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Volumn 4, Issue September 2015, 2015, Pages

Amotl2a interacts with the hippo effector yap1 and the Wnt/β-catenin effector lef1 to control tissue size in zebrafish

Author keywords

[No Author keywords available]

Indexed keywords

BETA CATENIN; LYMPHOID ENHANCER FACTOR 1; PROTEIN AMOTL 2A; TRANSCRIPTION FACTOR YAP1; UNCLASSIFIED DRUG; AMOTL2 PROTEIN, ZEBRAFISH; LEF1 PROTEIN, ZEBRAFISH; MEMBRANE PROTEIN; TRANSACTIVATOR PROTEIN; TRANSCRIPTION FACTOR; YES-ASSOCIATED PROTEIN (YAP), ZEBRAFISH; ZEBRAFISH PROTEIN;

EID: 84943743738     PISSN: None     EISSN: 2050084X     Source Type: Journal    
DOI: 10.7554/eLife.08201     Document Type: Article
Times cited : (33)

References (90)
  • 2
    • 78650842076 scopus 로고    scopus 로고
    • Wnt/β-catenin dependent cell proliferation underlies segmented lateral line morphogenesis
    • Aman A, Nguyen M, Piotrowski T. 2011. Wnt/β-catenin dependent cell proliferation underlies segmented lateral line morphogenesis. Developmental Biology 349:470-482. doi: 10.1016/j.ydbio.2010.10.022.
    • (2011) Developmental Biology , vol.349 , pp. 470-482
    • Aman, A.1    Nguyen, M.2    Piotrowski, T.3
  • 3
    • 84883466306 scopus 로고    scopus 로고
    • A mechanical checkpoint controls multicellular growth through YAP/TAZ regulation by actin-processing factors
    • Aragona M, Panciera T, Manfrin A, Giulitti S, Michielin F, Elvassore N, Dupont S, Piccolo S. 2013. A mechanical checkpoint controls multicellular growth through YAP/TAZ regulation by actin-processing factors. Cell 154: 1047-1059. doi: 10.1016/j.cell.2013.07.042.
    • (2013) Cell , vol.154 , pp. 1047-1059
    • Aragona, M.1    Panciera, T.2    Manfrin, A.3    Giulitti, S.4    Michielin, F.5    Elvassore, N.6    Dupont, S.7    Piccolo, S.8
  • 6
    • 84877930326 scopus 로고    scopus 로고
    • The Hippo superhighway: Signaling crossroads converging on the Hippo/Yap pathway in stem cells and development
    • Barry ER, Camargo FD. 2013. The Hippo superhighway: signaling crossroads converging on the Hippo/Yap pathway in stem cells and development. Current Opinion in Cell Biology 25:247-253. doi: 10.1016/j.ceb.2012.12.006.
    • (2013) Current Opinion in Cell Biology , vol.25 , pp. 247-253
    • Barry, E.R.1    Camargo, F.D.2
  • 8
    • 84859852225 scopus 로고    scopus 로고
    • Growth control by committee: Intercellular junctions, cell polarity, and the cytoskeleton regulate Hippo signaling
    • Boggiano JC, Fehon RG. 2012. Growth control by committee: intercellular junctions, cell polarity, and the cytoskeleton regulate Hippo signaling. Developmental Cell 22:695-702. doi: 10.1016/j.devcel.2012.03.013.
    • (2012) Developmental Cell , vol.22 , pp. 695-702
    • Boggiano, J.C.1    Fehon, R.G.2
  • 9
    • 84895929894 scopus 로고    scopus 로고
    • An evolutionary shift in the regulation of the Hippo pathway between mice and flies
    • Bossuyt W, Chen CL, Chen Q, Sudol M, McNeill H, Pan D, Kopp A, Halder G. 2014. An evolutionary shift in the regulation of the Hippo pathway between mice and flies. Oncogene 33:1218-1228. doi: 10.1038/onc.2013.82.
