xiaodong Xia,et al.  Silver nanoclusters-based fluorescence assay of protein kinase activity and inhibition. , 2015, Analytical chemistry.

[9]  Sheng Lin,et al.  Label-free luminescence switch-on detection of hepatitis C virus NS3 helicase activity using a G-quadruplex-selective probe† †Electronic supplementary information (ESI) available: Compound characterisation and supplementary data. See DOI: 10.1039/c4sc03319a Click here for additional data file. , 2014, Chemical science.

[10]  S. Yao,et al.  A versatile biosensing system for DNA-related enzyme activity assay via the synthesis of silver nanoclusters using enzymatically-generated DNA as template. , 2014, Biosensors & bioelectronics.

[11]  Kemin Wang,et al.  dsDNA-templated fluorescent copper nanoparticles: poly(AT-TA)-dependent formation , 2014 .

[12]  Xiang Zhou,et al.  Sensitive detection of DNA methyltransferase activity based on exonuclease-mediated target recycling. , 2014, Analytical chemistry.

[13]  Kemin Wang,et al.  dsDNA-specific fluorescent copper nanoparticles as a "green" nano-dye for polymerization-mediated biochemical analysis. , 2014, Chemical communications.

[14]  Kemin Wang,et al.  Concatemeric dsDNA-templated copper nanoparticles strategy with improved sensitivity and stability based on rolling circle replication and its application in microRNA detection. , 2014, Analytical chemistry.

[15]  S. Yao,et al.  Randomly arrayed G-quadruplexes for label-free and real-time assay of enzyme activity. , 2014, Chemical communications.

[16]  Erkang Wang,et al.  Metal nanoclusters: New fluorescent probes for sensors and bioimaging , 2014 .

[17]  Feng Li,et al.  Amplified detection of T4 polynucleotide kinase activity by the coupled λ exonuclease cleavage reaction and catalytic assembly of bimolecular beacons. , 2014, Analytical chemistry.

[18]  Kemin Wang,et al.  Poly(thymine)-templated selective formation of fluorescent copper nanoparticles. , 2013, Angewandte Chemie.

[19]  Wei Dai,et al.  Highly thymine-dependent formation of fluorescent copper nanoparticles templated by ss-DNA , 2013, Nanotechnology.

[20]  Huangxian Ju,et al.  Trace and label-free microRNA detection using oligonucleotide encapsulated silver nanoclusters as probes. , 2012, Analytical chemistry.

[21]  Botao Zhao,et al.  Simple and sensitive microRNA labeling by terminal deoxynucleotidyl transferase. , 2012, Acta biochimica et biophysica Sinica.

[22]  Yuliang Zhao,et al.  Ag cluster-aptamer hybrid: specifically marking the nucleus of live cells. , 2011, Chemical communications.

[23]  Lidong Li,et al.  Water‐Soluble Conjugated Polymers for Amplified Fluorescence Detection of Template‐Independent DNA Elongation Catalyzed by Polymerase , 2011 .

[24]  Yu-Ting Su,et al.  Detection of copper ions through recovery of the fluorescence of DNA-templated copper/silver nanoclusters in the presence of mercaptopropionic acid. , 2010, Analytical chemistry.

[25]  Andriy Mokhir,et al.  Selective dsDNA-templated formation of copper nanoparticles in solution. , 2010, Angewandte Chemie.

[26]  A. Chilkoti,et al.  Surface-initiated enzymatic polymerization of DNA. , 2007, Langmuir : the ACS journal of surfaces and colloids.

[27]  F. Recillas-Targa,et al.  Terminal deoxynucleotidyl transferase is down‐regulated by AP‐1‐like regulatory elements in human lymphoid cells , 2004, Immunology.

[28]  M. Borowitz,et al.  Detection of terminal deoxynucleotidyl transferase by flow cytometry: a three color method. , 1994, Cytometry.

[29]  S. Stass,et al.  Detection of terminal deoxynucleotidyl transferase in acute leukemias using monoclonal antibodies directed against native and denatured sites. , 1986, American Journal of Clinical Pathology.

[30]  F. Bollum Terminal deoxynucleotidyl transferase as a hematopoietic cell marker. , 1979, Blood.

[31]  M. Modak Biochemistry of terminal deoxynucleotidyltransferase: mechanism of inhibition by adenosine 5'-triphosphate. , 1978, Biochemistry.

[32]  Jingjing Dong,et al.  One facile fluorescence strategy for sensitive detection of endonuclease activity using DNA-templated copper nanoclusters as signal indicators , 2017 .

[33]  Mariona Sodupe,et al.  A Quantum Chemical Study of Cu2+ Interacting with Guanine−Cytosine Base Pair. Electrostatic and Oxidative Effects on Intermolecular Proton-Transfer Processes , 2004 .