rolled/MAPK


REFERENCES (part 2/3)

Hahn, I., Fuss, B., Peters, A., Werner, T., Sieberg, A., Gosejacob, D. and Hoch, M. (2013). The Drosophila Arf GEF Steppke controls MAPK activation in EGFR signaling. J Cell Sci 126: 2470-2479. PubMed ID: 23549788

Halfar, K., et al. (2001). Ras controls growth, survival and differentiation in the Drosophila eye by different thresholds of MAP kinase activity. Development 128: 1687-1696. 11290305

Han, S. J., et al. (1998). Molecular cloning and characterization of a Drosophila p38 mitogen-activated protein kinase. J. Biol. Chem. 273(1): 369-374. PubMed Citation: 9417090

Hasson, P., Egoz, N., Winkler, C., Volohonsky, G., Jia, S., Dinur, T., Volk, T., Courey, A. J. and Paroush, Z. (2005). EGFR signaling attenuates Groucho-dependent repression to antagonize Notch transcriptional output. Nat. Genet. 37: 101-105. 15592470

He, B., Meng, Y. H. and Mivechi, N. F. (1998). Glycogen synthase kinase 3beta and extracellular signal-regulated kinase inactivate heat shock transcription factor 1 by facilitating the disappearance of transcriptionally active granules after heat shock. Mol. Cell. Biol. 18(11): 6624-33. PubMed Citation: 9774677

Hemesath, T. J., et al. (1998). MAP kinase links the transcription factor Microphthalmia to c-Kit signalling in melanocytes. Nature 391(6664): 298-301. PubMed Citation: 9440696

Herranz, H., Hong, X. and Cohen, S. M. (2012). Mutual repression by bantam miRNA and Capicua links the EGFR/MAPK and Hippo pathways in growth control. Curr. Biol. 22(8): 651-7. PubMed Citation: 22445297

Hill, J. M., et al. (2002). Recognition of ERK MAP kinase by PEA-15 reveals a common docking site within the death domain and death effector domain. EMBO J. 21: 6494-6504. 12456656

Hing, H., J. Xiao, N. Harden, L. Lim, and S. L. Zipursky. 1999. Pak functions downstream of Dock to regulate photoreceptor axon guidance in Drosophila. Cell 97: 853-863. PubMed Citation: 10399914

Hirao, Y. and Eppig, J. J. (1997). Analysis of the mechanism(s) of metaphase I arrest in strain LT mouse oocytes: participation of MOS. Development 124(24): 5107-5113. PubMed Citation: 9362468

Hong, S. H. and Privalsky, M. L. (2000) The SMRT corepressor is regulated by a MEK-1 kinase pathway: inhibition of corepressor function is associated with SMRT phosphorylation and nuclear export. Mol. Cell. Biol. 20: 6612-6625. 10938135

Horiuchi, M., et al. (1997). Angiotensin type 2 receptor dephosphorylates Bcl-2 by activating mitogen-activated protein kinase phosphatase-1 and induces apoptosis. J. Biol. Chem. 272(30): 19022-19026. PubMed Citation: 9228085

Howard, E. L., et al. (1999). The mitogen-activated protein kinase signaling pathway stimulates mos mRNA cytoplasmic polyadenylation during Xenopus oocyte maturation. Mol. Cell. Biol. 19(3): 1990-9. PubMed Citation: 10022886

Howe, A. K. and Juliano, R. L. (2000). Regulation of anchorage-dependent signal transduction by Protein kinase A and p21-activated kinase. Nat. Cell Biol. 2: 593-600. 10980699

Hu, J. Y., Glickman, L., Wu, F. and Schacher, S. (2004). Serotonin regulates the secretion and autocrine action of a neuropeptide to activate MAPK required for long-term facilitation in Aplysia. Neuron 43: 373-385. 15294145

Hudson, C., et al. (2003). A conserved role for the MEK signalling pathway in neural tissue specification and posteriorisation in the invertebrate chordate, the ascidian Ciona intestinalis. Development 130: 147-159. 12441299

Hudson, C., Lotito, S. and Yasuo, H. (2007). Sequential and combinatorial inputs from Nodal, Delta2/Notch and FGF/MEK/ERK signalling pathways establish a grid-like organisation of distinct cell identities in the ascidian neural plate. Development 134(19): 3527-37. Medline abstract: 17728350

Hughes, P. E., et al. (1997). Suppression of integrin activation: a novel function of a Ras/Raf-initiated MAP kinase activity. Cell 88: 521-530

