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Items: 21

1.

Vaginal Gel Component Hydroxyethyl Cellulose Significantly Enhances the Infectivity of Chlamydia trachomatis Serovars D and E.

Raffai T, Burián K, Janovák L, Bogdanov A, Hegemann JH, Endrész V, Virok DP.

Antimicrob Agents Chemother. 2018 Dec 21;63(1). pii: e02034-18. doi: 10.1128/AAC.02034-18. Print 2019 Jan.

2.

Chlamydia pneumoniae Infection Exacerbates Atherosclerosis in ApoB100only/LDLR-/- Mouse Strain.

Lantos I, Endrész V, Virok DP, Szabó A, Lu X, Mosolygó T, Burián K.

Biomed Res Int. 2018 Mar 25;2018:8325915. doi: 10.1155/2018/8325915. eCollection 2018.

3.

Growth characteristics of Chlamydia trachomatis in human intestinal epithelial Caco-2 cells.

Lantos I, Virok DP, Mosolygó T, Rázga Z, Burián K, Endrész V.

Pathog Dis. 2018 Apr 1;76(3). doi: 10.1093/femspd/fty024.

PMID:
29635314
4.

N-acetyl-cysteine increases the replication of Chlamydia pneumoniae and prolongs the clearance of the pathogen from mice.

Kókai D, Mosolygó T, Virók DP, Endrész V, Burián K.

J Med Microbiol. 2018 Mar 9. doi: 10.1099/jmm.0.000716. [Epub ahead of print]

PMID:
29521616
5.

Nonactivated titanium-dioxide nanoparticles promote the growth of Chlamydia trachomatis and decrease the antimicrobial activity of silver nanoparticles.

Bogdanov A, Janovák L, Lantos I, Endrész V, Sebők D, Szabó T, Dékány I, Deák J, Rázga Z, Burián K, Virok DP.

J Appl Microbiol. 2017 Nov;123(5):1335-1345. doi: 10.1111/jam.13560. Epub 2017 Sep 15.

PMID:
28799270
6.

Assembly and use of high-density recombinant peptide chips for large-scale ligand screening is a practical alternative to synthetic peptide libraries.

Hundsberger H, Önder K, Schuller-Götzburg P, Virok DP, Herzog J, Rid R.

BMC Genomics. 2017 Jun 8;18(1):450. doi: 10.1186/s12864-017-3814-3.

7.

A direct quantitative PCR-based measurement of herpes simplex virus susceptibility to antiviral drugs and neutralizing antibodies.

Virók DP, Eszik I, Mosolygó T, Önder K, Endrész V, Burián K.

J Virol Methods. 2017 Apr;242:46-52. doi: 10.1016/j.jviromet.2017.01.007. Epub 2017 Jan 16.

PMID:
28093274
8.

Impact of antiseptics on Chlamydia trachomatis growth.

Párducz L, Eszik I, Wagner G, Burián K, Endrész V, Virok DP.

Lett Appl Microbiol. 2016 Oct;63(4):260-7. doi: 10.1111/lam.12625.

PMID:
27472980
9.

High dynamic range detection of Chlamydia trachomatis growth by direct quantitative PCR of the infected cells.

Eszik I, Lantos I, Önder K, Somogyvári F, Burián K, Endrész V, Virok DP.

J Microbiol Methods. 2016 Jan;120:15-22. doi: 10.1016/j.mimet.2015.11.010. Epub 2015 Nov 11.

PMID:
26578244
10.

Protection promoted by pGP3 or pGP4 against Chlamydia muridarum is mediated by CD4(+) cells in C57BL/6N mice.

Mosolygó T, Szabó AM, Balogh EP, Faludi I, Virók DP, Endrész V, Samu A, Krenács T, Burián K.

Vaccine. 2014 Sep 8;32(40):5228-33. doi: 10.1016/j.vaccine.2014.07.039. Epub 2014 Jul 29.

PMID:
25077421
11.

Anti-chlamydial effect of plant peptides.

Balogh EP, Mosolygó T, Tiricz H, Szabó AM, Karai A, Kerekes F, Virók DP, Kondorosi E, Burián K.

