-
1
-
-
25144470229
-
The origin and development of glial cells in peripheral nerves
-
Jessen KR, Mirsky R. The origin and development of glial cells in peripheral nerves. Nat Rev Neurosci. 2005;6:671-82.
-
(2005)
Nat. Rev. Neurosci.
, vol.6
, pp. 671-682
-
-
Jessen, K.R.1
Mirsky, R.2
-
2
-
-
84979608150
-
Schwann cells and their transcriptional network: Evolution of key regulators of peripheral myelination
-
Stolt CC, Wegner M. Schwann cells and their transcriptional network: Evolution of key regulators of peripheral myelination. Brain Res. 2016;1641:101-10.
-
(2016)
Brain Res.
, vol.1641
, pp. 101-110
-
-
Stolt, C.C.1
Wegner, M.2
-
3
-
-
0031973873
-
Sox10, a novel transcriptional modulator in glial cells
-
Kuhlbrodt K, Herbarth B, Sock E, Hermans-Borgmeyer I, Wegner M. Sox10, a novel transcriptional modulator in glial cells. J Neurosci. 1998;18:237-50.
-
(1998)
J. Neurosci.
, vol.18
, pp. 237-250
-
-
Kuhlbrodt, K.1
Herbarth, B.2
Sock, E.3
Hermans-Borgmeyer, I.4
Wegner, M.5
-
4
-
-
0035182190
-
The transcription factor Sox10 is a key regulator of peripheral glial development
-
Britsch S, Goerich DE, Riethmacher D, Peirano RI, Rossner M, Nave KA, et al. The transcription factor Sox10 is a key regulator of peripheral glial development. Genes Dev. 2001;15:66-78.
-
(2001)
Genes Dev.
, vol.15
, pp. 66-78
-
-
Britsch, S.1
Goerich, D.E.2
Riethmacher, D.3
Peirano, R.I.4
Rossner, M.5
Nave, K.A.6
-
5
-
-
77952392377
-
Sox10 is required for Schwann cell identity and progression beyond the immature Schwann cell stage
-
Finzsch M, Schreiner S, Kichko T, Reeh P, Tamm ER, Bösl MR, et al. Sox10 is required for Schwann cell identity and progression beyond the immature Schwann cell stage. J Cell Biol. 2010;189:701-12.
-
(2010)
J. Cell Biol.
, vol.189
, pp. 701-712
-
-
Finzsch, M.1
Schreiner, S.2
Kichko, T.3
Reeh, P.4
Tamm, E.R.5
Bösl, M.R.6
-
6
-
-
79955855085
-
Sox10 is required for Schwann-cell homeostasis and myelin maintenance in the adult peripheral nerve
-
Bremer M, Fröb F, Kichko T, Reeh P, Tamm ER, Suter U, et al. Sox10 is required for Schwann-cell homeostasis and myelin maintenance in the adult peripheral nerve. Glia. 2011;59:1022-32.
-
(2011)
Glia.
, vol.59
, pp. 1022-1032
-
-
Bremer, M.1
Fröb, F.2
Kichko, T.3
Reeh, P.4
Tamm, E.R.5
Suter, U.6
-
7
-
-
0032833425
-
Myelin deficiencies in both the central and the peripheral nervous systems associated with a SOX10 mutation
-
Inoue K, Tanabe Y, Lupski JR. Myelin deficiencies in both the central and the peripheral nervous systems associated with a SOX10 mutation. Ann Neurol. 1999;46:313-8.
-
(1999)
Ann. Neurol.
, vol.46
, pp. 313-318
-
-
Inoue, K.1
Tanabe, Y.2
Lupski, J.R.3
-
8
-
-
12144285746
-
Molecular mechanism for distinct neurological phenotypes conveyed by allelic truncating mutations
-
Inoue K, Khajavi M, Ohyama T, Hirabayashi S-I, Wilson J, Reggin JD, et al. Molecular mechanism for distinct neurological phenotypes conveyed by allelic truncating mutations. Nat Genet. 2004;36:361.