Ihara, S, et al. (1997). Dual control of neurite outgrowth by STAT3 and MAP kinase in PC12 cells stimulated with interleukin-6. EMBO J. 16(17): 5345-5352

Impey, S., et al. (1998). Cross talk between ERK and PKA is required for Ca2+ stimulation of CREB-dependent transcription and ERK nuclear translocation. Neuron 21(4): 869-83

Inoue, Y. H. and Glover, D. M. (1998). Involvement of the rolled/MAP kinase gene in Drosophila mitosis: interaction between genes for the MAP kinase cascade and abnormal spindle. Mol. Gen. Genet. 258(4): 334-341

Isono, F., et al. (1994). Epidermal growth factor induces PC12 cell differentiation in the presence of the protein kinase inhibitor K-252a. J. Neurochem. 63: 1235-45

Ishitani, T., (1999). The TAK1-NLK-MAPK-related pathway antagonizes signalling between beta-catenin and transcription factor TCF. Nature 399: 798-802. Medline abstract: 10391247

Ishitani, T., Kishida, S., Hyodo-Miura, J., Ueno, N., Yasuda, J., Waterman, M., Shibuya, H., Moon, R. T., Ninomiya-Tsuji, J. and Matsumoto, K. (2003a). The TAK1-NLK mitogen-activated protein kinase cascade functions in the Wnt-5a/Ca(2+) pathway to antagonize Wnt/beta-catenin signaling. Mol. Cell. Biol. 23: 131-139. Medline abstract: 12482967

Ishitani, T., Ninomiya-Tsuji, J. and Matsumoto, K. (2003b). Regulation of lymphoid enhancer factor 1/T-cell factor by mitogen-activated protein kinase-related Nemo-like kinase-dependent phosphorylation in Wnt/beta-catenin signaling. Mol. Cell. Biol. 23: 1379-1389. Medline abstract: 12556497

Ivanovskam, I., et al. (2004). The Drosophila MOS ortholog is not essential for meiosis. Curr. Biol. 14: 75-80. 14711418

Jacobs, D., et al. (1998). Gain-of-function mutations in the Caenorhabditis elegans lin-1 ETS gene identify a C-terminal regulatory domain phosphorylated by ERK MAP kinase. Genetics 149(4): 1809-1822

Jacobs, D., et al. (1999). Multiple docking sites on substrate proteins form a modular system that mediates recognition by ERK MAP kinase. Genes Dev. 13(2): 163-175

Jaeger, I., et al. (2011). Temporally controlled modulation of FGF/ERK signaling directs midbrain dopaminergic neural progenitor fate in mouse and human pluripotent stem cells. Development 138(20): 4363-74. PubMed Citation: 21880784

James, B. P., Bunch, T. A., Krishnamoorthy, S., Perkins, L. A. and Brower, D. L. (2007). Nuclear localization of the ERK MAP kinase mediated by Drosophila alphaPS2betaPS integrin and importin-7. Mol. Biol. Cell 18(10): 4190-9. PubMed Citation: 17699602

Janody, F., et al. (2000). Phosphorylation of Bicoid on MAP-kinase sites: contribution to its interaction with the torso pathway. Development 127: 279-289.

Jazwinska, A., Ribeiro, C. and Affolter, M. (2003). Epithelial tube morphogenesis during Drosophila tracheal development requires Piopio, a luminal ZP protein. Nat. Cell Biol. 5: 895-901. 12973360

Ji, T., Zhang, L., Deng, M., Huang, S., Wang, Y., Pham, T. T., Smith, A. A., Sridhar, V., Cabernard, C., Wang, J. and Yan, Y. (2019). Dynamic MAPK signaling activity underlies a transition from growth arrest to proliferation in Drosophila scribble mutant tumors. Dis Model Mech. 12(8). PubMed ID: 31371383

Johnson, H. E., Goyal, Y., Pannucci, N. L., Schupbach, T., Shvartsman, S. Y. and Toettcher, J. E. (2017). The Spatiotemporal Limits of Developmental Erk Signaling. Dev Cell 40(2): 185-192. PubMed ID: 28118601

Johnson, H. E. and Toettcher, J. E. (2019). Signaling dynamics control cell fate in the early Drosophila embryo. Dev Cell 48(3): 361-370. PubMed ID: 30753836

