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1 - 25 of 65 results for author:"Liddington R." in Literature citations

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alphaE-catenin is an autoinhibited molecule that coactivates vinculin.

Choi H.J., Pokutta S., Cadwell G.W., Bobkov A.A., Bankston L.A., Liddington R.C., Weis W.I.

Proc. Natl. Acad. Sci. U.S.A. 109:8576-8581(2012) · Mapped (4)

Crystal structure of C5b-6 suggests structural basis for priming assembly of the membrane attack complex.

Aleshin A.E., DiScipio R.G., Stec B., Liddington R.C.

J. Biol. Chem. 287:19642-19652(2012) · Mapped (4)

Structure of complement C6 suggests a mechanism for initiation and unidirectional, sequential assembly of membrane attack complex (MAC).

Aleshin A.E., Schraufstatter I.U., Stec B., Bankston L.A., Liddington R.C., DiScipio R.G.

J. Biol. Chem. 287:10210-10222(2012) · UniProtKB (1) · Mapped (1)

Role of net charge on catalytic domain and influence of cell wall binding domain on bactericidal activity, specificity, and host range of phage lysins.

Low L.Y., Yang C., Perego M., Osterman A., Liddington R.

J. Biol. Chem. 286:34391-34403(2011) · UniProtKB (1) · Mapped (1)

Structural determinants of caspase-9 inhibition by the vaccinia virus protein, F1L.

Yu E., Zhai D., Jin C., Gerlic M., Reed J.C., Liddington R.

J. Biol. Chem. 286:30748-30758(2011) · Mapped (5)

Structural insights into inhibition of Bacillus anthracis sporulation by a novel class of non-heme globin sensor domains.

Stranzl G.R., Santelli E., Bankston L.A., La Clair C., Bobkov A., Schwarzenbacher R., Godzik A., Perego M., Grynberg M., Liddington R.C.

J. Biol. Chem. 286:8448-8458(2011) · UniProtKB (1) · Mapped (1)

Structural basis of membrane targeting by the Dock180 family of Rho family guanine exchange factors (Rho-GEFs).

Premkumar L., Bobkov A.A., Patel M., Jaroszewski L., Bankston L.A., Stec B., Vuori K., Cote J.F., Liddington R.C.

J. Biol. Chem. 285:13211-13222(2010) · Mapped (1)

Vaccinia virus protein F1L is a caspase-9 inhibitor.

Zhai D., Yu E., Jin C., Welsh K., Shiau C.W., Chen L., Salvesen G.S., Liddington R., Reed J.C.

J. Biol. Chem. 285:5569-5580(2010) · Mapped (5)

Crystal and solution structures of a prokaryotic M16B peptidase: an open and shut case.

Aleshin A.E., Gramatikova S., Hura G.L., Bobkov A., Strongin A.Y., Stec B., Tainer J.A., Liddington R.C., Smith J.W.

Structure 17:1465-1475(2009) · UniProtKB (1)

Structural and functional bases for broad-spectrum neutralization of avian and human influenza A viruses.

Sui J., Hwang W.C., Perez S., Wei G., Aird D., Chen L.M., Santelli E., Stec B., Cadwell G., Ali M. et al.

Nat. Struct. Mol. Biol. 16:265-273(2009) · Mapped (2)

Structural determinants of integrin binding to the talin rod.

Gingras A.R., Ziegler W.H., Bobkov A.A., Joyce M.G., Fasci D., Himmel M., Rothemund S., Ritter A., Grossmann J.G., Patel B. et al.

J. Biol. Chem. 284:8866-8876(2009) · Mapped (1)

The two-component NS2B-NS3 proteinase represses DNA unwinding activity of the West Nile virus NS3 helicase.

Chernov A.V., Shiryaev S.A., Aleshin A.E., Ratnikov B.I., Smith J.W., Liddington R.C., Strongin A.Y.