-
(2004)
Nat. Genet.
, vol.36
, pp. 361
-
-
Inoue, K.1
Khajavi, M.2
Ohyama, T.3
Hirabayashi, S.-I.4
Wilson, J.5
Reggin, J.D.6
-
9
-
-
0035891831
-
Human Connexin 32, a gap junction protein altered in the X-linked form of Charcot-Marie-Tooth disease, is directly regulated by the transcription factor SOX10
-
Bondurand N, Girard M, Pingault V, Lemort N, Dubourg O, Goossens M. Human Connexin 32, a gap junction protein altered in the X-linked form of Charcot-Marie-Tooth disease, is directly regulated by the transcription factor SOX10. Hum Mol Genet. 2001;10:2783-95.
-
(2001)
Hum. Mol. Genet.
, vol.10
, pp. 2783-2795
-
-
Bondurand, N.1
Girard, M.2
Pingault, V.3
Lemort, N.4
Dubourg, O.5
Goossens, M.6
-
10
-
-
79952762905
-
Regulation of the PMP22 gene through an intronic enhancer
-
Jones EA, Lopez-Anido C, Srinivasan R, Krueger C, Chang L-W, Nagarajan R, et al. Regulation of the PMP22 gene through an intronic enhancer. J Neurosci. 2011;31:4242-50.
-
(2011)
J. Neurosci.
, vol.31
, pp. 4242-4250
-
-
Jones, E.A.1
Lopez-Anido, C.2
Srinivasan, R.3
Krueger, C.4
Chang, L.-W.5
Nagarajan, R.6
-
11
-
-
46749149254
-
Interactions of Sox10 and Egr2 in myelin gene regulation
-
Jones EA, Jang S-W, Mager GM, Chang L-W, Srinivasan R, Gokey NG, et al. Interactions of Sox10 and Egr2 in myelin gene regulation. Neuron Glia Biol. 2007;3:377-87.
-
(2007)
Neuron Glia Biol.
, vol.3
, pp. 377-387
-
-
Jones, E.A.1
Jang, S.-W.2
Mager, G.M.3
Chang, L.-W.4
Srinivasan, R.5
Gokey, N.G.6
-
12
-
-
33646849478
-
Direct regulation of myelin protein zero expression by the Egr2 transactivator
-
LeBlanc SE, Jang S-W, Ward RM, Wrabetz L, Svaren J. Direct regulation of myelin protein zero expression by the Egr2 transactivator. J Biol Chem. 2006;281:5453-60.
-
(2006)
J. Biol. Chem.
, vol.281
, pp. 5453-5460
-
-
LeBlanc, S.E.1
Jang, S.-W.2
Ward, R.M.3
Wrabetz, L.4
Svaren, J.5
-
13
-
-
0034004661
-
Protein zero gene expression is regulated by the glial transcription factor Sox10
-
Peirano RI, Goerich DE, Riethmacher D, Wegner M. Protein zero gene expression is regulated by the glial transcription factor Sox10. Mol Cell Biol. 2000;20:3198-209.
-
(2000)
Mol. Cell. Biol.
, vol.20
, pp. 3198-3209
-
-
Peirano, R.I.1
Goerich, D.E.2
Riethmacher, D.3
Wegner, M.4
-
14
-
-
84864910444
-
Genome-wide analysis of EGR2/SOX10 binding in myelinating peripheral nerve
-
Srinivasan R, Sun G, Keles S, Jones EA, Jang S-W, Krueger C, et al. Genome-wide analysis of EGR2/SOX10 binding in myelinating peripheral nerve. Nucleic Acids Res. 2012;40:6449-60.
-
(2012)
Nucleic Acids Res.
