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The JNK Pathway and Neuronal Migration

Yiming Sun Tao Yang Zhiheng Xu

Yiming Sun, Tao Yang, Zhiheng Xu. The JNK Pathway and Neuronal Migration[J]. Journal of Genetics and Genomics, 2007, 34(11): 957-965. doi: 10.1016/S1673-8527(07)60108-8
Citation: Yiming Sun, Tao Yang, Zhiheng Xu. The JNK Pathway and Neuronal Migration[J]. Journal of Genetics and Genomics, 2007, 34(11): 957-965. doi: 10.1016/S1673-8527(07)60108-8

doi: 10.1016/S1673-8527(07)60108-8

The JNK Pathway and Neuronal Migration

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  • [1] Davis, RJ Signal transduction by the JNK group of MAP kinases Cell, 103 (2000),pp. 239-252
    [2] Weston, CR, Davis, et al. The JNK signal transduction pathway Curr Opin Genet Dev, 12 (2002),pp. 14-21
    [3] Xu, Z, Greene, et al. Activation of the apoptotic JNK pathway through the Rac1-binding scaffold protein POSH Methods Enzymol, 406 (2006),pp. 479-489
    [4] Minden, A, Karin, et al. Regulation and function of the JNK subgroup of MAP kinases Biochim Biophys Acta, 1333 (1997),pp. F85-F104
    [5] Xu, Z, Maroney, et al. The MLK family mediates c-Jun N-terminal kinase activation in neuronal apoptosis Mol Cell Biol, 21 (2001),pp. 4713-4724
    [6] Barr, RK, Bogoyevitch, et al. The c-Jun N-terminal protein kinase family of mitogen-activated protein kinases (JNK MAPKs) Int J Biochem Cell Biol, 33 (2001),pp. 1047-1063
    [7] Johnson, GL, Lapadat, et al. Mitogen-activated protein kinase pathways mediated by ERK, JNK, and p38 protein kinases Science, 298 (2002),pp. 1911-1912
    [8] Kyriakis, JM, Banerjee, et al. The stress-activated protein kinase subfamily of c-Jun kinase Nature, 369 (1994),pp. 156-160
    [9] Ichijo, H From receptors to stress-activated MAP kinase Oncogene, 18 (1999),pp. 6087-6093
    [10] Xu, Z, Kukekov, et al. POSH acts as a scaffold for a multiprotein complex that mediates JNK activation in apoptosis EMBO J, 22 (2003),pp. 252-261
    [11] Zhang, QG, Wang, et al. Knock-down of POSH expression is neuroprotective through down-regulating activation of the MLK3-MKK4-JNK pathway following cerebral ischaemia in the rat hippocampal CA1 subfield J Neurochem, 95 (2005),pp. 784-795
    [12] Xu, Z, Kukekov, et al. Regulation of apoptotic c-Jun N-terminal kinase signaling by a stabilization-based feed-forward loop Mol Cell Biol, 25 (2005),pp. 9949-9959
    [13] Kukekov, NV, Xu, et al. Direct interaction of the molecular scaffolds POSH and JIP is required for apoptotic activation of JNKs J Biol Chem, 281 (2006),pp. 15517-15524
    [14] Gupta, S, Barrett, et al. Selective interaction of JNK protein kinase isoforms with transcription factors EMBO J, 15 (1996),pp. 2760-2770
    [15] Bogoyevitch, MA The isoform-specific functions of the c-Jun N-terminal Kinases (JNKs): differences revealed by gene targeting BioEssays, 28 (2006),pp. 923-934
    [16] Kuan, CY, Yang, et al. The Jnk1 and Jnk2 protein kinases are required for regional specific apoptosis during early brain development Neuron, 22 (1999),pp. 667-676
    [17] Tournier, C, Hess, et al. Requirement of JNK for stress-induced activation of the cytochrome c-mediated death pathway Science, 288 (2000),pp. 870-874
    [18] Gupta, S, Campbell, et al. Transcription factor ATF2 regulation by the JNK signal transduction pathway Science, 267 (1995),pp. 389-393
    [19] Bogoyevitch, MA, Kobe, et al. Uses for JNK: the many and varied substrates of the c-Jun N-terminal kinases Microbiol Mol Biol Rev, 70 (2006),pp. 1061-1095
    [20] Gupta, A, Tsai, et al. Life is a journey: a genetic look at neocortical development Nat Rev Genet, 3 (2002),pp. 342-355
