Literature DB >> 19373808

Quantitative proteomics investigation of pancreatic intraepithelial neoplasia.

Sheng Pan1, Ru Chen, Beth Ann Reimel, David A Crispin, Hamid Mirzaei, Kelly Cooke, Joshua F Coleman, Zhaoli Lane, Mary P Bronner, David R Goodlett, Martin W McIntosh, William Traverso, Ruedi Aebersold, Teresa A Brentnall.   

Abstract

Patients with pancreatic cancer are usually diagnosed at late stages, when the disease is incurable. Pancreatic intraepithelial neoplasia (PanIN) 3 is believed to be the immediate precursor lesion of pancreatic adenocarcinoma, and would be an ideal stage to diagnose patients, when intervention and cure are possible and patients are curable. In this study, we used quantitative proteomics to identify dysregulated proteins in PanIN 3 lesions. Altogether, over 200 dysregulated proteins were identified in the PanIN 3 tissues, with a minimum of a 1.75-fold change compared with the proteins in normal pancreas. These dysregulated PanIN 3 proteins play roles in cell motility, the inflammatory response, the blood clotting cascade, the cell cycle and its regulation, and protein degradation. Further network analysis of the proteins identified c-MYC as an important regulatory protein in PanIN 3 lesions. Finally, three of the overexpressed proteins, laminin beta-1, galectin-1, and actinin-4 were validated by immunohistochemistry analysis. All three of these proteins were overexpressed in the stroma or ductal epithelial cells of advanced PanIN lesions as well as in pancreatic cancer tissue. Our findings suggest that these three proteins may be useful as biomarkers for advanced PanIN and pancreatic cancer if further validated. The dysregulated proteins identified in this study may assist in the selection of candidates for future development of biomarkers for detecting early and curable pancreatic neoplasia.

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Year:  2009        PMID: 19373808      PMCID: PMC2775073          DOI: 10.1002/elps.200800752

Source DB:  PubMed          Journal:  Electrophoresis        ISSN: 0173-0835            Impact factor:   3.535


  62 in total

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2.  Perspective: a program to improve protein biomarker discovery for cancer.

Authors:  Ruedi Aebersold; Leigh Anderson; Richard Caprioli; Brian Druker; Leland Hartwell; Richard Smith
Journal:  J Proteome Res       Date:  2005 Jul-Aug       Impact factor: 4.466

3.  Comparative study of three proteomic quantitative methods, DIGE, cICAT, and iTRAQ, using 2D gel- or LC-MALDI TOF/TOF.

Authors:  Wells W Wu; Guanghui Wang; Seung Joon Baek; Rong-Fong Shen
Journal:  J Proteome Res       Date:  2006-03       Impact factor: 4.466

4.  Quantitative proteomic profiling of pancreatic cancer juice.

Authors:  Ru Chen; Sheng Pan; Eugene C Yi; Samuel Donohoe; Mary P Bronner; John D Potter; David R Goodlett; Ruedi Aebersold; Teresa A Brentnall
Journal:  Proteomics       Date:  2006-07       Impact factor: 3.984

5.  Comparison of pancreas juice proteins from cancer versus pancreatitis using quantitative proteomic analysis.

Authors:  Ru Chen; Sheng Pan; Kelly Cooke; Kara White Moyes; Mary P Bronner; David R Goodlett; Ruedi Aebersold; Teresa A Brentnall
Journal:  Pancreas       Date:  2007-01       Impact factor: 3.327

6.  Extracellular matrix proteins protect pancreatic cancer cells from death via mitochondrial and nonmitochondrial pathways.

Authors:  Eva C Vaquero; Mouad Edderkaoui; Kyung J Nam; Ilya Gukovsky; Stephen J Pandol; Anna S Gukovskaya
Journal:  Gastroenterology       Date:  2003-10       Impact factor: 22.682

7.  Urinary phospholipase A2 excretion in chronic pancreatic diseases.

Authors:  C Fabris; D Basso; M P Panozzo; G Del Favero; T Meggiato; M Plebani; C Ferrara; P Fogar; M Zaninotto; R Naccarato
Journal:  Int J Pancreatol       Date:  1992-06

8.  Human pancreatic phospholipase A2 stimulates the growth of human pancreatic cancer cell line.

Authors:  K Hanada; E Kinoshita; M Itoh; M Hirata; G Kajiyama; M Sugiyama
Journal:  FEBS Lett       Date:  1995-10-02       Impact factor: 4.124

Review 9.  Hyperplastic, preneoplastic and neoplastic lesions found in 83 human pancreases.