, vol.40
, pp. 6449-6460
-
-
Srinivasan, R.1
Sun, G.2
Keles, S.3
Jones, E.A.4
Jang, S.-W.5
Krueger, C.6
-
15
-
-
84941172476
-
Differential Sox10 genomic occupancy in myelinating glia
-
Lopez-Anido C, Sun G, Koenning M, Srinivasan R, Hung HA, Emery B, et al. Differential Sox10 genomic occupancy in myelinating glia. Glia. 2015;63:1897-914.
-
(2015)
Glia
, vol.63
, pp. 1897-1914
-
-
Lopez-Anido, C.1
Sun, G.2
Koenning, M.3
Srinivasan, R.4
Hung, H.A.5
Emery, B.6
-
16
-
-
0034663531
-
The glial transcription factor Sox10 binds to DNA both as monomer and dimer with different functional consequences
-
Peirano RI, Wegner M. The glial transcription factor Sox10 binds to DNA both as monomer and dimer with different functional consequences. Nucleic Acids Res. 2000;28:3047-55.
-
(2000)
Nucleic Acids Res.
, vol.28
, pp. 3047-3055
-
-
Peirano, R.I.1
Wegner, M.2
-
17
-
-
84996605002
-
Inter-Species Comparative Sequence Analysis: Applications in Human Disease Research and Genomic Medicine
-
In: Willard HF, Ginsburg GS, editors. Salt Lake City: Academic
-
Antonellis A, Green ED. Inter-Species Comparative Sequence Analysis: Applications in Human Disease Research and Genomic Medicine. In: Willard HF, Ginsburg GS, editors. Genomic and Personalized Medicine. Salt Lake City: Academic; 2008. p. 120-30.
-
(2008)
Genomic and Personalized Medicine.
, pp. 120-130
-
-
Antonellis, A.1
Green, E.D.2
-
18
-
-
52949123269
-
Identification of neural crest and glial enhancers at the mouse Sox10 locus through transgenesis in zebrafish
-
Antonellis A, Huynh JL, Lee-Lin S-Q, Vinton RM, Renaud G, Loftus SK, et al. Identification of neural crest and glial enhancers at the mouse Sox10 locus through transgenesis in zebrafish. PLoS Genet. 2008;4:e1000174.
-
(2008)
PLoS Genet.
, vol.4
-
-
Antonellis, A.1
Huynh, J.L.2
Lee-Lin, S.-Q.3
Vinton, R.M.4
Renaud, G.5
Loftus, S.K.6
-
19
-
-
83755229011
-
SOX10 regulates expression of the SH3-domain kinase binding protein 1 (Sh3kbp1) locus in Schwann cells via an alternative promoter
-
Hodonsky CJ, Kleinbrink EL, Charney KN, Prasad M, Bessling SL, Jones EA, et al. SOX10 regulates expression of the SH3-domain kinase binding protein 1 (Sh3kbp1) locus in Schwann cells via an alternative promoter. Mol Cell Neurosci. 2012;49:85-96.
-
(2012)
Mol. Cell. Neurosci.
, vol.49
, pp. 85-96
-
-
Hodonsky, C.J.1
Kleinbrink, E.L.2
Charney, K.N.3
Prasad, M.4
Bessling, S.L.5
Jones, E.A.6
-
20
-
-
84856805620
-
Developmental regulation of microRNA expression in Schwann cells
-
Gokey NG, Srinivasan R, Lopez-Anido C, Krueger C, Svaren J. Developmental regulation of microRNA expression in Schwann cells. Mol Cell Biol. 2012;32:558-68.
-
(2012)
Mol. Cell. Biol.
, vol.32
, pp. 558-568
-
-
Gokey, N.G.1
Srinivasan, R.2
Lopez-Anido, C.3
Krueger, C.4
Svaren, J.5
-
21
-
-
0026090057
-
Expression of the myelin-associated glycoprotein in cultures of immortalized Schwann cells
-
Goda S, Hammer J, Kobiler D, Quarles RH. Expression of the myelin-associated glycoprotein in cultures of immortalized Schwann cells. J Neurochem. 1991;56:1354-61.