    • (2014) Oncogene , vol.33 , pp. 1218-1228
    • Bossuyt, W.1    Chen, C.L.2    Chen, Q.3    Sudol, M.4    McNeill, H.5    Pan, D.6    Kopp, A.7    Halder, G.8
  • 10
    • 0037130937 scopus 로고    scopus 로고
    • Angiomotin belongs to a novel protein family with conserved coiled-coil and PDZ binding domains
    • Bratt A, Wilson WJ, Troyanovsky B, Aase K, Kessler R, Van Meir EG, Holmgren L. 2002. Angiomotin belongs to a novel protein family with conserved coiled-coil and PDZ binding domains. Gene 298:69-77. doi: 10.1016/S0378-1119(02)00928-9.
    • (2002) Gene , vol.298 , pp. 69-77
    • Bratt, A.1    Wilson, W.J.2    Troyanovsky, B.3    Aase, K.4    Kessler, R.5    Van Meir, E.G.6    Holmgren, L.7
  • 14
    • 84891383662 scopus 로고    scopus 로고
    • Actin-binding and cell proliferation activities of angiomotin family members are regulated by Hippo pathway-mediated phosphorylation
    • Chan SW, Lim CJ, Guo F, Tan I, Leung T, Hong W. 2013. Actin-binding and cell proliferation activities of angiomotin family members are regulated by Hippo pathway-mediated phosphorylation. The Journal of Biological Chemistry 288:37296-37307. doi: 10.1074/jbc.M113.527598.
    • (2013) The Journal of Biological Chemistry , vol.288 , pp. 37296-37307
    • Chan, S.W.1    Lim, C.J.2    Guo, F.3    Tan, I.4    Leung, T.5    Hong, W.6
  • 19
    • 84885803646 scopus 로고    scopus 로고
    • Hippo gains weight: Added insights and complexity to pathway control
    • Enderle L, McNeill H. 2013. Hippo gains weight: added insights and complexity to pathway control. Science Signaling 6:re7. doi: 10.1126/scisignal.2004208.
    • (2013) Science Signaling , vol.6 , pp. 7
    • Enderle, L.1    McNeill, H.2
  • 22
    • 79955155124 scopus 로고    scopus 로고
    • A Slit/miR-218/Robo regulatory loop is required during heart tube formation in zebrafish
    • Fish JE, Wythe JD, Xiao T, Bruneau BG, Stainier DY, Srivastava D, Woo S. 2011. A Slit/miR-218/Robo regulatory loop is required during heart tube formation in zebrafish. Development 138:1409-1419. doi: 10.1242/dev.060046.
    • (2011) Development , vol.138 , pp. 1409-1419
    • Fish, J.E.1    Wythe, J.D.2    Xiao, T.3    Bruneau, B.G.4    Stainier, D.Y.5    Srivastava, D.6    Woo, S.7
  • 23
    • 84907963306 scopus 로고    scopus 로고
    • S1P-Yap1 signaling regulates endoderm formation required for cardiac precursor cell migration in zebrafish
    • Fukui H, Terai K, Nakajima H, Chiba A, Fukuhara S, Mochizuki N. 2014. S1P-Yap1 signaling regulates endoderm formation required for cardiac precursor cell migration in zebrafish. Developmental Cell 31:128-136. doi: 10.1016/j.devcel.2014.08.014.
    • (2014) Developmental Cell , vol.31 , pp. 128-136
    • Fukui, H.1    Terai, K.2    Nakajima, H.3    Chiba, A.4    Fukuhara, S.5    Mochizuki, N.6
  • 24
    • 78649696258 scopus 로고    scopus 로고
    • Lef1 controls patterning and proliferation in the posterior lateral line system of zebrafish
    • Gamba L, Cubedo N, Lutfalla G, Ghysen A, Dambly-Chaudiere C. 2010. Lef1 controls patterning and proliferation in the posterior lateral line system of zebrafish. Developmental Dynamics 239:3163-3171. doi: 10.1002/dvdy.22469.
    • (2010) Developmental Dynamics , vol.239 , pp. 3163-3171
    • Gamba, L.1    Cubedo, N.2    Lutfalla, G.3    Ghysen, A.4    Dambly-Chaudiere, C.5
  • 25
    • 84907556031 scopus 로고    scopus 로고
    • Sensing the local environment: Actin architecture and Hippo signalling
    • Gaspar P, Tapon N. 2014. Sensing the local environment: actin architecture and Hippo signalling. Current Opinion in Cell Biology 31C:74-83. doi: 10.1016/j.ceb.2014.09.003.
