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Items: 1 to 20 of 77

1.

GRASPs in Golgi Structure and Function.

Zhang X, Wang Y.

Front Cell Dev Biol. 2016 Jan 6;3:84. doi: 10.3389/fcell.2015.00084. eCollection 2015. Review.

2.

Prediction of colorectal cancer diagnosis based on circulating plasma proteins.

Surinova S, Choi M, Tao S, Schüffler PJ, Chang CY, Clough T, Vysloužil K, Khoylou M, Srovnal J, Liu Y, Matondo M, Hüttenhain R, Weisser H, Buhmann JM, Hajdúch M, Brenner H, Vitek O, Aebersold R.

EMBO Mol Med. 2015 Aug 7;7(9):1166-78. doi: 10.15252/emmm.201404873.

3.

A peptide N-terminal protection strategy for comprehensive glycoproteome analysis using hydrazide chemistry based method.

Huang J, Qin H, Sun Z, Huang G, Mao J, Cheng K, Zhang Z, Wan H, Yao Y, Dong J, Zhu J, Wang F, Ye M, Zou H.

Sci Rep. 2015 May 11;5:10164. doi: 10.1038/srep10164.

4.

Releasing N-glycan from peptide N-terminus by N-terminal succinylation assisted enzymatic deglycosylation.

Weng Y, Sui Z, Jiang H, Shan Y, Chen L, Zhang S, Zhang L, Zhang Y.

Sci Rep. 2015 Apr 22;5:9770. doi: 10.1038/srep09770.

5.

Identification of the soluble form of tyrosine kinase receptor Axl as a potential biomarker for intracranial aneurysm rupture.

Xu J, Ma F, Yan W, Qiao S, Xu S, Li Y, Luo J, Zhang J, Jin J.

BMC Neurol. 2015 Mar 5;15:23. doi: 10.1186/s12883-015-0282-8.

6.

Golgi defects enhance APP amyloidogenic processing in Alzheimer's disease.

Joshi G, Wang Y.

Bioessays. 2015 Mar;37(3):240-7. doi: 10.1002/bies.201400116. Epub 2014 Dec 28. Review.

7.

A surprising sweetener from enteropathogenic Escherichia coli.

Pearson JS, Hartland EL.

Gut Microbes. 2014;5(6):766-9. doi: 10.4161/19490976.2014.983762.

8.

Identification of novel tumor-associated cell surface sialoglycoproteins in human glioblastoma tumors using quantitative proteomics.

Autelitano F, Loyaux D, Roudières S, Déon C, Guette F, Fabre P, Ping Q, Wang S, Auvergne R, Badarinarayana V, Smith M, Guillemot JC, Goldman SA, Natesan S, Ferrara P, August P.

PLoS One. 2014 Oct 31;9(10):e110316. doi: 10.1371/journal.pone.0110316. eCollection 2014.

9.

Differential analysis of N-glycoproteome between hepatocellular carcinoma and normal human liver tissues by combination of multiple protease digestion and solid phase based labeling.

Sun Z, Sun D, Wang F, Cheng K, Zhang Z, Xu B, Ye M, Wang L, Zou H.

Clin Proteomics. 2014 Jul 1;11(1):26. doi: 10.1186/1559-0275-11-26. eCollection 2014.

10.

In-depth characterization of the cerebrospinal fluid (CSF) proteome displayed through the CSF proteome resource (CSF-PR).

Guldbrandsen A, Vethe H, Farag Y, Oveland E, Garberg H, Berle M, Myhr KM, Opsahl JA, Barsnes H, Berven FS.

Mol Cell Proteomics. 2014 Nov;13(11):3152-63. doi: 10.1074/mcp.M114.038554. Epub 2014 Jul 18.

11.

Analysis of age and gender associated N-glycoproteome in human whole saliva.

Sun S, Zhao F, Wang Q, Zhong Y, Cai T, Wu P, Yang F, Li Z.

Clin Proteomics. 2014 Jun 5;11(1):25. doi: 10.1186/1559-0275-11-25. eCollection 2014.

12.

Cardiac extracellular proteome profiling and membrane topology analysis using glycoproteomics.

Tian Y, Koganti T, Yao Z, Cannon P, Shah P, Pietrovito L, Modesti A, Aiyetan P, DeLeon-Pennell K, Ma Y, Halade GV, Hicks C, Zhang H, Lindsey ML.

Proteomics Clin Appl. 2014 Aug;8(7-8):595-602. doi: 10.1002/prca.201400009.

13.

Glycoproteomic analysis of prostate cancer tissues by SWATH mass spectrometry discovers N-acylethanolamine acid amidase and protein tyrosine kinase 7 as signatures for tumor aggressiveness.

Liu Y, Chen J, Sethi A, Li QK, Chen L, Collins B, Gillet LC, Wollscheid B, Zhang H, Aebersold R.

Mol Cell Proteomics. 2014 Jul;13(7):1753-68. doi: 10.1074/mcp.M114.038273. Epub 2014 Apr 16.

14.

Generation and analysis of novel plant-derived antibody-based therapeutic molecules against West Nile virus.

He J, Lai H, Engle M, Gorlatov S, Gruber C, Steinkellner H, Diamond MS, Chen Q.

PLoS One. 2014 Mar 27;9(3):e93541. doi: 10.1371/journal.pone.0093541. eCollection 2014.

15.

N-glycosylation of effector proteins by an α-1,3-mannosyltransferase is required for the rice blast fungus to evade host innate immunity.

Chen XL, Shi T, Yang J, Shi W, Gao X, Chen D, Xu X, Xu JR, Talbot NJ, Peng YL.

Plant Cell. 2014 Mar;26(3):1360-76. doi: 10.1105/tpc.114.123588. Epub 2014 Mar 18.

16.

Glycoproteomic analysis identifies human glycoproteins secreted from HIV latently infected T cells and reveals their presence in HIV+ plasma.

Yang W, Zhou JY, Chen L, Ao M, Sun S, Aiyetan P, Simmons A, Zhang H, Jackson JB.

Clin Proteomics. 2014 Mar 6;11(1):9. doi: 10.1186/1559-0275-11-9.

17.

Quantitative glycoproteomics analysis reveals changes in N-glycosylation level associated with pancreatic ductal adenocarcinoma.

Pan S, Chen R, Tamura Y, Crispin DA, Lai LA, May DH, McIntosh MW, Goodlett DR, Brentnall TA.

J Proteome Res. 2014 Mar 7;13(3):1293-306. doi: 10.1021/pr4010184. Epub 2014 Jan 28.

18.

An integrative strategy for quantitative analysis of the N-glycoproteome in complex biological samples.

Wang J, Zhou C, Zhang W, Yao J, Lu H, Dong Q, Zhou H, Qin L.

Proteome Sci. 2014 Jan 15;12(1):4. doi: 10.1186/1477-5956-12-4.

19.

Adaptive immune activation: glycosylation does matter.

Wolfert MA, Boons GJ.

Nat Chem Biol. 2013 Dec;9(12):776-84. doi: 10.1038/nchembio.1403.

20.

Identification of N-glycosylation in hepatocellular carcinoma patients' serum with a comparative proteomic approach.

Huang Y, Wu H, Xue R, Liu T, Dong L, Yao J, Zhang Y, Shen X.

PLoS One. 2013 Oct 15;8(10):e77161. doi: 10.1371/journal.pone.0077161. eCollection 2013.

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