-
(1991)
J. Neurochem.
, vol.56
, pp. 1354-1361
-
-
Goda, S.1
Hammer, J.2
Kobiler, D.3
Quarles, R.H.4
-
22
-
-
0028062881
-
Biochemical and cellular properties of three immortalized Schwann cell lines expressing different levels of the myelin-associated glycoprotein
-
Toda K, Small JA, Goda S, Quarles RH. Biochemical and cellular properties of three immortalized Schwann cell lines expressing different levels of the myelin-associated glycoprotein. J Neurochem. 1994;63:1646-57.
-
(1994)
J. Neurochem.
, vol.63
, pp. 1646-1657
-
-
Toda, K.1
Small, J.A.2
Goda, S.3
Quarles, R.H.4
-
23
-
-
0025909235
-
Embryonic mouse spinal cord motor neuron hybrid cells
-
Salazar-Grueso EF, Kim S, Kim H. Embryonic mouse spinal cord motor neuron hybrid cells. Neuroreport. 1991;2:505-8.
-
(1991)
Neuroreport.
, vol.2
, pp. 505-508
-
-
Salazar-Grueso, E.F.1
Kim, S.2
Kim, H.3
-
24
-
-
76549123335
-
SoxE function in vertebrate nervous system development
-
Stolt CC, Wegner M. SoxE function in vertebrate nervous system development. Int J Biochem Cell Biol. 2010;42:437-40.
-
(2010)
Int. J. Biochem. Cell Biol.
, vol.42
, pp. 437-440
-
-
Stolt, C.C.1
Wegner, M.2
-
25
-
-
85014346728
-
SOX10 Regulates an Alternative Promoter at the Charcot-Marie-Tooth Disease Locus MTMR2
-
Fogarty EA, Brewer MH, Rodriguez-Molina JF, Law WD, Ma KH, Steinberg NM, et al. SOX10 Regulates an Alternative Promoter at the Charcot-Marie-Tooth Disease Locus MTMR2. Hum Mol Genet. 2016;00:1-12.
-
(2016)
Hum Mol Genet
, pp. 1-12
-
-
Fogarty, E.A.1
Brewer, M.H.2
Rodriguez-Molina, J.F.3
Law, W.D.4
Ma, K.H.5
Steinberg, N.M.6
-
26
-
-
84887281981
-
Playing the field: Sox10 recruits different partners to drive central and peripheral myelination
-
Emery B. Playing the field: Sox10 recruits different partners to drive central and peripheral myelination. PLoS Genet. 2013;9:e1003918.
-
(2013)
PLoS Genet.
, vol.9
-
-
Emery, B.1
-
28
-
-
33646142709
-
Control of myelination in Schwann cells: a Krox20 cis-regulatory element integrates Oct6, Brn2 and Sox10 activities
-
Ghislain J, Charnay P. Control of myelination in Schwann cells: a Krox20 cis-regulatory element integrates Oct6, Brn2 and Sox10 activities. EMBO Rep. 2006;7:52-8.
-
(2006)
EMBO Rep.
, vol.7
, pp. 52-58
-
-
Ghislain, J.1
Charnay, P.2
-
29
-
-
84922107496
-
Haplotype-Specific Modulation of a SOX10/CREB Response Element at the Charcot-Marie-Tooth Disease Type 4C Locus SH3TC2
-
Brewer MH, Ma KH, Beecham GW, Gopinath C, the Inherited Neuropathy Consortium (INC), Baas F, et al. Haplotype-Specific Modulation of a SOX10/CREB Response Element at the Charcot-Marie-Tooth Disease Type 4C Locus SH3TC2. Hum Mol Genet. 2014;23:5171-87.