    [21] Hatten, ME Central nervous system neuronal migration Annu Rev Neurosci, 22 (1999),pp. 511-539
    [22] Kriegstein, AR, Noctor, et al. Patterns of neuronal migration in the embryonic cortex Trends Neurosci, 27 (2004),pp. 392-399
    [23] Marin, O, Rubenstein, et al. A long, remarkable journey: tangential migration in the telencephalon Nat Rev Neurosci, 2 (2001),pp. 780-790
    [24] Marin, O, Rubenstein, et al. Cell migration in the forebrain Annu Rev Neurosci, 26 (2003),pp. 441-483
    [25] Nadarajah, B, Brunstrom, et al. Two modes of radial migration in early development of the cerebral cortex Nat Neurosci, 4 (2001),pp. 143-150
    [26] Schaar, BT, McConnell, et al. Cytoskeletal coordination during neuronal migration Proc Natl Acad Sci USA, 102 (2005),pp. 13652-13657
    [27] Saito, T, Nakatsuji, et al. Dev Biol, 240 (2001),pp. 237-246
    [28] Saito, T, Nakatsuji, et al. Multipolar migration: the third mode of radial neuronal migration in the developing cerebral cortex J Neurosci, 23 (2003),pp. 9996-10001
    [29] LoTurco, JJ, Bai, et al. The multipolar stage and disruptions in neuronal migration Trends Neurosci, 29 (2006),pp. 407-413
    [30] Lian, G, Sheen, et al. Cerebral developmental disorders Curr Opin Pediatr, 18 (2006),pp. 614-620
    [31] Guerrini, R, Marini, et al. Genetic malformations of cortical development Exp Brain Res, 173 (2006),pp. 322-333
    [32] Ayala, R, Shu, et al. Trekking across the brain: the journey of neuronal migration Cell, 12 (2007),pp. 29-43
    [33] Rivas, RJ, Hatten, et al. Motility and cytoskeletal organization of migrating cerebellar granule neurons J Neurosci, 15 (1995),pp. 981-989
    [34] Nagano, T, Morikubo, et al. Filamin A and FILIP (Filamin A-Interacting Protein) regulate cell polarity and motility in neocortical subventricular and intermediate zones during radial migration J Neurosci, 24 (2001),pp. 9648-9657
    [35] Fox, JW, Lamperti, et al. Mutations in filamin 1 prevent migration of cerebral cortical neurons in human periventricular heterotopia Neuron, 21 (1999),pp. 1315-1325
    [36] Ma, X, Kawamoto, et al. A point mutation in the motor domain of nonmuscle myosin II-B impairs migration of distinct groups of neurons Mol Biol Cell, 15 (2004),pp. 2568-2579
    [37] Krause, M, Dent, et al. Ena/VASP proteins: regulators of the actin cytoskeleton and cell migration Annu Rev Cell Dev Biol, 19 (2003),pp. 541-564
    [38] Nagano, T, Yoneda, et al. Filamin A-interacting protein (FILIP) regulates cortical cell migration out of the ventricular zone Nat Cell Biol, 4 (2002),pp. 495-501
    [39] Kawauchi, T, Chihama, et al. Cdk5 phosphorylates and stabilizes p27kip1 contributing to actin organization and cortical neuronal migration Nat Cell Biol, 8 (2006),pp. 17-26
    [40] Huang, C, Jacobson, et al. MAP kinases and cell migration J Cell Sci, 117 (2004),pp. 4619-4628
    [41] Kawauchi, T, Chihama, et al. MAP1B phosphorylation is differentially regulated by Cdk5/p35, Cdk5/p25, and JNK Biochem Biophys Res Commun, 331 (2005),pp. 50-55
    [42] Reiner, O, Coquelle, et al. Missense mutations resulting in type 1 lissencephaly Cell Mol Life Sci, 62 (2005),pp. 425-434
    [43] Tsai, JW, Chen, et al. LIS1 RNA interference blocks neural stem cell division, morphogenesis, and motility at multiple stages J Cell Biol, 170 (2005),pp. 935-945
    [44] Mesngon, MT, Tarricone, et al. Regulation of cytoplasmic dynein ATPase by Lis1 J Neurosci, 26 (2006),pp. 2132-2139
    [45] Shu, T, Ayala, et al. Ndel1 operates in a common pathway with LIS1 and cytoplasmic dynein to regulate cortical neuronal positioning Neuron, 44 (2004),pp. 263-277
    [46] Li, J, Lee, et al. NudEL targets dynein to microtubule ends through LIS1 Nat Cell Biol, 7 (2005),pp. 686-690
