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Items: 1 to 20 of 227

1.

Use of a novel coinfection system reveals a role for Rac1, H-Ras, and CrkII phosphorylation in Helicobacter pylori-induced host cell actin cytoskeletal rearrangements.

Brandt S, Shafikhani S, Balachandran P, Jin S, Hartig R, König W, Engel J, Backert S.

FEMS Immunol Med Microbiol. 2007 Jul;50(2):190-205. Epub 2007 Apr 11.

2.

Uncoupling Crk signal transduction by Pseudomonas exoenzyme T.

Deng Q, Sun J, Barbieri JT.

J Biol Chem. 2005 Oct 28;280(43):35953-60. Epub 2005 Aug 25.

3.

Exoenzyme T of Pseudomonas aeruginosa elicits cytotoxicity without interfering with Ras signal transduction.

Sundin C, Henriksson ML, Hallberg B, Forsberg A, Frithz-Lindsten E.

Cell Microbiol. 2001 Apr;3(4):237-46.

PMID:
11298647
4.

Interaction of CagA with Crk plays an important role in Helicobacter pylori-induced loss of gastric epithelial cell adhesion.

Suzuki M, Mimuro H, Suzuki T, Park M, Yamamoto T, Sasakawa C.

J Exp Med. 2005 Nov 7;202(9):1235-47.

5.

Pseudomonas aeruginosa ExoS and ExoT.

Barbieri JT, Sun J.

Rev Physiol Biochem Pharmacol. 2004;152:79-92. Epub 2004 Aug 24. Review.

PMID:
15375697
6.

Pseudomonas aeruginosa ExoS ADP-ribosyltransferase inhibits ERM phosphorylation.

Maresso AW, Deng Q, Pereckas MS, Wakim BT, Barbieri JT.

Cell Microbiol. 2007 Jan;9(1):97-105. Epub 2006 Aug 2.

PMID:
16889625
8.

Exoenzyme S shows selective ADP-ribosylation and GTPase-activating protein (GAP) activities towards small GTPases in vivo.

Henriksson ML, Sundin C, Jansson AL, Forsberg A, Palmer RH, Hallberg B.

Biochem J. 2002 Nov 1;367(Pt 3):617-28.

9.

Dual infection system identifies a crucial role for PKA-mediated serine phosphorylation of the EPEC-Tir-injected effector protein in regulating Rac1 function.

Brandt S, Kenny B, Rohde M, Martinez-Quiles N, Backert S.

Cell Microbiol. 2009 Aug;11(8):1254-71. doi: 10.1111/j.1462-5822.2009.01330.x. Epub 2009 Apr 30.

PMID:
19438518
10.

Ezrin/radixin/moesin proteins are high affinity targets for ADP-ribosylation by Pseudomonas aeruginosa ExoS.

Maresso AW, Baldwin MR, Barbieri JT.

J Biol Chem. 2004 Sep 10;279(37):38402-8. Epub 2004 Jul 12.

11.
12.

Interaction between the Helicobacter pylori CagA and alpha-Pix in gastric epithelial AGS cells.

Baek HY, Lim JW, Kim H.

Ann N Y Acad Sci. 2007 Jan;1096:18-23.

PMID:
17405911
13.

Role of Abl and Src family kinases in actin-cytoskeletal rearrangements induced by the Helicobacter pylori CagA protein.

Tegtmeyer N, Backert S.

Eur J Cell Biol. 2011 Nov;90(11):880-90. doi: 10.1016/j.ejcb.2010.11.006. Epub 2011 Jan 17. Review.

PMID:
21247656
14.

Activation of Abl by Helicobacter pylori: a novel kinase for CagA and crucial mediator of host cell scattering.

Tammer I, Brandt S, Hartig R, König W, Backert S.

Gastroenterology. 2007 Apr;132(4):1309-19. Epub 2007 Feb 1.

PMID:
17408661
15.

Differential phosphoproteome profiling reveals a functional role for VASP in Helicobacter pylori-induced cytoskeleton turnover in gastric epithelial cells.

Knauer O, Binai NA, Carra G, Beckhaus T, Hanschmann KM, Renné T, Backert S, Karas M, Wessler S.

Cell Microbiol. 2008 Nov;10(11):2285-96. doi: 10.1111/j.1462-5822.2008.01207.x. Epub 2008 Jul 14.

PMID:
18637808
16.

Determinants and consequences of different levels of CagA phosphorylation for clinical isolates of Helicobacter pylori.

Argent RH, Kidd M, Owen RJ, Thomas RJ, Limb MC, Atherton JC.

Gastroenterology. 2004 Aug;127(2):514-23.

PMID:
15300584
17.

Pathogenicity island-dependent activation of Rho GTPases Rac1 and Cdc42 in Helicobacter pylori infection.

Churin Y, Kardalinou E, Meyer TF, Naumann M.

Mol Microbiol. 2001 May;40(4):815-23.

18.

The amino-terminal domain of Pseudomonas aeruginosa ExoS disrupts actin filaments via small-molecular-weight GTP-binding proteins.

Pederson KJ, Vallis AJ, Aktories K, Frank DW, Barbieri JT.

Mol Microbiol. 1999 Apr;32(2):393-401.

20.

The Helicobacter pylori CagA protein induces cortactin dephosphorylation and actin rearrangement by c-Src inactivation.

Selbach M, Moese S, Hurwitz R, Hauck CR, Meyer TF, Backert S.

EMBO J. 2003 Feb 3;22(3):515-28.

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