-
(2014)
Hum Mol Genet
, vol.23
, pp. 5171-5187
-
-
Brewer, M.H.1
Ma, K.H.2
Beecham, G.W.3
Gopinath, C.4
Baas, F.5
-
31
-
-
84858239978
-
Distal enhancers upstream of the Charcot-Marie-Tooth type 1A disease gene PMP22
-
Jones EA, Brewer MH, Srinivasan R, Krueger C, Sun G, Charney KN, et al. Distal enhancers upstream of the Charcot-Marie-Tooth type 1A disease gene PMP22. Hum Mol Genet. 2012;21:1581-91.
-
(2012)
Hum. Mol. Genet.
, vol.21
, pp. 1581-1591
-
-
Jones, E.A.1
Brewer, M.H.2
Srinivasan, R.3
Krueger, C.4
Sun, G.5
Charney, K.N.6
-
32
-
-
52949104819
-
Identification of direct regulatory targets of the transcription factor Sox10 based on function and conservation
-
Lee KE, Nam S, Cho E-A, Seong I, Limb J-K, Lee S, et al. Identification of direct regulatory targets of the transcription factor Sox10 based on function and conservation. BMC Genomics. 2008;9:408.
-
(2008)
BMC Genomics.
, vol.9
, pp. 408
-
-
Lee, K.E.1
Nam, S.2
Cho, E.-A.3
Seong, I.4
Limb, J.-K.5
Lee, S.6
-
33
-
-
84907516453
-
High-throughput functional testing of ENCODE segmentation predictions
-
Kwasnieski JC, Fiore C, Chaudhari HG, Cohen BA. High-throughput functional testing of ENCODE segmentation predictions. Genome Res. 2014;24:1595-602.
-
(2014)
Genome Res.
, vol.24
, pp. 1595-1602
-
-
Kwasnieski, J.C.1
Fiore, C.2
Chaudhari, H.G.3
Cohen, B.A.4
-
34
-
-
33748944201
-
Sorting out Sox10 functions in neural crest development
-
Kelsh RN. Sorting out Sox10 functions in neural crest development. Bioessays. 2006;28:788-98.
-
(2006)
Bioessays.
, vol.28
, pp. 788-798
-
-
Kelsh, R.N.1
-
35
-
-
0037102994
-
Comparative analysis of Schwann cell lines as model systems for myelin gene transcription studies
-
Hai M, Muja N, DeVries GH, Quarles RH, Patel PI. Comparative analysis of Schwann cell lines as model systems for myelin gene transcription studies. J Neurosci Res. 2002;69:497-508.
-
(2002)
J. Neurosci. Res.
, vol.69
, pp. 497-508
-
-
Hai, M.1
Muja, N.2
DeVries, G.H.3
Quarles, R.H.4
Patel, P.I.5
-
36
-
-
10644289340
-
Sox10 acts as a tissue-specific transcription factor enhancing activation of the myelin basic protein gene promoter by p27Kip1 and Sp1
-
Wei Q, Miskimins WK, Miskimins R. Sox10 acts as a tissue-specific transcription factor enhancing activation of the myelin basic protein gene promoter by p27Kip1 and Sp1. J Neurosci Res. 2004;78:796-802.
-
(2004)
J Neurosci Res
, vol.78
, pp. 796-802
-
-
Wei, Q.1
Miskimins, W.K.2
Miskimins, R.3
-
37
-
-
37549005215
-
Olig1 and Sox10 interact synergistically to drive myelin basic protein transcription in oligodendrocytes
-
Li H, Lu Y, Smith HK, Richardson WD. Olig1 and Sox10 interact synergistically to drive myelin basic protein transcription in oligodendrocytes. J Neurosci. 2007;27:14375-82.
-
(2007)
J. Neurosci.
, vol.27
, pp. 14375-14382
-
-
Li, H.1
Lu, Y.2
Smith, H.K.3
Richardson, W.D.4
-
38
-
-
33750447322
-
SoxD proteins influence multiple stages of oligodendrocyte development and modulate SoxE protein function
-
Stolt CC, Schlierf A, Lommes P, Hillgärtner S, Werner T, Kosian T, et al. SoxD proteins influence multiple stages of oligodendrocyte development and modulate SoxE protein function. Dev Cell. 2006;11:697-709.