    • (2014) Current Opinion in Cell Biology , vol.31 , pp. 74-83
    • Gaspar, P.1    Tapon, N.2
  • 26
    • 79151470966 scopus 로고    scopus 로고
    • Morpholino artifacts provide pitfalls and reveal a novel role for pro-apoptotic genes in hindbrain boundary development
    • Gerety SS, Wilkinson DG. 2011. Morpholino artifacts provide pitfalls and reveal a novel role for pro-apoptotic genes in hindbrain boundary development. Developmental Biology 350:279-289. doi: 10.1016/j.ydbio.2010.11.030.
    • (2011) Developmental Biology , vol.350 , pp. 279-289
    • Gerety, S.S.1    Wilkinson, D.G.2
  • 28
    • 0032144055 scopus 로고    scopus 로고
    • Restricted expression of the homeobox gene prox 1 in developing zebrafish
    • Glasgow E, Tomarev SI. 1998. Restricted expression of the homeobox gene prox 1 in developing zebrafish. Mechanisms of Development 76:175-178. doi: 10.1016/S0925-4773(98)00121-X.
    • (1998) Mechanisms of Development , vol.76 , pp. 175-178
    • Glasgow, E.1    Tomarev, S.I.2
  • 29
    • 77955405813 scopus 로고    scopus 로고
    • Upstream regulation of the hippo size control pathway
    • Grusche FA, Richardson HE, Harvey KF. 2010. Upstream regulation of the hippo size control pathway. Current Biology 20:R574-R582. doi: 10.1016/j.cub.2010.05.023.
    • (2010) Current Biology , vol.20
    • Grusche, F.A.1    Richardson, H.E.2    Harvey, K.F.3
  • 30
    • 84894088287 scopus 로고    scopus 로고
    • The Hippo-YAP signaling pathway and contact inhibition of growth
    • Gumbiner BM, Kim NG. 2014. The Hippo-YAP signaling pathway and contact inhibition of growth. Journal of Cell Science 127:709-717. doi: 10.1242/jcs.140103.
    • (2014) Journal of Cell Science , vol.127 , pp. 709-717
    • Gumbiner, B.M.1    Kim, N.G.2
  • 31
    • 33646083933 scopus 로고    scopus 로고
    • Chemokine signaling mediates self-organizing tissue migration in the zebrafish lateral line
    • Haas P, Gilmour DT. 2006. Chemokine signaling mediates self-organizing tissue migration in the zebrafish lateral line. Developmental Cell 10:673-680. doi: 10.1016/j.devcel.2006.02.019.
    • (2006) Developmental Cell , vol.10 , pp. 673-680
    • Haas, P.1    Gilmour, D.T.2
  • 32
    • 78650724753 scopus 로고    scopus 로고
    • Hippo signaling: Growth control and beyond
    • Halder G, Johnson RL. 2010. Hippo signaling: growth control and beyond. Development 138:9-22. doi: 10.1242/dev.045500.
    • (2010) Development , vol.138 , pp. 9-22
    • Halder, G.1    Johnson, R.L.2
  • 33
    • 84865411430 scopus 로고    scopus 로고
    • Transduction of mechanical and cytoskeletal cues by YAP and TAZ
    • Halder G, Dupont S, Piccolo S. 2012. Transduction of mechanical and cytoskeletal cues by YAP and TAZ. Nature Reviews Molecular Cell Biology 13:591-600. doi: 10.1038/nrm3416.
    • (2012) Nature Reviews Molecular Cell Biology , vol.13 , pp. 591-600
    • Halder, G.1    Dupont, S.2    Piccolo, S.3
  • 34
    • 84864797365 scopus 로고    scopus 로고
    • Fgfr-Ras-MAPK signaling is required for apical constriction via apical positioning of Rho-associated kinase during mechanosensory organ formation
    • Harding MJ, Nechiporuk AV. 2012. Fgfr-Ras-MAPK signaling is required for apical constriction via apical positioning of Rho-associated kinase during mechanosensory organ formation. Development 139:3130-3135. doi: 10.1242/dev.082271.
