Literature DB >> 15466184

Oncogenic action of secreted phospholipase A2 in prostate cancer.

Paul Sved1, Kieran F Scott, Duncan McLeod, Nicholas J C King, Jas Singh, Tania Tsatralis, Blagoy Nikolov, John Boulas, Laxman Nallan, Michael H Gelb, Mila Sajinovic, Garry G Graham, Pamela J Russell, Qihan Dong.   

Abstract

Mortality from prostate cancer is associated with progression of tumors to androgen-independent growth and metastasis. Eicosanoid products of both the cyclooxygenase (COX) and lipoxygenase (LOX) pathways are important mediators of the proliferation of prostate cancer cells in culture and regulate tumor vascularization and metastasis in animal models. Pharmacologic agents that block either COX or LOX products effectively reduce the size of prostate cancer xenografts. Phospholipase A(2) (PLA(2)) enzymes regulate the provision of arachidonic acid to both COX- and LOX-derived eicosanoids, and a secreted form of the enzyme (sPLA(2)-IIA) is elevated in prostate cancer tissues. Here, we show by immunohistochemistry, in patients receiving androgen ablation therapy, that sPLA(2)-IIA remains elevated in remaining cancer cells relative to benign glands after treatment. Furthermore, sPLA(2)-IIA expression seen in benign glands is substantially decreased after androgen depletion, whereas cytosolic PLA(2)-alpha (cPLA(2)-alpha) levels are unchanged. sPLA(2)-IIA mRNA expression is detectable and inducible by androgen (0.01-10 nmol/L) in the androgen-sensitive cell line LNCaP, and exogenous addition of sPLA(2)-IIA (1-100 nmol/L), but not an inactive sPLA(2)-IIA mutant (H(48)Q), results in a dose-dependent increase in cell numbers or the fraction of cells in G(2)-M phase, which is inhibited by sPLA(2)-IIA-selective inhibitors. The effect of exogenous sPLA(2)-IIA can also be blocked by inhibition of cPLA(2)-alpha, suggesting a role for cPLA(2)-alpha in mediating sPLA(2)-IIAlpha action. sPLA(2)-IIA inhibitors suppressed basal proliferation in LNCaP cells and in the androgen-independent, sPLA(2)-positive cell line PC3 but not in the sPLA(2)-IIA-negative androgen-independent cell line DU145. Established PC3 xenograft tumors grew more slowly in mice treated with sPLA(2)-IIA inhibitors than those treated with saline only. The PLA(2) enzymes, and sPLA(2)-IIA in particular, thus represent important targets for the treatment of sPLA(2)-IIA-positive androgen-independent prostate cancer.

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Year:  2004        PMID: 15466184     DOI: 10.1158/0008-5472.CAN-03-3018

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  44 in total

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Authors:  Leslie Oleksowicz; Yin Liu; R Bruce Bracken; Krishnanath Gaitonde; Barbara Burke; Paul Succop; Linda Levin; Zhongyun Dong; Shan Lu
Journal:  Prostate       Date:  2011-11-29       Impact factor: 4.104

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Authors:  Sofia Cárdenas; Cecilia Colombero; Laura Panelo; Rambabu Dakarapu; John R Falck; Monica A Costas; Susana Nowicki
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4.  Role of 20-Hydroxyeicosatetraenoic Acid (20-HETE) in Androgen-Mediated Cell Viability in Prostate Cancer Cells.

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5.  Arachidonic acid pathway members PLA2G7, HPGD, EPHX2, and CYP4F8 identified as putative novel therapeutic targets in prostate cancer.

Authors:  Paula Vainio; Santosh Gupta; Kirsi Ketola; Tuomas Mirtti; John-Patrick Mpindi; Pekka Kohonen; Vidal Fey; Merja Perälä; Frank Smit; Gerald Verhaegh; Jack Schalken; Kalle A Alanen; Olli Kallioniemi; Kristiina Iljin
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Authors:  Mario Menschikowski; Albert Hagelgans; Heike Kostka; Graeme Eisenhofer; Gabriele Siegert
Journal:  Neoplasia       Date:  2008-11       Impact factor: 5.715

9.  Group X phospholipase A2 stimulates the proliferation of colon cancer cells by producing various lipid mediators.

Authors:  Fanny Surrel; Ikram Jemel; Eric Boilard; James G Bollinger; Christine Payré; Carine M Mounier; Kati A Talvinen; Veli J O Laine; Timo J Nevalainen; Michael H Gelb; Gérard Lambeau
Journal:  Mol Pharmacol       Date:  2009-07-14       Impact factor: 4.436

10.  Molecular basis of phospholipase A2 activity toward phospholipids with sn-1 substitutions.

Authors:  Lars Linderoth; Thomas L Andresen; Kent Jørgensen; Robert Madsen; Günther H Peters
Journal:  Biophys J       Date:  2007-09-07       Impact factor: 4.033

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