-
(2006)
Dev. Cell.
, vol.11
, pp. 697-709
-
-
Stolt, C.C.1
Schlierf, A.2
Lommes, P.3
Hillgärtner, S.4
Werner, T.5
Kosian, T.6
-
39
-
-
76549090110
-
The SoxD transcription factors--Sox5, Sox6, and Sox13--are key cell fate modulators
-
Lefebvre V. The SoxD transcription factors--Sox5, Sox6, and Sox13--are key cell fate modulators. Int J Biochem Cell Biol. 2010;42:429-32.
-
(2010)
Int. J. Biochem. Cell Biol.
, vol.42
, pp. 429-432
-
-
Lefebvre, V.1
-
40
-
-
77649166937
-
MicroRNA-mediated control of oligodendrocyte differentiation
-
Zhao X, He X, Han X, Yu Y, Ye F, Chen Y, et al. MicroRNA-mediated control of oligodendrocyte differentiation. Neuron. 2010;65:612-26.
-
(2010)
Neuron.
, vol.65
, pp. 612-626
-
-
Zhao, X.1
He, X.2
Han, X.3
Yu, Y.4
Ye, F.5
Chen, Y.6
-
41
-
-
84954139195
-
Sox13 functionally complements the related Sox5 and Sox6 as important developmental modulators in mouse spinal cord oligodendrocytes
-
Baroti T, Schillinger A, Wegner M. Sox13 functionally complements the related Sox5 and Sox6 as important developmental modulators in mouse spinal cord oligodendrocytes. J Neurochem. 2015;136:316-28.
-
(2015)
J Neurochem
, vol.136
, pp. 316-328
-
-
Baroti, T.1
Schillinger, A.2
Wegner, M.3
-
42
-
-
67649826154
-
Notch controls embryonic Schwann cell differentiation, postnatal myelination and adult plasticity
-
Woodhoo A, Alonso MBD, Droggiti A, Turmaine M, D'Antonio M, Parkinson DB, et al. Notch controls embryonic Schwann cell differentiation, postnatal myelination and adult plasticity. Nat Neurosci. 2009;12:839-47.
-
(2009)
Nat. Neurosci.
, vol.12
, pp. 839-847
-
-
Woodhoo, A.1
Alonso, M.B.D.2
Droggiti, A.3
Turmaine, M.4
D'Antonio, M.5
Parkinson, D.B.6
-
43
-
-
0029085935
-
Signalling downstream of activated mammalian Notch
-
Jarriault S, Brou C, Logeat F, Schroeter EH, Kopan R, Israel A. Signalling downstream of activated mammalian Notch. Nature. 1995;377:355-8.
-
(1995)
Nature.
, vol.377
, pp. 355-358
-
-
Jarriault, S.1
Brou, C.2
Logeat, F.3
Schroeter, E.H.4
Kopan, R.5
Israel, A.6
-
44
-
-
0027083415
-
Two mammalian helix-loop-helix factors structurally related to Drosophila hairy and Enhancer of split
-
Sasai Y, Kageyama R, Tagawa Y, Shigemoto R, Nakanishi S. Two mammalian helix-loop-helix factors structurally related to Drosophila hairy and Enhancer of split. Genes Dev. 1992;6:2620-34.
-
(1992)
Genes Dev.
, vol.6
, pp. 2620-2634
-
-
Sasai, Y.1
Kageyama, R.2
Tagawa, Y.3
Shigemoto, R.4
Nakanishi, S.5
-
45
-
-
79851509663
-
Hes1 functions downstream of growth factors to maintain oligodendrocyte lineage cells in the early progenitor stage
-
Ogata T, Ueno T, Hoshikawa S, Ito J, Okazaki R, Hayakawa K, et al. Hes1 functions downstream of growth factors to maintain oligodendrocyte lineage cells in the early progenitor stage. Neuroscience. 2011;176:132-41.