Authors:  P M Pour; S Sayed; G Sayed
Journal:  Am J Clin Pathol       Date:  1982-02       Impact factor: 2.493

10.  Tiling resolution array CGH and high density expression profiling of urothelial carcinomas delineate genomic amplicons and candidate target genes specific for advanced tumors.

Authors:  Markus Heidenblad; David Lindgren; Tord Jonson; Fredrik Liedberg; Srinivas Veerla; Gunilla Chebil; Sigurdur Gudjonsson; Ake Borg; Wiking Månsson; Mattias Höglund
Journal:  BMC Med Genomics       Date:  2008-01-31       Impact factor: 3.063

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  30 in total

1.  Multiplex targeted proteomic assay for biomarker detection in plasma: a pancreatic cancer biomarker case study.

Authors:  Sheng Pan; Ru Chen; Randall E Brand; Sarah Hawley; Yasuko Tamura; Philip R Gafken; Brian P Milless; David R Goodlett; John Rush; Teresa A Brentnall
Journal:  J Proteome Res       Date:  2012-02-08       Impact factor: 4.466

2.  Notch2 is required for progression of pancreatic intraepithelial neoplasia and development of pancreatic ductal adenocarcinoma.

Authors:  Pawel K Mazur; Henrik Einwächter; Marcel Lee; Bence Sipos; Hassan Nakhai; Roland Rad; Ursula Zimber-Strobl; Lothar J Strobl; Freddy Radtke; Günter Klöppel; Roland M Schmid; Jens T Siveke
Journal:  Proc Natl Acad Sci U S A       Date:  2010-07-12       Impact factor: 11.205

3.  Protein alterations associated with pancreatic cancer and chronic pancreatitis found in human plasma using global quantitative proteomics profiling.

Authors:  Sheng Pan; Ru Chen; David A Crispin; Damon May; Tyler Stevens; Martin W McIntosh; Mary P Bronner; Argyrios Ziogas; Hoda Anton-Culver; Teresa A Brentnall
Journal:  J Proteome Res       Date:  2011-03-28       Impact factor: 4.466

Review 4.  A starring role for stellate cells in the pancreatic cancer microenvironment.

Authors:  Minoti V Apte; Jeremy S Wilson; Aurelia Lugea; Stephen J Pandol
Journal:  Gastroenterology       Date:  2013-06       Impact factor: 22.682

Review 5.  Current status of molecular markers for early detection of sporadic pancreatic cancer.

Authors:  Subhankar Chakraborty; Michael J Baine; Aaron R Sasson; Surinder K Batra
Journal:  Biochim Biophys Acta       Date:  2010-10-01

6.  Galectin-1 drives pancreatic carcinogenesis through stroma remodeling and Hedgehog signaling activation.

Authors:  Neus Martínez-Bosch; Maite G Fernández-Barrena; Mireia Moreno; Elena Ortiz-Zapater; Jessica Munné-Collado; Mar Iglesias; Sabine André; Hans-Joachim Gabius; Rosa F Hwang; Françoise Poirier; Carolina Navas; Carmen Guerra; Martin E Fernández-Zapico; Pilar Navarro
Journal:  Cancer Res       Date:  2014-05-08       Impact factor: 12.701

7.  Elevated level of anterior gradient-2 in pancreatic juice from patients with pre-malignant pancreatic neoplasia.

Authors:  Ru Chen; Sheng Pan; Xiaobo Duan; Brad H Nelson; Rob A Sahota; Sarah de Rham; Richard A Kozarek; Martin McIntosh; Teresa A Brentnall
Journal:  Mol Cancer       Date:  2010-06-15       Impact factor: 27.401

Review 8.  Pancreatic cancer and its stroma: a conspiracy theory.

Authors:  Zhihong Xu; Srinivasa P Pothula; Jeremy S Wilson; Minoti V Apte
Journal:  World J Gastroenterol       Date:  2014-08-28       Impact factor: 5.742

Review 9.  Tissue proteomics in pancreatic cancer study: discovery, emerging technologies, and challenges.

Authors:  Sheng Pan; Teresa A Brentnall; Kimberly Kelly; Ru Chen
Journal:  Proteomics       Date:  2013-01-07       Impact factor: 3.984

Review 10.  Alpha-actinin 4 and tumorigenesis of breast cancer.

Authors:  Kuo-Sheng Hsu; Hung-Ying Kao
Journal:  Vitam Horm       Date:  2013       Impact factor: 3.421

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