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Items: 1 to 20 of 103

1.

Dissecting the microscopic steps of the cyclophilin A enzymatic cycle on the biological HIV-1 capsid substrate by NMR.

Bosco DA, Eisenmesser EZ, Clarkson MW, Wolf-Watz M, Labeikovsky W, Millet O, Kern D.

J Mol Biol. 2010 Nov 12;403(5):723-38. doi: 10.1016/j.jmb.2010.08.001. Epub 2010 Aug 12.

PMID:
20708627
2.

Catalysis and binding of cyclophilin A with different HIV-1 capsid constructs.

Bosco DA, Kern D.

Biochemistry. 2004 May 25;43(20):6110-9.

PMID:
15147195
3.

Catalysis of cis/trans isomerization in native HIV-1 capsid by human cyclophilin A.

Bosco DA, Eisenmesser EZ, Pochapsky S, Sundquist WI, Kern D.

Proc Natl Acad Sci U S A. 2002 Apr 16;99(8):5247-52. Epub 2002 Apr 2.

5.

Structural analysis of the N-terminal domain of the human T-cell leukemia virus capsid protein.

Cornilescu CC, Bouamr F, Yao X, Carter C, Tjandra N.

J Mol Biol. 2001 Mar 2;306(4):783-97.

PMID:
11243788
6.

Structural consequences of cyclophilin A binding on maturational refolding in human immunodeficiency virus type 1 capsid protein.

Dietrich L, Ehrlich LS, LaGrassa TJ, Ebbets-Reed D, Carter C.

J Virol. 2001 May;75(10):4721-33.

7.

Discovery of dual inhibitors targeting both HIV-1 capsid and human cyclophilin A to inhibit the assembly and uncoating of the viral capsid.

Li J, Tan Z, Tang S, Hewlett I, Pang R, He M, He S, Tian B, Chen K, Yang M.

Bioorg Med Chem. 2009 Apr 15;17(8):3177-88. doi: 10.1016/j.bmc.2009.02.051. Epub 2009 Mar 3.

PMID:
19328002
8.

A nonessential role for Arg 55 in cyclophilin18 for catalysis of proline isomerization during protein folding.

Moparthi SB, Hammarström P, Carlsson U.

Protein Sci. 2009 Feb;18(2):475-9. doi: 10.1002/pro.28. Erratum in: Protein Sci. 2009 Jun;18(6):1332.

9.
10.
11.

The pH dependence of HIV-1 capsid assembly and its interaction with cyclophilin A.

Bon Homme M, Wong S, Carter C, Scarlata S.

Biophys Chem. 2003 Aug 1;105(1):67-77.

PMID:
12932580
12.

Assembly properties of the human immunodeficiency virus type 1 CA protein.

Ganser-Pornillos BK, von Schwedler UK, Stray KM, Aiken C, Sundquist WI.

J Virol. 2004 Mar;78(5):2545-52.

13.

Structure-activity relationships (SAR) research of thiourea derivatives as dual inhibitors targeting both HIV-1 capsid and human cyclophilin A.

Chen K, Tan Z, He M, Li J, Tang S, Hewlett I, Yu F, Jin Y, Yang M.

Chem Biol Drug Des. 2010 Jul;76(1):25-33. doi: 10.1111/j.1747-0285.2010.00981.x. Epub 2010 May 4.

PMID:
20456372
14.

Hepatitis C virus NS5A protein is a substrate for the peptidyl-prolyl cis/trans isomerase activity of cyclophilins A and B.

Hanoulle X, Badillo A, Wieruszeski JM, Verdegem D, Landrieu I, Bartenschlager R, Penin F, Lippens G.

J Biol Chem. 2009 May 15;284(20):13589-601. doi: 10.1074/jbc.M809244200. Epub 2009 Mar 18.

15.

Enzyme dynamics during catalysis.

Eisenmesser EZ, Bosco DA, Akke M, Kern D.

Science. 2002 Feb 22;295(5559):1520-3.

16.
17.

Structural insights into the catalytic mechanism of cyclophilin A.

Howard BR, Vajdos FF, Li S, Sundquist WI, Hill CP.

Nat Struct Biol. 2003 Jun;10(6):475-81.

PMID:
12730686
18.

Prolyl isomerases in a minimal cell. Catalysis of protein folding by trigger factor from Mycoplasma genitalium.

Bang H, Pecht A, Raddatz G, Scior T, Solbach W, Brune K, Pahl A.

Eur J Biochem. 2000 Jun;267(11):3270-80.

19.

Enzyme dynamics during catalysis measured by NMR spectroscopy.

Kern D, Eisenmesser EZ, Wolf-Watz M.

Methods Enzymol. 2005;394:507-24.

PMID:
15808235
20.

Target cell type-dependent modulation of human immunodeficiency virus type 1 capsid disassembly by cyclophilin A.

Li Y, Kar AK, Sodroski J.

J Virol. 2009 Nov;83(21):10951-62. doi: 10.1128/JVI.00682-09. Epub 2009 Aug 5.

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