    • (2012) Development , vol.139 , pp. 3130-3135
    • Harding, M.J.1    Nechiporuk, A.V.2
  • 35
    • 79955405757 scopus 로고    scopus 로고
    • Hippo pathway inhibits Wnt signaling to restrain cardiomyocyte proliferation and heart size
    • Heallen T, Zhang M, Wang J, Bonilla-Claudio M, Klysik E, Johnson RL, Martin JF. 2011. Hippo pathway inhibits Wnt signaling to restrain cardiomyocyte proliferation and heart size. Science 332:458-461. doi: 10.1126/science.1199010.
    • (2011) Science , vol.332 , pp. 458-461
    • Heallen, T.1    Zhang, M.2    Wang, J.3    Bonilla-Claudio, M.4    Klysik, E.5    Johnson, R.L.6    Martin, J.F.7
  • 36
    • 4444243572 scopus 로고    scopus 로고
    • Fgf3 signaling from the ventral diencephalon is required for early specification and subsequent survival of the zebrafish adenohypophysis
    • Herzog W, Sonntag C, Hardt von der S, Roehl HH, Varga ZM, Hammerschmidt M. 2004. Fgf3 signaling from the ventral diencephalon is required for early specification and subsequent survival of the zebrafish adenohypophysis. Development 131:3681-3692. doi: 10.1242/dev.01235.
    • (2004) Development , vol.131 , pp. 3681-3692
    • Herzog, W.1    Sonntag, C.2    Von Hardt Der, S.3    Roehl, H.H.4    Varga, Z.M.5    Hammerschmidt, M.6
  • 39
    • 84884220174 scopus 로고    scopus 로고
    • Angiomotin’g YAP into the nucleus for cell proliferation and cancer development
    • Hong W. 2013. Angiomotin’g YAP into the nucleus for cell proliferation and cancer development. Science Signaling 6:pe27. doi: 10.1126/scisignal.2004573.
    • (2013) Science Signaling , vol.6 , pp. 27
    • Hong, W.1
  • 42
    • 84858002052 scopus 로고    scopus 로고
    • A molecular mechanism that links Hippo signalling to the inhibition of Wnt/β-catenin signalling
    • Imajo M, Miyatake K, Iimura A, Miyamoto A, Nishida E. 2012. A molecular mechanism that links Hippo signalling to the inhibition of Wnt/β-catenin signalling. The EMBO Journal 31:1109-1122. doi: 10.1038/emboj.2011.487.
    • (2012) The EMBO Journal , vol.31 , pp. 1109-1122
    • Imajo, M.1    Miyatake, K.2    Iimura, A.3    Miyamoto, A.4    Nishida, E.5
  • 43
    • 84866622306 scopus 로고    scopus 로고
    • Integration of intercellular signaling through the Hippo pathway
    • Irvine KD. 2012. Integration of intercellular signaling through the Hippo pathway. Seminars in Cell & Developmental Biology 23:812-817. doi: 10.1016/j.semcdb.2012.04.006.
    • (2012) Seminars in Cell & Developmental Biology , vol.23 , pp. 812-817
    • Irvine, K.D.1
  • 44
    • 79961087833 scopus 로고    scopus 로고
    • E-cadherin mediates contact inhibition of proliferation through Hippo signaling-pathway components
    • Kim N-G, Koh E, Chen X, Gumbiner BM. 2011. E-cadherin mediates contact inhibition of proliferation through Hippo signaling-pathway components. Proceedings of the National Academy of Sciences of USA 108: 11930-11935. doi: 10.1073/pnas.1103345108.
    • (2011) Proceedings of the National Academy of Sciences of USA , vol.108 , pp. 11930-11935
    • Kim, N.-G.1    Koh, E.2    Chen, X.3    Gumbiner, B.M.4
  • 46
    • 0034733591 scopus 로고    scopus 로고
    • Rapid and reliable protein extraction from yeast
    • Kushnirov VV. 2000. Rapid and reliable protein extraction from yeast. Yeast 16:857-860. doi: 10.1002/1097-0061(20000630)16:9<857::AID-YEA561>3.0.CO;2-B.