    [47] Bai, J, Ramos, et al. RNAi reveals doublecortin is required for radial migration in rat neocortex Nat Neurosci, 6 (2003),pp. 1277-1283
    [48] Koizumi, H, Tanaka, et al. Doublecortin-like kinase functions with doublecortin to mediate fiber tract decussation and neuronal migration Neuron, 49 (2006),pp. 55-66
    [49] Shu, T, Tseng, et al. Doublecortin-like kinase controls neurogenesis by regulating mitotic spindles and M phase progression Neuron, 49 (2006),pp. 25-39
    [50] Deuel, TA, Liu, et al. Genetic interactions between doublecortin and doublecortin-like kinase in neuronal migration and axon outgrowth Neuron, 49 (2006),pp. 41-53
    [51] Gdalyahu, A, Ghosh, et al. DCX, a new mediator of the JNK pathway EMBO J, 23 (2004),pp. 823-832
    [52] Tessier-Lavigne, M, Goodman, et al. The molecular biology of axon guidance Science, 274 (1996),pp. 1123-1133
    [53] Kruger, RP, Aurandt, et al. Semaphorins command cells to move Nat Rev Mol Cell Biol, 6 (2005),pp. 789-800
    [54] Hirai, S, Kawaguchi, et al. MAPK-upstream protein kinase (MUK) regulates the radial migration of immature neurons in telencephalon of mouse embryo Development, 129 (2002),pp. 4483-4495
    [55] Konno, D, Yoshimura, et al. Involvement of the phosphatidylinositol 3-kinase/rac1 and cdc42 pathways in radial migration of cortical neurons J Biol Chem, 280 (2005),pp. 5082-5088
    [56] Kuo, G, Arnaud, et al. Absence of Fyn and Src causes a reeler-like phenotype J Neurosci, 25 (2005),pp. 8578-8586
    [57] Xie, Z, Samuels, et al. Cyclin-dependent kinase 5 permits efficient cytoskeletal remodeling–a hypothesis on neuronal migration Cereb Cortex, 16 (2006),pp. 64-68
    [58] Xie, Z, Sanada, et al. Serine 732 phosphorylation of FAK by Cdk5 is important for microtubule organization, nuclear movement, and neuronal migration Cell, 114 (2003),pp. 469-482
    [59] Takahashi, S, Saito, et al. Tau phosphorylation by cyclin-dependent kinase 5/p39 during brain development reduces its affinity for microtubules J Biol Chem, 278 (2003),pp. 10506-10515
    [60] Segarra, J, Balenci, et al. Combined signaling through ERK, PI3K/AKT, and RAC1/p38 is required for met-triggered cortical neuron migration J Biol Chem, 281 (2006),pp. 4771-4778
    [61] Chen, L, Liao, et al. Rac1 controls the formation of midline commissures and the competency of tangential migration in ventral telencephalic neurons J Neurosci, 27 (2007),pp. 3884-3893
    [62] Kawauchi, T, Chihama, et al. EMBO J, 22 (2003),pp. 4190-4201
    [63] Suenaga, J, Cuide, et al. Developmental changes in the expression pattern of the JNK activator kinase MUK/DLK/ZPK and active JNK in the mouse cerebellum Cell Tissue Res, 325 (2006),pp. 189-195
    [64] Hirai, S, Cuide, et al. The c-Jun N-terminal kinase activator dual leucine zipper kinase regulates axon growth and neuronal migration in the developing cerebral cortex J Neurosci, 26 (2006),pp. 11992-12002
    [65] Sarkisian, MR, Bartley, et al. MEKK4 signaling regulates filamin expression and neuronal migration Neuron, 52 (2006),pp. 789-801
    [66] Chang, LF, Jones, et al. JNK1 is required for maintenance of neuronal microtubules and controls phosphorylation of microtubule-associated proteins Dev Cell, 4 (2003),pp. 521-533
    [67] Huang, C, Rajfur, et al. JNK phosphorylates paxillin and regulates cell migration Nature, 424 (2003),pp. 219-223
    [68] Tararuk, T, Ostman, et al. JNK1 phosphorylation of SCG10 determines microtubule dynamics and axodendritic length J Cell Biol, 173 (2005),pp. 265-277
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出版历程
  • 收稿日期:  2007-09-21
  • 录用日期:  2007-09-27
  • 网络出版日期:  2007-11-22
  • 刊出日期:  2007-11-20

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