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41.
  • Methyl labeling and TROSY N... Methyl labeling and TROSY NMR spectroscopy of proteins expressed in the eukaryote Pichia pastoris
    Clark, Lindsay; Zahm, Jacob A.; Ali, Rustam ... Journal of biomolecular NMR, 07/2015, Volume: 62, Issue: 3
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    13 C Methyl TROSY NMR spectroscopy has emerged as a powerful method for studying the dynamics of large systems such as macromolecular assemblies and membrane proteins. Specific 13 C labeling of ...
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42.
  • Crystal structure of the Fo... Crystal structure of the Formin mDia1 in autoinhibited conformation
    Otomo, Takanori; Tomchick, Diana R; Otomo, Chinatsu ... PloS one, 09/2010, Volume: 5, Issue: 9
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    Formin proteins utilize a conserved formin homology 2 (FH2) domain to nucleate new actin filaments. In mammalian diaphanous-related formins (DRFs) the FH2 domain is inhibited through an unknown ...
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43.
  • Phase separation of signali... Phase separation of signaling molecules promotes T cell receptor signal transduction
    Su, Xiaolei; Ditlev, Jonathon A.; Hui, Enfu ... Science, 04/2016, Volume: 352, Issue: 6285
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    Activation of various cell surface receptors triggers the reorganization of downstream signaling molecules into micrometer- or submicrometer-sized clusters. However, the functional consequences of ...
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44.
  • Structural Basis of Rho GTP... Structural Basis of Rho GTPase-Mediated Activation of the Formin mDia1
    Otomo, Takanori; Otomo, Chinatsu; Tomchick, Diana R. ... Molecular cell, 04/2005, Volume: 18, Issue: 3
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    Diaphanous-related formins (DRFs) regulate dynamics of unbranched actin filaments during cell contraction and cytokinesis. DRFs are autoinhibited through intramolecular binding of a Diaphanous ...
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45.
  • Structural and Energetic Me... Structural and Energetic Mechanisms of Cooperative Autoinhibition and Activation of Vav1
    Yu, Bingke; Martins, Ilídio R.S.; Li, Pilong ... Cell, 01/2010, Volume: 140, Issue: 2
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    Vav proteins are guanine nucleotide exchange factors (GEFs) for Rho family GTPases. They control processes including T cell activation, phagocytosis, and migration of normal and transformed cells. We ...
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46.
  • Mechanism of actin filament... Mechanism of actin filament nucleation by the bacterial effector VopL
    Rosen, Michael K; Yu, Bingke; Cheng, Hui-Chun ... Nature structural & molecular biology, 09/2011, Volume: 18, Issue: 9
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    Vibrio parahaemolyticus protein L (VopL) is an actin nucleation factor that induces stress fibers when injected into eukaryotic host cells. VopL contains three N-terminal Wiskott-Aldrich homology 2 ...
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47.
  • The Bacterial Effector VopL... The Bacterial Effector VopL Organizes Actin into Filament-like Structures
    Zahm, Jacob A.; Padrick, Shae B.; Chen, Zhucheng ... Cell, 10/2013, Volume: 155, Issue: 2
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    VopL is an effector protein from Vibrio parahaemolyticus that nucleates actin filaments. VopL consists of a VopL C-terminal domain (VCD) and an array of three WASP homology 2 (WH2) motifs. Here, we ...
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48.
  • Contingent Phosphorylation/... Contingent Phosphorylation/Dephosphorylation Provides a Mechanism of Molecular Memory in WASP
    Torres, Eduardo; Rosen, Michael K Molecular cell, 20/May , Volume: 11, Issue: 5
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    Cells can retain information about previous stimuli to produce distinct future responses. The biochemical mechanisms by which this is achieved are not well understood. The Wiskott-Aldrich syndrome ...
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  • Actin is an evolutionarily-... Actin is an evolutionarily-conserved damage-associated molecular pattern that signals tissue injury in Drosophila melanogaster
    Srinivasan, Naren; Gordon, Oliver; Ahrens, Susan ... eLife, 11/2016, Volume: 5
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    Damage-associated molecular patterns (DAMPs) are molecules released by dead cells that trigger sterile inflammation and, in vertebrates, adaptive immunity. Actin is a DAMP detected in mammals by the ...
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  • Karyopherins and condensates Karyopherins and condensates
    Springhower, Charis E.; Rosen, Michael K.; Chook, Yuh Min Current opinion in cell biology, 06/2020, Volume: 64
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    Several aggregation-prone RNA-binding proteins, including FUS, EWS, TAF15, hnRNP A1, hnRNP A2, and TDP-43, are mutated in neurodegenerative diseases. The nuclear–cytoplasmic distribution of these ...
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