    • (2000) Yeast , vol.16 , pp. 857-860
    • Kushnirov, V.V.1
  • 47
    • 4043080500 scopus 로고    scopus 로고
    • The zebrafish Iroquois gene iro7 positions the r4/r5 boundary and controls neurogenesis in the rostral hindbrain
    • Lecaudey V, Anselme I, Rosa F, Schneider-Maunoury S. 2004. The zebrafish Iroquois gene iro7 positions the r4/r5 boundary and controls neurogenesis in the rostral hindbrain. Development 131:3121-3131. doi: 10.1242/dev.01190.
    • (2004) Development , vol.131 , pp. 3121-3131
    • Lecaudey, V.1    Anselme, I.2    Rosa, F.3    Schneider-Maunoury, S.4
  • 48
    • 52449088259 scopus 로고    scopus 로고
    • Dynamic Fgf signaling couples morphogenesis and migration in the zebrafish lateral line primordium
    • Lecaudey V, Cakan-Akdogan G, Norton WH, Gilmour DT. 2008. Dynamic Fgf signaling couples morphogenesis and migration in the zebrafish lateral line primordium. Development 135:2695-2705. doi: 10.1242/dev.025981.
    • (2008) Development , vol.135 , pp. 2695-2705
    • Lecaudey, V.1    Cakan-Akdogan, G.2    Norton, W.H.3    Gilmour, D.T.4
  • 49
    • 29644445924 scopus 로고    scopus 로고
    • Fgf signaling instructs position-dependent growth rate during zebrafish fin regeneration
    • Lee Y, Grill S, Sanchez A, Murphy-Ryan M, Poss KD. 2005. Fgf signaling instructs position-dependent growth rate during zebrafish fin regeneration. Development 132:5173-5183. doi: 10.1242/dev.02101.
    • (2005) Development , vol.132 , pp. 5173-5183
    • Lee, Y.1    Grill, S.2    Sanchez, A.3    Murphy-Ryan, M.4    Poss, K.D.5
  • 50
    • 84859736940 scopus 로고    scopus 로고
    • The Amotl2 gene inhibits Wnt/β-catenin signaling and regulates embryonic development in zebrafish
    • Li Z, Wang Y, Zhang M, Xu P, Huang H, Wu D, Meng A. 2012. The Amotl2 gene inhibits Wnt/β-catenin signaling and regulates embryonic development in zebrafish. The Journal of Biological Chemistry 287:13005-13015. doi: 10.1074/jbc.M112.347419.
    • (2012) The Journal of Biological Chemistry , vol.287 , pp. 13005-13015
    • Li, Z.1    Wang, Y.2    Zhang, M.3    Xu, P.4    Huang, H.5    Wu, D.6    Meng, A.7
  • 51
    • 84896799526 scopus 로고    scopus 로고
    • Zebrafish yap1 plays a role in differentiation of hair cells in posterior lateral line
    • Loh S-L, Teh C, Muller J, Guccione E, Hong W, Korzh V. 2014. Zebrafish yap1 plays a role in differentiation of hair cells in posterior lateral line. Scientific Reports 4:4289. doi: 10.1038/srep04289.
    • (2014) Scientific Reports , vol.4 , pp. 4289
    • Loh, S.-L.1    Teh, C.2    Muller, J.3    Guccione, E.4    Hong, W.5    Korzh, V.6
  • 52
    • 84883817468 scopus 로고    scopus 로고
    • AMOTL2 interaction with TAZ causes the inhibition of surfactant proteins expression in lung cells
    • Lucci V, Di Palma T, D’Ambrosio C, Scaloni A, Zannini M. 2013. AMOTL2 interaction with TAZ causes the inhibition of surfactant proteins expression in lung cells. Gene 529:300-306. doi: 10.1016/j.gene.2013.07.015.
    • (2013) Gene , vol.529 , pp. 300-306
    • Lucci, V.1    Di Palma, T.2    D’Ambrosio, C.3    Scaloni, A.4    Zannini, M.5
  • 54
    • 84877769886 scopus 로고    scopus 로고
    • Lef1 regulates Dusp6 to influence neuromast formation and spacing in the zebrafish posterior lateral line primordium
    • Matsuda M, Nogare DD, Somers K, Martin K, Wang C, Chitnis AB. 2013. Lef1 regulates Dusp6 to influence neuromast formation and spacing in the zebrafish posterior lateral line primordium. Development 140: 2387-2397. doi: 10.1242/dev.091348.
