[1] | Bu G. Apolipoprotein E and Its Receptors in Alzheimer's Disease:Pathways, Pathogenesis and Therapy[J]. Nat Rev Neurosci,2009,10(5):333-344. | [2] | Bertram L,Tanzi R. Thirty Years of Alzheimer's Disease Genetics:The Implications of Systematic Meta-analyses[J]. Nat Rev Neurosci,2008,9(10):768-778. | [3] | LaFerla F,Green K,Oddo S. Intracellular Amyloid-β in Alzheimer's Disease[J]. Nat Rev Neurosci,2007,8(7):499-509. | [4] | Faller P,Hureau C,La Penna G. Metal Ions and Intrinsically Disordered Proteins and Peptides:From Cu/Zn Amyloid-β to General Principles[J]. Acc Chem Res,2014,47(8):2252-2259. | [5] | Rauk A. The Chemistry of Alzheimer's Disease[J]. Chem Soc Rev,2009,382(9):2698-2715. | [6] | Faller P,Hureau C,Berthoumieu O. Role of Metal Ions in the Self-assembly of the Alzheimer's Amyloid-Β Peptide[J]. Inorg Chem,2013,52(21):12193-12206. | [7] | Porter M R,Kochi A,Karty J A,et al.Chelation-induced Diradical Formation as an Approach to Modulation of the Amyloid-β Aggregation Pathway[J]. Chem Sci,2015,6(2):1018-1026. | [8] | Pithadia A S,Lim M H. Metal-associated Amyloid-β Species in Alzheimer's Disease[J]. Curr Opin Chem Biol,2012,16(1):67-73. | [9] | Lin C J,Huang H C,Jiang Z F. Cu (Ⅱ) Interaction with Amyloid-β Peptide:A Review of Neuroactive Mechanisms in AD Brains[J]. Brain Res Bull,2010,82(5):235-242. | [10] | Folk D S,Franz K J. A Prochelator Activated by β-Secretase Inhibits Aβ Aggregation and Suppresses Copper-Induced Reactive Oxygen Species Formation[J]. J Am Chem Soc,2010,132(14):4994-4995. | [11] | Bonda D J,Lee H,Blair J A,et al.Role of Metal Dyshomeostasis in Alzheimer's Disease[J]. Metallomics,2011,3(3):267-270. | [12] | Huang W,Wei W,Shen Z. Drug-like Chelating Agents:A Potential Lead for Alzheimer's Disease[J]. RSC Adv,2014,4(94):52088-52099. | [13] | Hindo S S,Mancino A M,Braymer J J,et al.Small Molecule Modulators of Copper-induced Aβ Aggregation[J]. J Am Chem Soc,2009,131(46):16663-16665. | [14] | Choi J S,Braymer J J,Park S K,et al.Synthesis and Characterization of IMPY Derivatives That Regulate Metal-Induced Amyloid-β Aggregation[J]. Metallomics,2011,3(3):284-291. | [15] | Cook N P,Torres V,Jain D,et al.Sensing Amyloid-Β Aggregation Using Luminescent Dipyridophenazine Ruthenium (Ⅱ) Complexes[J]. J Am Chem Soc,2011,133(29):11121-11123. | [16] | Hudson S A,Ecroyd H,Kee T W,et al.The Thioflavin T Fluorescence Assay for Amyloid Fibril Detection Can Be Biased by the Presence of Exogenous Compounds[J]. FEBS J,2009,276(20):5960-5972. | [17] | Xia N,Liu L,Harrington M G,et al.Regenerable and Simultaneous Surface Plasmon Resonance Detection of Aβ(1-40) and Aβ(1-42) Peptides in Cerebrospinal Fluids with Signal Amplification by Streptavidin Conjugated to an N-Terminus-Specific Antibody[J]. Anal Chem,2010,82(24):10151-10157. | [18] | Wang C,Wang J,Liu D,et al.Studying Copper (Ⅱ) Ion Induced Interactions of β-Amyloid Peptides Within Living Cells by Gold Nanoparticle Probes[J]. Anal Methods,2010,2(10):1467-1471. | [19] | Wang C,Liu D,Wang Z,et al.Gold Nanoparticle Based Dot-Blot Immunoassay for Sensitively Detecting Alzheimer's Disease Related beta-Amyloid Peptide[J]. Chem Commun,2012,48(67):8392-8394. | [20] | Kim J S,Ahn H S,Cho S M,et al.Detection and Quantification of Plasma Amyloid-β by Selected Reaction Monitoring Mass Spectrometry[J]. Anal Chim Acta,2014,840(35):1-9. | [21] | Jameson L P,Smith N W,Dzyuba S V. Dye-binding Assays for Evaluation of the Effects of Small Molecule Inhibitors on Amyloid(Aβ) Self-assembly[J]. ACS Chem Neurosci,2012,3(11):807-819. | [22] | Saha K,Agasti S,Kim C,et al.Gold Nanoparticles in Chemical and Biological Sensing[J]. Chem Rev,2012,112(5):2739-2779. | [23] | Jans H,Huo Q. Gold Nanoparticle-Enabled Biological and Chemical Detection and Analysis[J]. Chem Soc Rev,2012,41(7):2849-2866. | [24] | Wang C,Wang K,Wang Z. Development of Gold Nanoparticle Based Colorimetric Method for Quantitatively Studying the Inhibitors of Cu2+/Zn2+ Induced β-Amyloid Peptide Assembly[J]. Anal Chim Acta,2015,858(6):42-48. | [25] | Wang C,Wang Z. Studying the Relationship Between Cell Cycle and Alzheimer's Disease by Gold Nanoparticle Probes[J]. Anal Biochem,2015,489(22):32-37 | [26] | Medinas D B, Toledo J C Jr, Cerchiaro G, et al. Peroxymonocarbonate and Carbonate Radical Displace the Hydroxyl-Like Oxidant in the SOD1 Peroxidase Activity Under Physiological Conditions[J]. Chem Res Toxicol,2009,22(4):639-648. | [27] | Liochev S I,Fridovich I. Copper, Zinc Superoxide Dismutase and H2O2 Effects of Bicarbonate on Inactivation and Oxidations of NADPH and Urate, and on Consumption of H2O2[J]. J Biol Chem,2002,277(38):34674-34678. | [28] | Wang C,Wang J,Liu D,et al.Gold Nanoparticle-based Colorimetric Sensor for Studying the Interactions of β-Amyloid Peptide with Metallic Ions[J]. Talanta,2010,80(5):1626-1631. | [29] | Wang C,Liu D,Wang Z. Resonance Light Scattering as a powerful Tool for sensitive Detection of β-Amyloid Peptide by Gold Nanoparticle Probes[J]. Chem Commun,2011,47(33):9339-9341. | [30] | Inbar P,Bautista M R,Takayama S A,et al.Assay to Screen for Molecules That Associate with Alzheimer's Related β-Amyloid Fibrils[J]. Anal Chem,2008,80(9):3502-3506. |
|