A new perspective on the interaction between the Vg/VGLL1-3 proteins and the TEAD transcription factors
暂无分享,去创建一个
D. Erdmann | T. Vorherr | P. Furet | M. Affolter | P. Chène | T. Schmelzle | F. Villard | C. Scheufler | Typhaine Martin | Clara Delaunay | F. Bokhovchuk | Roman Wille | Gustavo Aguilar | Yannick Mesrouze | Marco Meyerhofer | Patrizia Fontana | C. Zimmermann | Tobias Schmelzle
[1] L. Zender,et al. Peritumoral activation of the Hippo pathway effectors YAP and TAZ suppresses liver cancer in mice , 2019, Science.
[2] D. Erdmann,et al. Identification of FAM181A and FAM181B as new interactors with the TEAD transcription factors , 2019, Protein science : a publication of the Protein Society.
[3] A. Dey,et al. Safety Considerations in the Development of Hippo Pathway Inhibitors in Cancers , 2019, Front. Cell Dev. Biol..
[4] K. Guan,et al. The Hippo Pathway: Biology and Pathophysiology. , 2019, Annual review of biochemistry.
[5] D. Erdmann,et al. Molecular and structural characterization of a TEAD mutation at the origin of Sveinsson's chorioretinal atrophy , 2019, The FEBS journal.
[6] D. Matallanas,et al. VGLL3 operates via TEAD1, TEAD3 and TEAD4 to influence myogenesis in skeletal muscle , 2019, Journal of Cell Science.
[7] G. Halder,et al. Hippo–YAP/TAZ signalling in organ regeneration and regenerative medicine , 2018, Nature Reviews Molecular Cell Biology.
[8] D. Erdmann,et al. Adaptation of the bound intrinsically disordered protein YAP to mutations at the YAP:TEAD interface , 2018, Protein science : a publication of the Protein Society.
[9] Jun Wang,et al. The Hippo pathway in the heart: pivotal roles in development, disease, and regeneration , 2018, Nature Reviews Cardiology.
[10] R. De Maria,et al. The Hippo pathway in normal development and cancer , 2018, Pharmacology & therapeutics.
[11] G. Huet,et al. Toward the Discovery of a Novel Class of YAP–TEAD Interaction Inhibitors by Virtual Screening Approach Targeting YAP–TEAD Protein–Protein Interface , 2018, Cancers.
[12] J. Park,et al. The Role of Hippo Pathway in Cancer Stem Cell Biology , 2018, Molecules and cells.
[13] Kun-Liang Guan,et al. The Hippo pathway in organ development, homeostasis, and regeneration. , 2017, Current opinion in cell biology.
[14] K. Guan,et al. Regulation of the Hippo Pathway Transcription Factor TEAD. , 2017, Trends in biochemical sciences.
[15] D. Erdmann,et al. Effect of the acylation of TEAD4 on its interaction with co‐activators YAP and TAZ , 2017, Protein science : a publication of the Protein Society.
[16] Adelene Y. L. Sim,et al. Targeting YAP/TAZ-TEAD protein-protein interactions using fragment-based and computational modeling approaches , 2017, PloS one.
[17] Fa-Xing Yu,et al. The Hippo pathway in tissue homeostasis and regeneration , 2017, Protein & Cell.
[18] Xiaolong Yang,et al. The roles of the Hippo pathway in cancer metastasis. , 2016, Cellular signalling.
[19] D. Flagiello,et al. An evolutionary, structural and functional overview of the mammalian TEAD1 and TEAD2 transcription factors. , 2016, Gene.
[20] D. Erdmann,et al. Different Recognition of TEAD Transcription Factor by the Conserved B‐strand:loop:a–helix Motif of the TEAD Binding Site of YAP and VGLL1 , 2016 .
[21] Stefano Piccolo,et al. YAP/TAZ at the Roots of Cancer. , 2016, Cancer cell.
[22] K. Guan,et al. The Hippo pathway in intestinal regeneration and disease , 2016, Nature Reviews Gastroenterology &Hepatology.
[23] A. Zider,et al. From vestigial to vestigial-like: the Drosophila gene that has taken wing , 2016, Development Genes and Evolution.