J. Biol. Chem. 283:17270-17278(2008) · Mapped (1)

Structure-based mutagenesis identifies important novel determinants of the NS2B cofactor of the West Nile virus two-component NS2B-NS3 proteinase.

Radichev I., Shiryaev S.A., Aleshin A.E., Ratnikov B.I., Smith J.W., Liddington R.C., Strongin A.Y.

J. Gen. Virol. 89:636-641(2008) · Mapped (1)

Modifying murine von Willebrand factor A1 domain for in vivo assessment of human platelet therapies.

Chen J., Tan K., Zhou H., Lo H.F., Roux D.T., Liddington R.C., Diacovo T.G.

Nat. Biotechnol. 26:114-119(2008) · Mapped (10)

The PTB domain of tensin: NMR solution structure and phosphoinositides binding studies.

Leone M., Yu E.C., Liddington R.C., Pasquale E.B., Pellecchia M.

Biopolymers 89:86-92(2008) · Mapped (1)

Structure of the PTB domain of tensin1 and a model for its recruitment to fibrillar adhesions.

McCleverty C.J., Lin D.C., Liddington R.C.

Protein Sci. 16:1223-1229(2007) · Mapped (1)

Structural evidence for regulation and specificity of flaviviral proteases and evolution of the Flaviviridae fold.

Aleshin A.E., Shiryaev S.A., Strongin A.Y., Liddington R.C.

Protein Sci. 16:795-806(2007) · UniProtKB (1) · Mapped (1)

The crystal structure of Bacillus subtilis YycI reveals a common fold for two members of an unusual class of sensor histidine kinase regulatory proteins.

Santelli E., Liddington R.C., Mohan M.A., Hoch J.A., Szurmant H.

J. Bacteriol. 189:3290-3295(2007) · UniProtKB (1)

Minor capsid proteins of simian virus 40 are dispensable for nucleocapsid assembly and cell entry but are required for nuclear entry of the viral genome.

Nakanishi A., Itoh N., Li P.P., Handa H., Liddington R.C., Kasamatsu H.

J. Virol. 81:3778-3785(2007) · Mapped (3)

Structural basis of integrin activation by talin.

Wegener K.L., Partridge A.W., Han J., Pickford A.R., Liddington R.C., Ginsberg M.H., Campbell I.D.

Cell 128:171-182(2007) · Mapped (19)

Vaccinia virus N1L protein resembles a B cell lymphoma-2 (Bcl-2) family protein.

Aoyagi M., Zhai D., Jin C., Aleshin A.E., Stec B., Reed J.C., Liddington R.C.

Protein Sci. 16:118-124(2007) · UniProtKB (1) · Mapped (4)

Structural basis of neutralization by a human anti-severe acute respiratory syndrome spike protein antibody, 80R.

Hwang W.C., Lin Y., Santelli E., Sui J., Jaroszewski L., Stec B., Farzan M., Marasco W.A., Liddington R.C.

J. Biol. Chem. 281:34610-34616(2006) · Mapped (1)

Identification of amino acid residues within simian virus 40 capsid proteins Vp1, Vp2, and Vp3 that are required for their interaction and for viral infection.

Nakanishi A., Nakamura A., Liddington R., Kasamatsu H.

J. Virol. 80:8891-8898(2006) · UniProtKB (2)

Structure of the alpha-actinin-vinculin head domain complex determined by cryo-electron microscopy.

Kelly D.F., Taylor D.W., Bakolitsa C., Bobkov A.A., Bankston L., Liddington R.C., Taylor K.A.

J. Mol. Biol. 357:562-573(2006) · Mapped (9)

The activity of the vinculin binding sites in talin is influenced by the stability of the helical bundles that make up the talin rod.

Patel B., Gingras A.R., Bobkov A.A., Fujimoto L.M., Zhang M., Liddington R.C., Mazzeo D., Emsley J., Roberts G.C., Barsukov I.L. et al.

J. Biol. Chem. 281:7458-7467(2006) · Mapped (13)

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