Jones, P. L., et al. (1999). Induction of vascular smooth muscle cell tenascin-C gene expression by denatured type I collagen is dependent upon a beta3 integrin-mediated mitogen-activated protein kinase pathway and a 122-base pair promoter element. J. Cell Sci. 112 (Pt 4): 435-45

Joneson T., et al. (1998). Kinase suppressor of Ras inhibits the activation of extracellular ligand-regulated (ERK) mitogen-activated protein (MAP) kinase by growth factors, activated Ras, and Ras effectors. J. Biol. Chem. 273(13): 7743-7748

Kagesawa, T., et al. (2008). Distinct activation patterns of EGF receptor signaling in the homoplastic evolution of eggshell morphology in genus Drosophila. Mech. Dev. 125(11-12): 1020-32. PubMed Citation: 18762251

Karim, F. and Rubin, G. (1998). Ectopic expression of activated Ras1 induces hyperplastic growth and increased cell death in Drosophila imaginal tissues. Development 125(1): 1-9

Karim, F. D. and Rubin, G. M. (1999). PTP-ER, a novel tyrosine phosphatase, functions downstream of Ras1 to downregulate MAP kinase during Drosophila eye development. Mol. Cell 3(6): 741-50

Kashimata, M., et al. (2000). The ERK-1/2 signaling pathway is involved in the stimulation of branching morphogenesis of fetal mouse submandibular glands by EGF. Developmental Biology 220: 183-196

Kashiwada, M., et al. (1996). Activation of mitogen-activated protein kinases via CD40 is distinct from that stimulated by surface IgM on B cells. Eur. J. Immunol. 26: 1451-1458

Kato, Y., et al. (1998). Bmk1/Erk5 is required for cell proliferation induced by epidermal growth factor. 395(6703): 713-6

Katsu, Y., et al. (1999). Ca2+ is required for phosphorylation of clam p82/CPEB in vitro: implications for dual and independent roles of MAP and Cdc2 kinases. Dev. Biol. 209(1): 186-199

Kawada, M., et al. (1997). Induction of p27Kip1 degradation and anchorage independence by Ras through the MAP kinase signaling pathway. Oncogene 15(6): 629-637

Kelleher, R. J., et al. (2004). Translational control by MAPK signaling in long-term synaptic plasticity and memory. Cell 116: 467-479. 15016380

Kim, B., et al. (1997). Insulin-like growth factor-I-mediated neurite outgrowth in vitro requires mitogen-activated protein kinase activation. J. Biol. Chem. 272(34): 21268-21273

Kim, M., et al. (2006). Inhibition of ERK-MAP kinase signaling by RSK during Drosophila development. EMBO J. 25: 3056-3067. 16763554

Kim, M. and McGinnis, W. (2011). Phosphorylation of Grainy head by ERK is essential for wound-dependent regeneration but not for development of an epidermal barrier. Proc. Natl. Acad. Sci. 108(2): 650-5. PubMed Citation: 21187384

Kim, S. H., Kwon, H. B., Kim, Y. S., Ryu, J. H., Kim, K. S., Ahn, Y., Lee, W. J. and Choi, K. Y. (2002). Isolation and characterization of a Drosophila homologue of mitogen-activated protein kinase phosphatase-3 which has a high substrate specificity towards extracellular-signal-regulated kinase. Biochem. J. 361: 143-151. 11742539

Kim, S. Y., Kim, J. Y., Malik, S., Son, W., Kwon, K-S., et al. (2012). Negative Regulation of EGFR/MAPK Pathway by Pumilio in Drosophila melanogaster. PLoS ONE 7(4): e34016. PubMed ID: 22514614

Kobayashi, H., Narita, Y., Nishida, M. and Kurose, H. (2005). Beta-arrestin2 enhances ß2-adrenergic receptor-mediated nuclear translocation of ERK. Cell Signal. 17(10): 1248-53. 16038799

Koh, Y.-H., Ruiz-Canada, C., Gorczyca, M. and Budnik, V. (2002). The Ras1-Mitogen-activated protein kinase signal transduction pathway regulates synaptic plasticity through Fasciclin II-mediated cell adhesion. J. Neurosci. 22(7): 2496-2504. 11923414

Kretzschmar, M., Doody, J. and Massague, J. (1997). Opposing BMP and EGF signalling pathways converge on the TGF-beta family mediator Smad1. Nature 389(6651): 618-622

Kretzschmar, M., et al. (1999). A mechanism of repression of TGFbeta/Smad signaling by oncogenic Ras. Genes Dev. 13(7): 804-816

