Selective extraction of myoglobin from human serum with antibody-biomimetic magnetic nanoparticles.
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Wenzhi Li | Shuangshou Wang | Panwen Sun | Zhongqi Xu | Yuwen Ding | Wenjing Xu | Wei Xu | Jing Gu | Wei Xu
[1] William E. Keiser,et al. The Use of Characteristic Group Frequencies in Structural Analysis , 1970 .
[2] S. Hubbard,et al. X-ray crystal structure of a recombinant human myoglobin mutant at 2.8 A resolution. , 1990, Journal of molecular biology.
[3] M. Ohman,et al. Early detection of acute myocardial infarction: additional diagnostic information from serum concentrations of myoglobin in patients without ST elevation. , 1990, British heart journal.
[4] Y. Yamagata,et al. Contribution of intra- and intermolecular hydrogen bonds to the conformational stability of human lysozyme(,). , 1999, Biochemistry.
[5] G. Wulff,et al. Enzyme-like catalysis by molecularly imprinted polymers. , 2002, Chemical reviews.
[6] Teruo Okano,et al. Anomalous binding profile of phenylboronic acid with N-acetylneuraminic acid (Neu5Ac) in aqueous solution with varying pH. , 2003, Journal of the American Chemical Society.
[7] Fang Zhang,et al. One-pot synthesis and bioapplication of amine-functionalized magnetite nanoparticles and hollow nanospheres. , 2006, Chemistry.
[8] K. Schulten,et al. Imaging the migration pathways for O2, CO, NO, and Xe inside myoglobin. , 2006, Biophysical journal.
[9] Haeshin Lee,et al. Mussel-Inspired Surface Chemistry for Multifunctional Coatings , 2007, Science.
[10] Yajun Wang,et al. Self-Polymerization of Dopamine as a Versatile and Robust Technique to Prepare Polymer Capsules , 2009 .
[11] P. Dou,et al. Study on a hidden protein-DNA binding in salmon sperm DNA sample by dynamic kinetic capillary isoelectric focusing. , 2009, Analytica chimica acta.
[12] R. Doolittle,et al. Crystal structure of human fibrinogen. , 2009, Biochemistry.
[13] V. Endeward,et al. Significance of myoglobin as an oxygen store and oxygen transporter in the intermittently perfused human heart: a model study. , 2010, Cardiovascular research.
[14] J. W. Maarsen,et al. The Raman and infra‐red spectra of some compounds (iH7C3O)2PXO , 2010 .
[15] U. Flögel,et al. Unmasking the Janus face of myoglobin in health and disease , 2010, Journal of Experimental Biology.
[16] Christina J. Booker,et al. Removal of sample background buffering ions and myoglobin enrichment via a pH junction created by discontinuous buffers in capillary electrophoresis. , 2011, Journal of chromatography. A.
[17] P. Messersmith,et al. Facile, high efficiency immobilization of lipase enzyme on magnetic iron oxide nanoparticles via a biomimetic coating , 2011, BMC biotechnology.
[18] Spatio-temporally resolved detection on a microfluidic chip for monitoring the dynamic processes of molecular events. , 2012, The Analyst.
[19] Andrey V Lisitsa,et al. Highly sensitive detection of human cardiac myoglobin using a reverse sandwich immunoassay with a gold nanoparticle-enhanced surface plasmon resonance biosensor. , 2013, Analytica chimica acta.
[20] Hongyuan Chen,et al. Photolithographic boronate affinity molecular imprinting: a general and facile approach for glycoprotein imprinting. , 2013, Angewandte Chemie.
[21] Zhen Liu,et al. Magnetic nanoparticles with dendrimer-assisted boronate avidity for the selective enrichment of trace glycoproteins , 2013 .
[22] Zhen Liu,et al. Probing the interactions between boronic acids and cis-diol-containing biomolecules by affinity capillary electrophoresis. , 2013, Analytical chemistry.
[23] Zhen Liu,et al. Affinity-tunable specific recognition of glycoproteins via boronate affinity-based controllable oriented surface imprinting , 2014 .