    • (2013) Development , vol.140 , pp. 2387-2397
    • Matsuda, M.1    Nogare, D.D.2    Somers, K.3    Martin, K.4    Wang, C.5    Chitnis, A.B.6
  • 55
    • 80051929885 scopus 로고    scopus 로고
    • Lef1 is required for progenitor cell identity in the zebrafish lateral line primordium
    • McGraw HF, Drerup CM, Culbertson MD, Linbo T, Raible DW, Nechiporuk AV. 2011. Lef1 is required for progenitor cell identity in the zebrafish lateral line primordium. Development 138:3921-3930. doi: 10.1242/dev.062554.
    • (2011) Development , vol.138 , pp. 3921-3930
    • McGraw, H.F.1    Drerup, C.M.2    Culbertson, M.D.3    Linbo, T.4    Raible, D.W.5    Nechiporuk, A.V.6
  • 56
    • 0021917717 scopus 로고
    • Anatomy of the posterior lateral line system in young larvae of the zebrafish
    • Metcalfe WK, Kimmel CB, Schabtach E. 1985. Anatomy of the posterior lateral line system in young larvae of the zebrafish. Journal of Comparative Neurology 233:377-389. doi: 10.1002/cne.902330307.
    • (1985) Journal of Comparative Neurology , vol.233 , pp. 377-389
    • Metcalfe, W.K.1    Kimmel, C.B.2    Schabtach, E.3
  • 57
    • 84905083531 scopus 로고    scopus 로고
    • The Angiomotins-from discovery to function
    • Moleirinho S, Guerrant W, Kissil JL. 2014. The Angiomotins-from discovery to function. FEBS Letters 588: 2693-2703. doi: 10.1016/j.febslet.2014.02.006.
    • (2014) FEBS Letters , vol.588 , pp. 2693-2703
    • Moleirinho, S.1    Guerrant, W.2    Kissil, J.L.3
  • 59
    • 46449104333 scopus 로고    scopus 로고
    • FGF-dependent mechanosensory organ patterning in zebrafish
    • Nechiporuk AV, Raible DW. 2008. FGF-dependent mechanosensory organ patterning in zebrafish. Science 320: 1774-1777. doi: 10.1126/science.1156547.
    • (2008) Science , vol.320 , pp. 1774-1777
    • Nechiporuk, A.V.1    Raible, D.W.2
  • 60
    • 28844441671 scopus 로고    scopus 로고
    • HSPG synthesis by zebrafish Ext2 and Extl3 is required for Fgf10 signalling during limb development
    • Norton WHJ, Ledin J, Grandel H, Neumann CJ. 2005. HSPG synthesis by zebrafish Ext2 and Extl3 is required for Fgf10 signalling during limb development. Development 132:4963-4973. doi: 10.1242/dev.02084.
    • (2005) Development , vol.132 , pp. 4963-4973
    • Norton, W.1    Ledin, J.2    Grandel, H.3    Neumann, C.J.4
  • 61
    • 34247191134 scopus 로고    scopus 로고
    • Hippo signaling in organ size control
    • Pan D. 2007. Hippo signaling in organ size control. Genes & Development 21:886-897. doi: 10.1101/gad.1536007.
    • (2007) Genes & Development , vol.21 , pp. 886-897
    • Pan, D.1
  • 62
    • 77957883342 scopus 로고    scopus 로고
    • The hippo signaling pathway in development and cancer
    • Pan D. 2010. The hippo signaling pathway in development and cancer. Developmental Cell 19:491-505. doi: 10.1016/j.devcel.2010.09.011.
    • (2010) Developmental Cell , vol.19 , pp. 491-505
    • Pan, D.1
  • 64
    • 84916633921 scopus 로고    scopus 로고
    • The biology of YAP/TAZ: Hippo signaling and beyond
    • Piccolo S, Dupont S, Cordenonsi M. 2014. The biology of YAP/TAZ: hippo signaling and beyond. Physiological Reviews 94:1287-1312. doi: 10.1152/physrev.00005.2014.
