1) Bracco F, Gallo P, Tavolato B, et al:Two-dimensional electrophoresis of cerebrospinal fluid proteins in normal and pathological conditions. Neurochem Res 10:1203-1219, 1985
2) Endler AT, Young DS, Yanagihara T, et al:High resolution two-dimensional polyacrylamide gel electrophoresis of cerebrospinal fluid in patients with neurological diseases. J Clin Chem Clin Biochem 25:61-70, 1987
3) Raymackers J, Daniels A, De Brabandere V, et al:Identification of two-dimensionally separated human cerebrospinal fluid proteins by N-terminal sequencing, matrix-assisted laser desorption/ionization―mass spectrometry, nanoliquid chromatography-electrospray ionization-time of flight-mass spectrometry, and tandem mass spectrometry. Electrophoresis 21:2266-2283, 2000
4) Sickmann A, Dormeyer W, Wortelkamp S, et al:Identification of proteins from human cerebrospinal fluid, separated by two-dimensional polyacrylamide gel electrophoresis. Electrophoresis 21:2721-2728, 2000
5) Walsh MJ, Limos L, Tourtellotte WW:Two-dimensional electrophoresis of cerebrospinal fluid and ventricular fluid proteins, identification of enriched and unique proteins, and comparison with serum. J Neurochem 43:1277-1285, 1984
6) Wiederkehr F, Ogilvie A, Vonderschmitt DJ:Cerebrospinal fluid proteins studied by two-dimensional gel electrophoresis and immunoblotting technique. J Neurochem 49:363-372, 1987
7) Yuan X, Russell T, Wood G, et al:Analysis of the human lumbar cerebrospinal fluid proteome. Electrophoresis 23:1185-1196, 2002
8) Yun M, Wu W, Hood L, et al:Human cerebrospinal fluid protein database;edition 1992. Electrophoresis 13:1002-1013, 1992
9) Zhan X, Desiderio DM:Differences in the spatial and quantitative reproducibility between two second-dimensional gel electrophoresis systems. Electrophoresis 24:1834-1846, 2003
10) Merchant M, Weinberger SR:Recent advancements in surface-enhanced laser desorption/ionization-time of flight-mass spectrometry. Electrophoresis 21:1164-1177, 2000
11) Suzuyama K, Shiraishi T, Oishi T, et al:Combined proteomic approach with SELDI-TOF-MS and peptide mass fingerprinting identified the rapid increase of monomeric transthyretin in rat cerebrospinal fluid after transient focal cerebral ischemia. Mol Brain Res 129:44-53, 2004
12) Herrero J, Al-Shahrour F, Diaz-Uriarte R, et al:GEPAS:A web-based resource for microarray gene expression data analysis. Nucleic Acids Res 31:3461-3467, 2003
13) Herrero J, Valencia A, Dopazo J:A hierarchical unsupervised growing neural network for clustering gene expression patterns. Bioinformatics 17:126-136, 2001
14) Hiraoka A, Tominaga I, Hori K:Sodium docecylsulfate capillary gel electrophoretic measurement of the concentration ratios of albumin and alpha2-macroglobulin in cerebrospinal fluid and serum of patients with neurological disorders. J Chromatogr A 895:339-344, 2000
15) Barone FC, Feuerstein GZ:Inflammatory mediators and stroke;new opportunities for novel therapeutics. J Cereb Blood Flow Metab 19:819-834, 1999
16) Borish L, King MS, Mascali JJ, et al:Transthyretin is an inhibitor of monocyte and endothelial cell interleukin-1 production. Inflammation 16:471-484, 1992
17) Dickson PW, Aldred AR, Menting JG, et al:Thyroxine transport in choroid plexus. J Biol Chem 262:13907-13915, 1987
18) Rami A, Krieglstein J:Thyroxine attenuates hippocampal neuronal damage caused by ischemia in the rat. Life Sci 50:645-650, 1992