Kritikou, E. A., et al. (2003). A dual, non-redundant, role for LIF as a regulator of development and STAT3-mediated cell death in mammary gland. Development 130: 3459-3468. 12810593

Kumar, J. P., et al. (1998). Dissecting the roles of the Drosophila EGF receptor in eye development and MAP kinase activation. Development 125(19): 3875-3885

Kumar, J. P., Hsiung, F., Powers, M. A. and Moses, K. (2003). Nuclear translocation of activated MAP kinase is developmentally regulated in the developing Drosophila eye. Development 130: 3703-3714. 12835387

LaBonne, C., Burke, B., and Whitman, M. (1995). Role of MAP kinase in mesoderm induction and axial patterning during Xenopus development. Development 121: 1475-1486

LaBonne, C. and Whitman, M. (1997). Localization of MAP kinase activity in early Xenopus embryos: implications for endogenous FGF signaling. Dev. Biol. 183 (1): 9-20

Lackner, M. R. and Kim, S. K. (1998). Genetic Analysis of the Caenorhabditis elegans MAP Kinase Gene mpk-1. Genetics 150(1): 103-117

Ladha, M. H., et al., (1998). Regulation of exit from quiescence by p27 and cyclin D1-CDK4. Mol. Cell. Biol. 18(11): 6605-15

Langholz O., et al. (1997). Cell-matrix interactions induce tyrosine phosphorylation of MAP kinases ERK1 and ERK2 and PLCgamma-1 in two-dimensional and three-dimensional cultures of human fibroblasts. Exp. Cell Res. 235(1): 22-27

Lax, I., et al. (2002). The docking protein FRS2alpha controls a MAP kinase-mediated negative feedback mechanism for signaling by FGF receptors Mol. Cell 10: 709-719. 12419216

Lee, F. S., et al. (1998). MEKK1 activates both IkappaB kinase alpha and IkappaB kinase beta. Proc. Natl. Acad. Sci. 95(16): 9319-9324

Lee, H. H., Norris, A., Weiss, J. B. and Frasch, M. (2003), Jelly belly protein activates the receptor tyrosine kinase Alk to specify visceral muscle pioneers. Nature. 425(6957): 507-12. 14523446

Lee, K. S., et al. (2008). Drosophila short neuropeptide F signalling regulates growth by ERK-mediated insulin signalling. Nat. Cell Biol. 10(4): 468-75. PubMed Citation: 18344986

Lenormand, J. L., et al. (1999). Speedy: a novel cell cycle regulator of the G2/M transition. EMBO J. 18(7): 1869-1877

Leppa, S., et al. (1998). Differential regulation of c-Jun by ERK and JNK during PC12 cell differentiation. EMBO J. 17: 4404-4413

Li, B.-S., et al. (2001). Activation of Phosphatidylinositol-3 kinase (PI-3K) and Extracellular regulated kinases (Erk1/2) is involved in muscarinic receptor-mediated DNA synthesis in neural progenitor cells. J. Neurosci. 21(5): 1569-1579. 11222647

Li, C., Scott, D. A., Hatch, E., Tian, X. and Mansour, S. L. (2007). Dusp6 (Mkp3) is a negative feedback regulator of FGF-stimulated ERK signaling during mouse development. Development 134(1): 167-76. Medline abstract: 17164422

Li, D., et al. (1997). Oncogenic raf-1 induces the expression of non-histone chromosomal architectural protein HMGI-C via a p44/p42 mitogen-activated protein kinase-dependent pathway in salivary epithelial cells. J. Biol. Chem. 272(40): 25062-25070

Li, W., et al. (1996). Blocked signal transduction to the ERK and JNK protein kinases in anergic CD4+ T cells. Science 271: 1272-1276

Li, Y. Y., et al. (1996). CD40 ligation results in protein kinase C-independent activation of ERK and JNK in resting murine splenic B cells. J. Immunol. 157: 1440-1447

Liao, D.-F., et al. (1997). Protein kinase C-zeta mediates angiotensin II activation of ERK1/2 in vascular smooth muscle cells. J. Biol. Chem. 272: 6146-50

Liaw, G. J., et al. (1995). The torso response element binds GAGA and NTF-1/Elf-1, and regulates tailless by relief of repression. Genes Dev. 9: 3163-3176

