Towards new fluorometric methodologies based on the in-situ generation of gold nanoclusters.
暂无分享,去创建一个
G. Cepriá | A. González Orive | S. de Marcos | J. Galbán | Jesús Navarro | Javier Camacho-Aguayo | S. Martín
[1] S. de Marcos,et al. In situ enzymatic generation of Au/Pt nanoparticles as an analytical photometric system: proof of concept determination of tyramine , 2023, Microchimica Acta.
[2] V. Cebolla,et al. Tectomer-Mediated Optical Nanosensors for Tyramine Determination , 2023, Sensors.
[3] S. de Marcos,et al. Enzymatically mediated fluorescent copper nanocluster generation for tyramine determination , 2023, Analytical and Bioanalytical Chemistry.
[4] D. Compagnone,et al. Optical plasmonic sensing based on nanomaterials integrated in solid supports. A critical review. , 2022, Analytica chimica acta.
[5] A. Vlessidis,et al. Analyte-mediated formation and growth of nanoparticles for the development of chemical sensors and biosensors , 2022, Microchimica Acta.
[6] V. Mora,et al. Selective generation of gold nanostructures mediated by flavo-enzymes to develop optical biosensors. , 2022, Biosensors & bioelectronics.
[7] Y. F. Hassan,et al. Quantification of tyramine in different types of food using novel green synthesis of ficus carica quantum dots as fluorescent probe. , 2022, Luminescence : the journal of biological and chemical luminescence.
[8] Komal,et al. Gold nanoclusters: An ultrasmall platform for multifaceted applications. , 2021, Talanta.
[9] S. de Marcos,et al. Colorimetric-enzymatic determination of tyramine by generation of gold nanoparticles , 2020, Microchimica Acta.
[10] H. Byrne,et al. A novel, rapid, seedless, in situ synthesis method of shape and size controllable gold nanoparticles using phosphates , 2019, Scientific Reports.
[11] P. Pittia,et al. Silver and gold nanoparticles based colorimetric assays for the determination of sugars and polyphenols in apples. , 2019, Food research international.
[12] P. Schieberle,et al. Food sources and biomolecular targets of tyramine , 2018, Nutrition reviews.
[13] Dongdong Zhang,et al. A novel fluorescence sensing method based on quantum dot-graphene and a molecular imprinting technique for the detection of tyramine in rice wine , 2018 .
[14] N. Kaur,et al. Fe(III) conjugated fluorescent organic nanoparticles for ratiometric detection of tyramine in aqueous medium: A novel method to determine food quality. , 2018, Food chemistry.
[15] Xueming Xu,et al. HPTLC-FLD-SERS as a facile and reliable screening tool: Exemplarily shown with tyramine in cheese , 2017, Journal of food and drug analysis.
[16] E. Fröhlich,et al. Developing a sensor layer for the optical detection of amines during food spoilage. , 2017, Talanta.
[17] W. Koppenol,et al. Electrode Potentials of l-Tryptophan, l-Tyrosine, 3-Nitro-l-tyrosine, 2,3-Difluoro-l-tyrosine, and 2,3,5-Trifluoro-l-tyrosine. , 2016, Biochemistry.
[18] Jaebeom Lee,et al. Synthesis of Gold Nanoparticles with Buffer-Dependent Variations of Size and Morphology in Biological Buffers , 2016, Nanoscale Research Letters.
[19] G. Vinci,et al. Fast determination of biogenic amines in beverages by a core-shell particle column. , 2015, Food chemistry.
[20] Eugenio Coronado,et al. Correction of the tip convolution effects in the imaging of nanostructures studied through scanning force microscopy , 2014, Nanotechnology.
[21] S. Vittori,et al. Simultaneous determination of ten underivatized biogenic amines in meat by liquid chromatography-tandem mass spectrometry (HPLC-MS/MS). , 2014, Journal of mass spectrometry : JMS.
[22] K. W. Hipps,et al. Correlating elastic properties and molecular organization of an ionic organic nanostructure. , 2014, Nanoscale.
[23] R. Rathore,et al. Interaction of protonated tyramine with a hexaarylbenzene-based receptor: Extraction and DFT study , 2013 .
[24] María Cruz Martín,et al. A fast, reliable, ultra high performance liquid chromatography method for the simultaneous determination of amino acids, biogenic amines and ammonium ions in cheese, using diethyl ethoxymethylenemalonate as a derivatising agent. , 2013, Food chemistry.
[25] H. Gray,et al. Redox properties of tyrosine and related molecules , 2012, FEBS letters.
[26] H. Mayer,et al. A new ultra-pressure liquid chromatography method for the determination of biogenic amines in cheese. , 2010, Journal of chromatography. A.
[27] Jianping Xie,et al. Protein-directed synthesis of highly fluorescent gold nanoclusters. , 2009, Journal of the American Chemical Society.
[28] S. Mannino,et al. Nanoparticle-based assays of antioxidant activity. , 2006, Analytical chemistry.
[29] Jason Cleveland,et al. Finite optical spot size and position corrections in thermal spring constant calibration , 2004 .
[30] Q. Deng,et al. In-situ preparation of molecularly imprinted fluorescent sensing test strips for on-site detection of tyramine in vinegar , 2021 .
[31] Sarah N. Mobarez,et al. Functional electrospun nanofibers for multimodal sensitive detection of biogenic amines in food via a simple dipstick assay , 2017, Analytical and Bioanalytical Chemistry.
[32] J. Sofos,et al. Scientific Opinion on risk based control of biogenic amine formation in fermented foods 1 , 2011 .