[24] Zhen Liu,et al. A boronate affinity sandwich assay: an appealing alternative to immunoassays for the determination of glycoproteins. , 2014, Angewandte Chemie.
[25] Xiaodong Bi,et al. Enzyme activity assay of glycoprotein enzymes based on a boronate affinity molecularly imprinted 96-well microplate. , 2014, Analytical chemistry.
[26] S. Dimauro,et al. NERVE AND MUSCLE ( LH WEIMER , SECTION EDITOR ) Metabolic Myoglobinuria , 2015 .
[27] Jian Ouyang,et al. Surface-enhanced Raman scattering imaging of cancer cells and tissues via sialic acid-imprinted nanotags. , 2015, Chemical communications.
[28] Jin Ye,et al. Boronate-Affinity Glycan-Oriented Surface Imprinting: A New Strategy to Mimic Lectins for the Recognition of an Intact Glycoprotein and Its Characteristic Fragments. , 2015, Angewandte Chemie.
[29] S. Gieseg,et al. Urinary myoglobin quantification by high-performance liquid chromatography: An alternative measurement for exercise-induced muscle damage. , 2015, Analytical biochemistry.
[30] J. Choi,et al. An Electrochemical Biosensor Based on a Myoglobin-specific Binding Peptide for Early Diagnosis of Acute Myocardial Infarction , 2015, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[31] S. Zaidi. Molecular imprinted polymers as drug delivery vehicles , 2016, Drug delivery.
[32] Rui Li,et al. An immunomagnetic separation based fluorescence immunoassay for rapid myoglobin quantification in human blood , 2016 .
[33] Jun-Jie Zhu,et al. Targeting and Imaging of Cancer Cells via Monosaccharide-Imprinted Fluorescent Nanoparticles , 2016, Scientific Reports.
[34] Zhen Liu,et al. Pattern Recognition of Cells via Multiplexed Imaging with Monosaccharide-Imprinted Quantum Dots. , 2017, Analytical chemistry.
[35] Xinglin Li,et al. Targeted cancer imaging and photothermal therapy via monosaccharide-imprinted gold nanorods. , 2017, Chemical communications.
[36] Zhen Liu,et al. Preparation of molecularly imprinted polymers specific to glycoproteins, glycans and monosaccharides via boronate affinity controllable–oriented surface imprinting , 2017, Nature Protocols.
[37] R. Viveiros,et al. Green Strategies for Molecularly Imprinted Polymer Development , 2018, Polymers.
[38] Zhen Liu,et al. Molecularly imprinted mesoporous silica nanoparticles for specific extraction and efficient identification of Amadori compounds. , 2018, Analytica chimica acta.
[39] Yunyun Zhai,et al. Fluorometric determination of cardiac myoglobin based on energy transfer from a pyrene-labeled aptamer to graphene oxide , 2019, Microchimica Acta.
[40] Saeedeh Ansari,et al. Molecularly imprinted polymers for capturing and sensing proteins: Current progress and future implications , 2019, TrAC Trends in Analytical Chemistry.
[41] Xin Zhang,et al. Magnetic Fluorescence Molecularly Imprinted Polymer Based on FeOx/ZnS Nanocomposites for Highly Selective Sensing of Bisphenol A , 2019, Polymers.
[42] Rim Nadra,et al. Developed greener method based on MW implementation in manufacturing CNFs , 2019, International Journal of Nanomanufacturing.
[43] Xiaomei Lu,et al. Advance in boronate affinity-based controllable orientedsurface imprinting , 2019, Chinese Science Bulletin.
[44] Adil Denizli,et al. Molecularly Imprinted Polymer-Based Microfluidic Systems for Point-of-Care Applications , 2019, Micromachines.
[45] Wenzhi Li,et al. Reshaping of pipette tip: A facile and practical strategy for sorbent packing-free solid phase extraction. , 2020, Analytica chimica acta.
[46] Z. Jiang,et al. Infrared Spectroscopy , 2022 .