Lim, B., Dsilva, C.J., Levario, T.J., Lu, H., Schüpbach, T., Kevrekidis, I.G. and Shvartsman, S.Y. (2015). Dynamics of inductive ERK signaling in the Drosophila embryo. Curr Biol 25(13):1784-90. PubMed ID: 26096970

Lim, Y.-M., et al. (1999). Genetic analysis of rolled, which encodes a Drosophila mitogen-activated protein kinase. Genetics 153: 763-771

Liu, Z. C., Geisbrecht, E. R. (2011). Moleskin is essential for the formation of the myotendinous junction in Drosophila. Dev. Biol. 359(2): 176-89. PubMed Citation: 21925492

Lo, M.-C., et al. (2004). Phosphorylation by the ß-Catenin/MAPK complex promotes 14-3-3-mediated nuclear export of TCF/POP-1 in signal-responsive cells in C. elegans. Cell 117: 95-106. 15066285

Lopez, A. L., 3rd, Chen, J., Joo, H. J., Drake, M., Shidate, M., Kseib, C. and Arur, S. (2013). DAF-2 and ERK Couple Nutrient Availability to Meiotic Progression during Caenorhabditis elegans Oogenesis. Dev Cell 27: 227-240. PubMed ID: 24120884

Lorén, C. E., Scully, A., Grabbe, C., Edeen, P. T., Thomas, J., McKeown, M., Hunter, T. and Palmer, R. H. (2001). Identification and characterization of DAlk: a novel Drosophila melanogaster RTK which drives ERK activation in vivo. Genes Cells 6: 531-544. 11442633

Lorenzen, J. A., et al. (2001). Nuclear import of activated D-ERK by DIM-7, an importin family member encoded by the gene moleskin. Development 128(8): 1403-14. 11262240

Lovicu, F. J. McAvoy, J. W. (2001). FGF-induced lens cell proliferation and differentiation is dependent on MAPK (ERK1/2) signaling. Development 128: 5075-5084. 11748143

Lu, B. Y., et al. (2000). Heterochromatin protein 1 is required for the normal expression of two heterochromatin genes in Drosophila. Genetics 155: 699-708

Lu, X., et al. (1994). Genetic and molecular analyses of mutations involved in Drosophila raf signal transduction. EMBO J. 13: 2592-9

Lu, Z., et al. (2002). The PHD Domain of MEKK1 acts as an E3 ubiquitin ligase and mediates ubiquitination and degradation of ERK1/2. Molec. Cell: 945-956. 12049732

Madhani, H. D. and Fink, G. R. (1997a). Combinatorial control required for the specificity of yeast MAPK signaling. Science 275: 1314-1317

Madhani, H. D., Styles, C. A. and Fink, G. R. (1997b). MAP kinases with distinct inhibitory functions impart signaling specificity during yeast differentiation. Cell 91(5): 673-684

Maher, P. (2001). How protein kinase C activation protects nerve cells from oxidative stress-induced cell death. J. Neurosci. 21(9): 2929-2938. 11312276

Marenda, D. R., et al. (2006). MAP kinase subcellular localization controls both pattern and proliferation in the developing Drosophila wing. Development 133(1): 43-51. 16308331

Marinissen, M. J., et al. (1999). A network of mitogen-activated protein kinases links G protein-coupled receptors to the c-jun promoter: a role for c-Jun NH2-terminal kinase, p38s, and extracellular signal-regulated kinase 5. Mol. Cell Biol. 19(6): 4289-301

Marrero, M. B., et al. (1997). Role of janus Kinase/Signal transducer and activator of transcription and mitogen-activated protein kinase cascades in angiotensin II- and platelet-derived growth factor-induced vascular smooth muscle cell proliferation. J. Biol. Chem. 272(39): 24684-24690

Martin, K. C., et al. (1997). MAP kinase translocates into the nucleus of the presynaptic cell and is required for long-term facilitation in Aplysia. Neuron 18(6): 899-912

Matsubayashi, Y., et al. (2004). ERK activation propagates in epithelial cell sheets and regulates their migration during wound healing. Curr. Biol. 14: 731-735. 15084290

Matsumoto, K., et al. (2004). The prepattern transcription factor Irx2, a target of the FGF8/MAP kinase cascade, is involved in cerebellum formation. Nat. Neurosci. 7(6): 605-12. 15133517

Matter, N., Herrlich, P. and König, H. (2002). Signal-dependent regulation of splicing via phosphorylation of Sam68. Nature 420: 691-695. 12478298