[24] Xiao Han,et al. Autopalmitoylation of TEAD Proteins Regulates Transcriptional Output of Hippo Pathway , 2016, Nature chemical biology.
[25] Christian N. Cunningham,et al. Palmitoylation of TEAD Transcription Factors Is Required for Their Stability and Function in Hippo Pathway Signaling. , 2016, Structure.
[26] Maria Paola Costi,et al. The Hippo Pathway and YAP/TAZ-TEAD Protein-Protein Interaction as Targets for Regenerative Medicine and Cancer Treatment. , 2015, Journal of medicinal chemistry.
[27] J. Wong,et al. Structure-Based Design and Synthesis of Potent Cyclic Peptides Inhibiting the YAP-TEAD Protein-Protein Interaction. , 2014, ACS medicinal chemistry letters.
[28] D. Erdmann,et al. The Surprising Features of the TEAD4‐Vgll1 Protein–Protein Interaction , 2014, Chembiochem : a European journal of chemical biology.
[29] D. Erdmann,et al. The TEAD4–YAP/TAZ Protein–Protein Interaction: Expected Similarities and Unexpected Differences , 2013, Chembiochem : a European journal of chemical biology.
[30] Angela M. Liu,et al. Regulators of mammalian Hippo pathway in cancer. , 2012, Biochimica et biophysica acta.
[31] A. Pobbati,et al. Structural and functional similarity between the Vgll1-TEAD and the YAP-TEAD complexes. , 2012, Structure.
[32] K. Tréguer,et al. Vestigial like gene family expression in Xenopus: common and divergent features with other vertebrates. , 2010, The International journal of developmental biology.
[33] Fei Chen,et al. Structural insights into the YAP and TEAD complex. , 2010, Genes & development.
[34] W. Hong,et al. Structural basis of YAP recognition by TEAD4 in the hippo pathway. , 2010, Genes & development.
[35] H. Yoshioka,et al. Vestigial and scalloped in the ladybird beetle: a conserved function in wing development and a novel function in pupal ecdysis , 2009, Insect molecular biology.
[36] Randy J. Read,et al. Phaser crystallographic software , 2007, Journal of applied crystallography.
[37] P. Katsamba,et al. Analyzing a kinetic titration series using affinity biosensors. , 2006, Analytical biochemistry.
[38] A. Courey,et al. SUMO enhances Vestigial function during wing morphogenesis , 2005, Mechanisms of Development.
[39] Paramvir S. Dehal,et al. Two Rounds of Whole Genome Duplication in the Ancestral Vertebrate , 2005, PLoS biology.
[40] M. Lynch,et al. The altered evolutionary trajectories of gene duplicates. , 2004, Trends in genetics : TIG.
[41] K. H. Wolfe,et al. Divergence of spatial gene expression profiles following species-specific gene duplications in human and mouse. , 2004, Genome Research.
[42] H. Stefánsson,et al. A novel TEAD1 mutation is the causative allele in Sveinsson's chorioretinal atrophy (helicoid peripapillary chorioretinal degeneration). , 2004, Human molecular genetics.
[43] D. Samson. Biology and Pathophysiology , 2004 .
[44] Martin Vingron,et al. New evidence for genome-wide duplications at the origin of vertebrates using an amphioxus gene set and completed animal genomes. , 2003, Genome research.
[45] C. Seoighe,et al. Significantly different patterns of amino acid replacement after gene duplication as compared to after speciation. , 2003, Molecular biology and evolution.
[46] A. Garcı́a-Bellido,et al. Genetic requirements of vestigial in the regulation of Drosophila wing development , 2003, Development.
[47] H. Krause,et al. Molecular interactions between Vestigial and Scalloped promote wing formation in Drosophila. , 1998, Genes & development.
[48] S. Carroll,et al. Control of Drosophila wing and haltere development by the nuclear vestigial gene product. , 1991, Genes & development.
[49] D. Erdmann,et al. Figures and figure supplements Dissection of the interaction between the intrinsically disordered YAP protein and the transcription factor , 2017 .
[50] A. Sharff,et al. Data processing and analysis with the autoPROC toolbox , 2011, Acta crystallographica. Section D, Biological crystallography.
[51] P. Afonine,et al. research papers Acta Crystallographica Section D Biological , 2003 .