-
(2011)
Neuroscience.
, vol.176
, pp. 132-141
-
-
Ogata, T.1
Ueno, T.2
Hoshikawa, S.3
Ito, J.4
Okazaki, R.5
Hayakawa, K.6
-
46
-
-
49249118217
-
Identification of genes that restrict astrocyte differentiation of midgestational neural precursor cells
-
Sanosaka T, Namihira M, Asano H, Kohyama J, Aisaki K, Igarashi K, et al. Identification of genes that restrict astrocyte differentiation of midgestational neural precursor cells. Neuroscience. 2008;155:780-8.
-
(2008)
Neuroscience.
, vol.155
, pp. 780-788
-
-
Sanosaka, T.1
Namihira, M.2
Asano, H.3
Kohyama, J.4
Aisaki, K.5
Igarashi, K.6
-
47
-
-
33748160681
-
Multiple roles of Id4 in developmental myelination: predicted outcomes and unexpected findings
-
Marin-Husstege M, He Y, Li J, Kondo T, Sablitzky F, Casaccia-Bonnefil P. Multiple roles of Id4 in developmental myelination: predicted outcomes and unexpected findings. Glia. 2006;54:285-96.
-
(2006)
Glia.
, vol.54
, pp. 285-296
-
-
Marin-Husstege, M.1
He, Y.2
Li, J.3
Kondo, T.4
Sablitzky, F.5
Casaccia-Bonnefil, P.6
-
48
-
-
0034595233
-
The Id4 HLH protein and the timing of oligodendrocyte differentiation
-
Kondo T, Raff M. The Id4 HLH protein and the timing of oligodendrocyte differentiation. EMBO J. 2000;19:1998-2007.
-
(2000)
EMBO J.
, vol.19
, pp. 1998-2007
-
-
Kondo, T.1
Raff, M.2
-
49
-
-
0035052390
-
A role for the helix-loop-helix protein Id2 in the control of oligodendrocyte development
-
Wang S, Sdrulla A, Johnson JE, Yokota Y, Barres BA. A role for the helix-loop-helix protein Id2 in the control of oligodendrocyte development. Neuron. 2001;29:603-14.
-
(2001)
Neuron.
, vol.29
, pp. 603-614
-
-
Wang, S.1
Sdrulla, A.2
Johnson, J.E.3
Yokota, Y.4
Barres, B.A.5
-
50
-
-
0030658082
-
Helix-loop-helix proteins in Schwann cells: a study of regulation and subcellular localization of Ids, REB, and E12/47 during embryonic and postnatal development
-
Stewart HJ, Zoidl G, Rossner M, Brennan A, Zoidl C, Nave KA, et al. Helix-loop-helix proteins in Schwann cells: a study of regulation and subcellular localization of Ids, REB, and E12/47 during embryonic and postnatal development. J Neurosci Res. 1997;50:684-701.
-
(1997)
J. Neurosci. Res.
, vol.50
, pp. 684-701
-
-
Stewart, H.J.1
Zoidl, G.2
Rossner, M.3
Brennan, A.4
Zoidl, C.5
Nave, K.A.6
-
51
-
-
49649099083
-
Active gene repression by the Egr2.NAB complex during peripheral nerve myelination
-
Mager GM, Ward RM, Srinivasan R, Jang S-W, Wrabetz L, Svaren J. Active gene repression by the Egr2.NAB complex during peripheral nerve myelination. J Biol Chem. 2008;283:18187-97.
-
(2008)
J. Biol. Chem
, vol.283
, pp. 18187-18197
-
-
Mager, G.M.1
Ward, R.M.2
Srinivasan, R.3
Jang, S.-W.4
Wrabetz, L.5
Svaren, J.6
-
52
-
-
84906901689
-
An RNA-sequencing transcriptome and splicing database of glia, neurons, and vascular cells of the cerebral cortex
-
Zhang Y, Chen K, Sloan SA, Bennett ML, Scholze AR, O'Keeffe S, et al. An RNA-sequencing transcriptome and splicing database of glia, neurons, and vascular cells of the cerebral cortex. J Neurosci. 2014;34:11929-47.