Mazzucchelli, C., et al. (2002). Knockout of ERK1 MAP kinase enhances synaptic plasticity in the striatum and facilitates striatal-mediated learning and memory. Neuron 34: 807-820. 12062026

Meijne, A. M., et al. (1997). v-src-induced cell shape changes in rat fibroblasts require new gene transcription and precede loss of focal adhesions. Exp. Cell Res. 234(2): 477-485

Ménard, C., et al. (2002). An essential role for a MEK-C/EBP pathway during growth factor-regulated cortical neurogenesis. Neuron 36: 597-610. 12441050

Michael, D., Martin, K. C., Seger, R., Ning, M. M., Baston, R. and Kandel, E. R. (1998). Repeated pulses of serotonin required for long-term facilitation activate mitogen-activated protein kinase in sensory neurons of Aplysia. Proc. Natl. Acad. Sci. 95: 1864-1869. 9465108

Michailovici, I., Harrington, H. A., Azogui, H. H., Yahalom-Ronen, Y., Plotnikov, A., Ching, S., Stumpf, M. P., Klein, O. D., Seger, R. and Tzahor, E. (2014). Nuclear to cytoplasmic shuttling of ERK promotes differentiation of muscle stem/progenitor cells. Development 141: 2611-2620. PubMed ID: 24924195

Michelson, A. M., et al. (1998). Heartbroken is a specific downstream mediator of FGF receptor signalling in Drosophila. Development 125(22): 4379-4389

Miranti, C. K., Ohno, S. and Brugge, J. S. (1999). Protein kinase C regulates integrin-induced activation of the extracellular regulated kinase pathway upstream of Shc. J. Biol. Chem. 274(15): 10571-81

Misiura, M. and Kolomeisky, A. B. (2019). Kinetic network model to explain gain-of-function mutations in ERK2 enzyme. J Chem Phys 150(15): 155101. PubMed ID: 31005085

Mivechi, N, F. and Giaccia, A. J. (1995). Mitogen-activated protein kinase acts as a negative regulator of the heat shock response in NIH3T3 cells. Cancer Res. 55: 5512-5519

Molnar, C. and de Celis, J. F. (2013). Tay bridge is a negative regulator of EGFR signalling and interacts with Erk and Mkp3 in the Drosophila melanogaster wing. PLoS Genet 9: e1003982. PubMed ID: 24348264

Montgomery, R. B., et al. (1995). Differential modulation of mitogen-activated protein (MAP) kinase/extracellular signal-related kinase kinase and MAP kinase activities by a mutant epidermal growth factor receptor. J Biol Chem 270: 30562-30566

Moressis, A. et al. (2009). A dual role for the adaptor protein DRK in Drosophila olfactory learning and memory. J. Neurosci. 29: 2611-2625. PubMed Citation: 19244537

Moriguchi, T., et al. (1999). Distinct domains of mouse dishevelled are responsible for the c-Jun N-terminal kinase/stress-activated protein kinase activation and the axis formation in vertebrates. J. Biol. Chem. 274(43): 30957-62

Morozov, A., et al. (2003). Rap1 couples cAMP signaling to a distinct pool of p42/44MAPK regulating excitability, synaptic plasticity, learning, and memory. Neuron 39: 309-325. 12873387

Mouchel-Vielh, E., Rougeot, J., Decoville, M. and Peronnet, F. (2011). The MAP kinase ERK and its scaffold protein MP1 interact with the chromatin regulator Corto during Drosophila wing tissue development. BMC Dev. Biol. 11: 17. PubMed Citation: 21401930

Mouchel-Vielh, E., Bloyer, S., Salvaing, J., Randsholt, N. B. and Peronnet, F. (2008). Involvement of the MP1 scaffold protein in ERK signaling regulation during Drosophila wing development. Genes Cells. 13(11): 1099-111. PubMed Citation: 18823331

Mourey, R. J., et al. (1996). A novel cytoplasmic dual specificity protein tyrosine phosphatase implicated in muscle and neuronal differentiation. J. Biol. Chem. 271: 3795-3802

Muller, J., et al. (2001). C-TAK1 regulates Ras signaling by phosphorylating the MAPK scaffold, KSR1. Molec. Cell 8: 983-993. 11741534

Murphy, T. H., et al. (1994). Differential regulation of calcium/calmodulin-dependent protein kinase II and p42 MAP kinase activity by synaptic transmission. J. Neurosci. 14: 1320-31

Continued see rolled References part 3/3 | back to part 1/3


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