    • (2014) Physiological Reviews , vol.94 , pp. 1287-1312
    • Piccolo, S.1    Dupont, S.2    Cordenonsi, M.3
  • 65
    • 84903938032 scopus 로고    scopus 로고
    • Cytoskeletal tension inhibits Hippo signaling through an Ajuba-Warts complex
    • Rauskolb C, Sun S, Sun G, Pan Y, Irvine KD. 2014. Cytoskeletal tension inhibits Hippo signaling through an Ajuba-Warts complex. Cell 158:143-156. doi: 10.1016/j.cell.2014.05.035.
    • (2014) Cell , vol.158 , pp. 143-156
    • Rauskolb, C.1    Sun, S.2    Sun, G.3    Pan, Y.4    Irvine, K.D.5
  • 68
    • 84866621806 scopus 로고    scopus 로고
    • Regulation of the Hippo pathway by cell architecture and mechanical signals
    • Schroeder MC, Halder G. 2012. Regulation of the Hippo pathway by cell architecture and mechanical signals. Seminars in Cell & Developmental Biology 23:803-811. doi: 10.1016/j.semcdb.2012.06.001.
    • (2012) Seminars in Cell & Developmental Biology , vol.23 , pp. 803-811
    • Schroeder, M.C.1    Halder, G.2
  • 72
    • 33947673517 scopus 로고    scopus 로고
    • Molecular characterization of angiomotin/JEAP family proteins: Interaction with MUPP1/Patj and their endogenous properties
    • Sugihara-Mizuno Y, Adachi M, Kobayashi Y, Hamazaki Y, Nishimura M, Imai T, Furuse M, Tsukita S. 2007. Molecular characterization of angiomotin/JEAP family proteins: interaction with MUPP1/Patj and their endogenous properties. Genes To Cells 12:473-486. doi: 10.1111/j.1365-2443.2007.01066.x.
    • (2007) Genes to Cells , vol.12 , pp. 473-486
    • Sugihara-Mizuno, Y.1    Adachi, M.2    Kobayashi, Y.3    Hamazaki, Y.4    Nishimura, M.5    Imai, T.6    Furuse, M.7    Tsukita, S.8
  • 73
    • 27744534898 scopus 로고    scopus 로고
    • Functions and regulations of fibroblast growth factor signaling during embryonic development
    • Thisse B, Thisse C. 2005. Functions and regulations of fibroblast growth factor signaling during embryonic development. Developmental Biology 287:390-402. doi: 10.1016/j.ydbio.2005.09.011.
    • (2005) Developmental Biology , vol.287 , pp. 390-402
    • Thisse, B.1    Thisse, C.2
  • 74
    • 0035911953 scopus 로고    scopus 로고
    • Angiomotin: An angiostatin binding protein that regulates endothelial cell migration and tube formation
    • Troyanovsky B, Levchenko T, Mansson G, Matvijenko O, Holmgren L. 2001. Angiomotin: an angiostatin binding protein that regulates endothelial cell migration and tube formation. Journal of Cell Biology 152:1247-1254. doi: 10.1083/jcb.152.6.1247.
    • (2001) Journal of Cell Biology , vol.152 , pp. 1247-1254
    • Troyanovsky, B.1    Levchenko, T.2    Mansson, G.3    Matvijenko, O.4    Holmgren, L.5
  • 75
    • 75149170979 scopus 로고    scopus 로고
    • Fibroblast growth factor signalling: From development to cancer
    • Turner N, Grose R. 2010. Fibroblast growth factor signalling: from development to cancer. Nature Rreviews Cancer 10:116-129. doi: 10.1038/nrc2780.
    • (2010) Nature Rreviews Cancer , vol.10 , pp. 116-129
    • Turner, N.1    Grose, R.2
  • 77
    • 34250207330 scopus 로고    scopus 로고
    • The chemokine SDF1a coordinates tissue migration through the spatially restricted activation of Cxcr7 and Cxcr4b
    • Valentin G, Haas P, Gilmour DT. 2007. The chemokine SDF1a coordinates tissue migration through the spatially restricted activation of Cxcr7 and Cxcr4b. Current Biology 17:1026-1031. doi: 10.1016/j.cub.2007.05.020.