-
(2014)
J. Neurosci.
, vol.34
, pp. 11929-11947
-
-
Zhang, Y.1
Chen, K.2
Sloan, S.A.3
Bennett, M.L.4
Scholze, A.R.5
O'Keeffe, S.6
-
53
-
-
84856668802
-
The nucleosome remodeling and deacetylase chromatin remodeling (NuRD) complex is required for peripheral nerve myelination
-
Hung H, Kohnken R, Svaren J. The nucleosome remodeling and deacetylase chromatin remodeling (NuRD) complex is required for peripheral nerve myelination. J Neurosci. 2012;32:1517-27.
-
(2012)
J. Neurosci.
, vol.32
, pp. 1517-1527
-
-
Hung, H.1
Kohnken, R.2
Svaren, J.3
-
54
-
-
24944438343
-
Nab proteins are essential for peripheral nervous system myelination
-
Le N, Nagarajan R, Wang JYT, Svaren J, LaPash C, Araki T, et al. Nab proteins are essential for peripheral nervous system myelination. Nat Neurosci. 2005;8:932-40.
-
(2005)
Nat. Neurosci.
, vol.8
, pp. 932-940
-
-
Le, N.1
Nagarajan, R.2
Wang, J.Y.T.3
Svaren, J.4
LaPash, C.5
Araki, T.6
-
55
-
-
31144459828
-
Deletion of long-range sequences at Sox10 compromises developmental expression in a mouse model of Waardenburg-Shah (WS4) syndrome
-
Antonellis A, Bennett WR, Menheniott TR, Prasad AB, Lee-Lin S-Q, NISC Comparative Sequencing Program, et al. Deletion of long-range sequences at Sox10 compromises developmental expression in a mouse model of Waardenburg-Shah (WS4) syndrome. Hum Mol Genet. 2006;15:259-71.
-
(2006)
Hum. Mol. Genet.
, vol.15
, pp. 259-271
-
-
Antonellis, A.1
Bennett, W.R.2
Menheniott, T.R.3
Prasad, A.B.4
Lee-Lin, S.-Q.5
-
56
-
-
0347755531
-
The UCSC Table Browser data retrieval tool
-
Karolchik D, Hinrichs AS, Furey TS. The UCSC Table Browser data retrieval tool. Nucleic Acids Res. 2004;32(Database issue):D493-6.
-
(2004)
Nucleic Acids Res
, vol.32
, Issue.DATABASE ISSUE
, pp. D493-D496
-
-
Karolchik, D.1
Hinrichs, A.S.2
Furey, T.S.3
-
57
-
-
77952567987
-
Simple combinations of lineage-determining transcription factors prime cis-regulatory elements required for macrophage and B cell identities
-
Heinz S, Benner C, Spann N, Bertolino E, Lin YC, Laslo P, et al. Simple combinations of lineage-determining transcription factors prime cis-regulatory elements required for macrophage and B cell identities. Mol Cell. 2010;38:576-89.
-
(2010)
Mol. Cell.
, vol.38
, pp. 576-589
-
-
Heinz, S.1
Benner, C.2
Spann, N.3
Bertolino, E.4
Lin, Y.C.5
Laslo, P.6
-
59
-
-
77956276383
-
DNase-seq: a high-resolution technique for mapping active gene regulatory elements across the genome from mammalian cells
-
pdb.prot5384.
-
Song L, Crawford GE. DNase-seq: a high-resolution technique for mapping active gene regulatory elements across the genome from mammalian cells. Cold Spring Harb Protoc. 2010;2010:pdb.prot5384.
-
(2010)
Cold Spring Harb Protoc
, vol.2010
-
-
Song, L.1
Crawford, G.E.2
|