Acta Microbiol Immunol Hung. 2014 Jun;61(2):229-39. doi: 10.1556/AMicr.61.2014.2.12.

PMID:
24939689
12.

Expression of Chlamydia muridarum plasmid genes and immunogenicity of pGP3 and pGP4 in different mouse strains.

Mosolygó T, Faludi I, Balogh EP, Szabó ÁM, Karai A, Kerekes F, Virók DP, Endrész V, Burián K.

Int J Med Microbiol. 2014 May;304(3-4):476-83. doi: 10.1016/j.ijmm.2014.02.005. Epub 2014 Feb 19.

PMID:
24631212
13.

Chryseobacterium gleum - a novel bacterium species detected in neonatal respiratory tract infections.

Virok DP, Ábrók M, Szél B, Tajti Z, Mader K, Urbán E, Tálosi G.

J Matern Fetal Neonatal Med. 2014 Dec;27(18):1926-9. doi: 10.3109/14767058.2014.880881. Epub 2014 Feb 3.

PMID:
24410052
14.

Application of DNA chip scanning technology for automatic detection of Chlamydia trachomatis and Chlamydia pneumoniae inclusions.

Bogdanov A, Endrész V, Urbán S, Lantos I, Deák J, Burián K, Önder K, Ayaydin F, Balázs P, Virok DP.

Antimicrob Agents Chemother. 2014;58(1):405-13. doi: 10.1128/AAC.01400-13. Epub 2013 Nov 4.

15.

Chlamydophila pneumoniae re-infection triggers the production of IL-17A and IL-17E, important regulators of airway inflammation.

Mosolygó T, Korcsik J, Balogh EP, Faludi I, Virók DP, Endrész V, Burián K.

Inflamm Res. 2013 May;62(5):451-60. doi: 10.1007/s00011-013-0596-1. Epub 2013 Feb 6.

PMID:
23385305
16.

Construction of a highly flexible and comprehensive gene collection representing the ORFeome of the human pathogen Chlamydia pneumoniae.

Maier CJ, Maier RH, Virok DP, Maass M, Hintner H, Bauer JW, Onder K.

BMC Genomics. 2012 Nov 16;13:632. doi: 10.1186/1471-2164-13-632.

17.

Functional changes in transcriptomes of the prefrontal cortex and hippocampus in a mouse model of anxiety.

Virok DP, Kis Z, Szegedi V, Juhász G, Zvara A Jr, Müller G, Lévay G, Hársing LG, Rajkó R, Penke B, Janka Z, Janáky T, Puskás LG.

Pharmacol Rep. 2011;63(2):348-61.

18.

Protein array based interactome analysis of amyloid-β indicates an inhibition of protein translation.

Virok DP, Simon D, Bozsó Z, Rajkó R, Datki Z, Bálint É, Szegedi V, Janáky T, Penke B, Fülöp L.

J Proteome Res. 2011 Apr 1;10(4):1538-47. doi: 10.1021/pr1009096. Epub 2011 Feb 22.

PMID:
21244100
19.

Chlamydophila pneumoniae induces production of the defensin-like MIG/CXCL9, which has in vitro antichlamydial activity.

Balogh EP, Faludi I, Virók DP, Endrész V, Burián K.

Int J Med Microbiol. 2011 Mar;301(3):252-9. doi: 10.1016/j.ijmm.2010.08.020. Epub 2010 Nov 4.

PMID:
21056004
20.

Chlamydial IFN-gamma immune evasion is linked to host infection tropism.

Nelson DE, Virok DP, Wood H, Roshick C, Johnson RM, Whitmire WM, Crane DD, Steele-Mortimer O, Kari L, McClarty G, Caldwell HD.

Proc Natl Acad Sci U S A. 2005 Jul 26;102(30):10658-63. Epub 2005 Jul 14.

21.

Chlamydial infection induces pathobiotype-specific protein tyrosine phosphorylation in epithelial cells.

Virok DP, Nelson DE, Whitmire WM, Crane DD, Goheen MM, Caldwell HD.

Infect Immun. 2005 Apr;73(4):1939-46.

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