    • (2007) Current Biology , vol.17 , pp. 1026-1031
    • Valentin, G.1    Haas, P.2    Gilmour, D.T.3
  • 80
    • 80051923057 scopus 로고    scopus 로고
    • Hippo pathway regulation by cell morphology and stress fibers
    • Wada K-I, Itoga K, Okano T, Yonemura S, Sasaki H. 2011. Hippo pathway regulation by cell morphology and stress fibers. Development 138:3907-3914. doi: 10.1242/dev.070987.
    • (2011) Development , vol.138 , pp. 3907-3914
    • Wada, K.-I.1    Itoga, K.2    Okano, T.3    Yonemura, S.4    Sasaki, H.5
  • 81
    • 84882697619 scopus 로고    scopus 로고
    • Wnt/Dkk negative feedback regulates sensory organ size in zebrafish
    • Wada H, Ghysen A, Asakawa K, Abe G, Ishitani T, Kawakami K. 2013. Wnt/Dkk negative feedback regulates sensory organ size in zebrafish. Current Biology 23:1559-1565. doi: 10.1016/j.cub.2013.06.035.
    • (2013) Current Biology , vol.23 , pp. 1559-1565
    • Wada, H.1    Ghysen, A.2    Asakawa, K.3    Abe, G.4    Ishitani, T.5    Kawakami, K.6
  • 82
    • 81755171479 scopus 로고    scopus 로고
    • Angiomotin-like2 is required for migration and proliferation of endothelial cells during angiogenesis
    • Wang Y, Li Z, Xu P, Huang L, Tong J, Huang H, Meng A. 2011. Angiomotin-like2 is required for migration and proliferation of endothelial cells during angiogenesis. The Journal of Biological Chemistry 286:41095-41104. doi: 10.1074/jbc.M111.296806.
    • (2011) The Journal of Biological Chemistry , vol.286 , pp. 41095-41104
    • Wang, Y.1    Li, Z.2    Xu, P.3    Huang, L.4    Tong, J.5    Huang, H.6    Meng, A.7
  • 83
    • 79953010044 scopus 로고    scopus 로고
    • Angiomotin-like proteins associate with and negatively regulate YAP1
    • Wang W, Huang J, Chen J. 2011. Angiomotin-like proteins associate with and negatively regulate YAP1. The Journal of Biological Chemistry 286:4364-4370. doi: 10.1074/jbc.C110.205401.
    • (2011) The Journal of Biological Chemistry , vol.286 , pp. 4364-4370
    • Wang, W.1    Huang, J.2    Chen, J.3
  • 86
    • 84874257648 scopus 로고    scopus 로고
    • The Hippo pathway: Regulators and regulations
    • Yu FX, Guan KL. 2013. The Hippo pathway: regulators and regulations. Genes & Development 27:355-371. doi: 10.1101/gad.210773.112.
    • (2013) Genes & Development , vol.27 , pp. 355-371
    • Yu, F.X.1    Guan, K.L.2
  • 88
    • 78650895035 scopus 로고    scopus 로고
    • Angiomotin is a novel Hippo pathway component that inhibits YAP oncoprotein
    • Zhao B, Li L, Lu Q, Wang LH, Liu CY, Lei Q, Guan KL. 2011. Angiomotin is a novel Hippo pathway component that inhibits YAP oncoprotein. Genes & Development 25:51-63. doi: 10.1101/gad.2000111.
    • (2011) Genes & Development , vol.25 , pp. 51-63
    • Zhao, B.1    Li, L.2    Lu, Q.3    Wang, L.H.4    Liu, C.Y.5    Lei, Q.6    Guan, K.L.7
  • 89
    • 79960997489 scopus 로고    scopus 로고
    • The Hippo pathway in organ size control, tissue regeneration and stem cell self-renewal
    • Zhao B, Tumaneng K, Guan KL. 2011. The Hippo pathway in organ size control, tissue regeneration and stem cell self-renewal. Nature Cell Biology 13:877-883. doi: 10.1038/ncb2303.
    • (2011) Nature Cell Biology , vol.13 , pp. 877-883
    • Zhao, B.1    Tumaneng, K.2    Guan, K.L.3


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