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Similar articles for PubMed (Select 22859308)

1.

Base of the measles virus fusion trimer head receives the signal that triggers membrane fusion.

Apte-Sengupta S, Negi S, Leonard VH, Oezguen N, Navaratnarajah CK, Braun W, Cattaneo R.

J Biol Chem. 2012 Sep 21;287(39):33026-35. Epub 2012 Aug 2.

2.

The measles virus hemagglutinin stalk: structures and functions of the central fusion activation and membrane-proximal segments.

Navaratnarajah CK, Kumar S, Generous A, Apte-Sengupta S, Mateo M, Cattaneo R.

J Virol. 2014 Jun;88(11):6158-67. doi: 10.1128/JVI.02846-13. Epub 2014 Mar 19.

3.

Mutations in the putative dimer-dimer interfaces of the measles virus hemagglutinin head domain affect membrane fusion triggering.

Nakashima M, Shirogane Y, Hashiguchi T, Yanagi Y.

J Biol Chem. 2013 Mar 22;288(12):8085-91. doi: 10.1074/jbc.M112.427609. Epub 2013 Jan 29.

5.

Mutations in the parainfluenza virus 5 fusion protein reveal domains important for fusion triggering and metastability.

Bose S, Heath CM, Shah PA, Alayyoubi M, Jardetzky TS, Lamb RA.

J Virol. 2013 Dec;87(24):13520-31. doi: 10.1128/JVI.02123-13. Epub 2013 Oct 2.

6.

Molecular determinants defining the triggering range of prefusion F complexes of canine distemper virus.

Avila M, Alves L, Khosravi M, Ader-Ebert N, Origgi F, Schneider-Schaulies J, Zurbriggen A, Plemper RK, Plattet P.

J Virol. 2014 Mar;88(5):2951-66. doi: 10.1128/JVI.03123-13. Epub 2013 Dec 26.

7.

Two domains that control prefusion stability and transport competence of the measles virus fusion protein.

Doyle J, Prussia A, White LK, Sun A, Liotta DC, Snyder JP, Compans RW, Plemper RK.

J Virol. 2006 Feb;80(3):1524-36.

8.

Membrane fusion triggering: three modules with different structure and function in the upper half of the measles virus attachment protein stalk.

Navaratnarajah CK, Negi S, Braun W, Cattaneo R.

J Biol Chem. 2012 Nov 9;287(46):38543-51. doi: 10.1074/jbc.M112.410563. Epub 2012 Sep 24.

9.

Probing the spatial organization of measles virus fusion complexes.

Paal T, Brindley MA, St Clair C, Prussia A, Gaus D, Krumm SA, Snyder JP, Plemper RK.

J Virol. 2009 Oct;83(20):10480-93. doi: 10.1128/JVI.01195-09. Epub 2009 Aug 5.

10.

Measles virus glycoprotein complex assembly, receptor attachment, and cell entry.

Navaratnarajah CK, Leonard VH, Cattaneo R.

Curr Top Microbiol Immunol. 2009;329:59-76. Review.

PMID:
19198562
11.
12.

The fusion protein core of measles virus forms stable coiled-coil trimer.

Zhu J, Zhang CW, Qi Y, Tien P, Gao GF.

Biochem Biophys Res Commun. 2002 Dec 20;299(5):897-902.

PMID:
12470664
13.

Measles virus glycoprotein complexes preassemble intracellularly and relax during transport to the cell surface in preparation for fusion.

Brindley MA, Chaudhury S, Plemper RK.

J Virol. 2015 Jan 15;89(2):1230-41. doi: 10.1128/JVI.02754-14. Epub 2014 Nov 12.

15.

Structural features of paramyxovirus F protein required for fusion initiation.

Plemper RK, Lakdawala AS, Gernert KM, Snyder JP, Compans RW.

Biochemistry. 2003 Jun 10;42(22):6645-55.

PMID:
12779319
16.

The measles virus fusion protein transmembrane region modulates availability of an active glycoprotein complex and fusion efficiency.

Mühlebach MD, Leonard VH, Cattaneo R.

J Virol. 2008 Nov;82(22):11437-45. doi: 10.1128/JVI.00779-08. Epub 2008 Sep 10.

17.

The paramyxovirus fusion protein C-terminal region: mutagenesis indicates an indivisible protein unit.

Zokarkar A, Lamb RA.

J Virol. 2012 Mar;86(5):2600-9. doi: 10.1128/JVI.06546-11. Epub 2011 Dec 14.

18.

Hydrophobic and charged residues in the central segment of the measles virus hemagglutinin stalk mediate transmission of the fusion-triggering signal.

Apte-Sengupta S, Navaratnarajah CK, Cattaneo R.

J Virol. 2013 Sep;87(18):10401-4. doi: 10.1128/JVI.01547-13. Epub 2013 Jul 17.

19.
20.

Proteolytic cleavage of the fusion protein but not membrane fusion is required for measles virus-induced immunosuppression in vitro.

Weidmann A, Maisner A, Garten W, Seufert M, ter Meulen V, Schneider-Schaulies S.

J Virol. 2000 Feb;74(4):1985-93.

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