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Items: 1 to 20 of 108

1.

Characterization of rhinovirus subviral A particles via capillary electrophoresis, electron microscopy and gas phase electrophoretic mobility molecular analysis: part II.

Subirats X, Weiss VU, Gösler I, Puls C, Limbeck A, Allmaier G, Kenndler E.

Electrophoresis. 2013 Jun;34(11):1600-9. doi: 10.1002/elps.201200686. Epub 2013 May 8.

PMID:
23483563
2.

Characterization of rhinovirus subviral A particles via capillary electrophoresis, electron microscopy and gas-phase electrophoretic mobility molecular analysis: Part I.

Weiss VU, Subirats X, Pickl-Herk A, Bilek G, Winkler W, Kumar M, Allmaier G, Blaas D, Kenndler E.

Electrophoresis. 2012 Jul;33(12):1833-41. doi: 10.1002/elps.201100647.

PMID:
22740471
3.

Capillary electrophoresis of affinity complexes between subviral 80S particles of human rhinovirus and monoclonal antibody 2G2.

Kremser L, Petsch M, Blaas D, Kenndler E.

Electrophoresis. 2006 Jul;27(13):2630-7.

PMID:
16732623
4.
5.

Analysis of a common cold virus and its subviral particles by gas-phase electrophoretic mobility molecular analysis and native mass spectrometry.

Weiss VU, Bereszcazk JZ, Havlik M, Kallinger P, Gösler I, Kumar M, Blaas D, Marchetti-Deschmann M, Heck AJ, Szymanski WW, Allmaier G.

Anal Chem. 2015 Sep 1;87(17):8709-17. doi: 10.1021/acs.analchem.5b01450. Epub 2015 Aug 12.

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8.

Influence of detergent additives on mobility of native and subviral rhinovirus particles in capillary electrophoresis.

Kremser L, Petsch M, Blaas D, Kenndler E.

Electrophoresis. 2006 Mar;27(5-6):1112-21.

PMID:
16523456
9.

The Rhinovirus subviral a-particle exposes 3'-terminal sequences of its genomic RNA.

Harutyunyan S, Kowalski H, Blaas D.

J Virol. 2014 Jun;88(11):6307-17. doi: 10.1128/JVI.00539-14. Epub 2014 Mar 26.

10.

Capillary electrophoresis of viruses, subviral particles and virus complexes.

Kremser L, Bilek G, Blaas D, Kenndler E.

J Sep Sci. 2007 Jul;30(11):1704-13. Review.

PMID:
17623450
11.

Uncoating of common cold virus is preceded by RNA switching as determined by X-ray and cryo-EM analyses of the subviral A-particle.

Pickl-Herk A, Luque D, Vives-Adrián L, Querol-Audí J, Garriga D, Trus BL, Verdaguer N, Blaas D, Castón JR.

Proc Natl Acad Sci U S A. 2013 Dec 10;110(50):20063-8. doi: 10.1073/pnas.1312128110. Epub 2013 Nov 25.

12.

Identification of poliovirions and subviral particles by capillary electrophoresis.

Halewyck H, Oita I, Thys B, Dejaegher B, Vander Heyden Y, Rombaut B.

Electrophoresis. 2010 Oct;31(19):3281-7.

PMID:
22216446
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15.

Insights into minor group rhinovirus uncoating: the X-ray structure of the HRV2 empty capsid.

Garriga D, Pickl-Herk A, Luque D, Wruss J, Castón JR, Blaas D, Verdaguer N.

PLoS Pathog. 2012 Jan;8(1):e1002473. doi: 10.1371/journal.ppat.1002473. Epub 2012 Jan 5.

16.

Antibodies to the buried N terminus of rhinovirus VP4 exhibit cross-serotypic neutralization.

Katpally U, Fu TM, Freed DC, Casimiro DR, Smith TJ.

J Virol. 2009 Jul;83(14):7040-8. doi: 10.1128/JVI.00557-09. Epub 2009 Apr 29.

17.

Capillary electrophoresis, gas-phase electrophoretic mobility molecular analysis, and electron microscopy: effective tools for quality assessment and basic rhinovirus research.

Weiss VU, Subirats X, Kumar M, Harutyunyan S, Gösler I, Kowalski H, Blaas D.

Methods Mol Biol. 2015;1221:101-28. doi: 10.1007/978-1-4939-1571-2_9.

PMID:
25261310
18.

The refined structure of human rhinovirus 16 at 2.15 A resolution: implications for the viral life cycle.

Hadfield AT, Lee Wm, Zhao R, Oliveira MA, Minor I, Rueckert RR, Rossmann MG.

Structure. 1997 Mar 15;5(3):427-41.

PMID:
9083115
19.

Study of the parameters of binding of R 61837 to human rhinovirus 9 and immunobiochemical evidence of capsid-stabilizing activity of the compound.

Moeremans M, De Raeymaeker M, Daneels G, De Brabander M, Aerts F, Janssen C, Andries K.

Antimicrob Agents Chemother. 1992 Feb;36(2):417-24.

20.

Structure of human rhinovirus serotype 2 (HRV2).

Verdaguer N, Blaas D, Fita I.

J Mol Biol. 2000 Jul 28;300(5):1179-94.

PMID:
10903863

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