-
2
-
-
78650589408
-
Energy metabolism in adult neural stem cell fate
-
Rafalski VA, Brunet A. Energy metabolism in adult neural stem cell fate. Prog Neurobiol 2011; 93: 182-203.
-
(2011)
Prog Neurobiol
, vol.93
, pp. 182-203
-
-
Rafalski, V.A.1
Brunet, A.2
-
4
-
-
0035966319
-
MicroRNAs: Tiny regulators with great potential
-
Ambros V. microRNAs: tiny regulators with great potential. Cell 2001; 107: 823-826.
-
(2001)
Cell
, vol.107
, pp. 823-826
-
-
Ambros, V.1
-
5
-
-
39749110083
-
Small non-coding RNAs in animal development
-
Stefani G, Slack FJ. Small non-coding RNAs in animal development. Nat Rev Mol Cell Biol 2008; 9: 219-230.
-
(2008)
Nat Rev Mol Cell Biol
, vol.9
, pp. 219-230
-
-
Stefani, G.1
Slack, F.J.2
-
6
-
-
77957194193
-
Context-dependent functions of specific microRNAs in neuronal development
-
Gao FB. Context-dependent functions of specific microRNAs in neuronal development. Neural Dev 2010; 5: 25.
-
(2010)
Neural Dev
, vol.5
, pp. 25
-
-
Gao, F.B.1
-
7
-
-
77952581587
-
MicroRNAs in adult and embryonic neurogenesis
-
Liu C, Zhao X. MicroRNAs in adult and embryonic neurogenesis. Neuromolecular Med 2009; 11: 141-152.
-
(2009)
Neuromolecular Med
, vol.11
, pp. 141-152
-
-
Liu, C.1
Zhao, X.2
-
8
-
-
84862206162
-
MicroRNAs in neural stem cells and neurogenesis
-
Kawahara H, Imai T, Okano H. MicroRNAs in neural stem cells and neurogenesis. Front Neurosci 2012; 6: 30.
-
(2012)
Front Neurosci
, vol.6
, pp. 30
-
-
Kawahara, H.1
Imai, T.2
Okano, H.3
-
9
-
-
53749098061
-
Hmga2 promotes neural stem cell self-renewal in young but not old mice by reducing p16Ink4a and p19Arf Expression
-
Nishino J, Kim I, Chada K, Morrison SJ. Hmga2 promotes neural stem cell self-renewal in young but not old mice by reducing p16Ink4a and p19Arf Expression. Cell 2008; 135: 227-239.
-
(2008)
Cell
, vol.135
, pp. 227-239
-
-
Nishino, J.1
Kim, I.2
Chada, K.3
Morrison, S.J.4
-
10
-
-
63649138643
-
MIR-124 regulates adult neurogenesis in the subventricular zone stem cell niche
-
Cheng LC, Pastrana E, Tavazoie M, Doetsch F. miR-124 regulates adult neurogenesis in the subventricular zone stem cell niche. Nat Neurosci 2009; 12: 399-408.
-
(2009)
Nat Neurosci
, vol.12
, pp. 399-408
-
-
Cheng, L.C.1
Pastrana, E.2
Tavazoie, M.3
Doetsch, F.4
-
11
-
-
59749089928
-
MiRNAs are essential for survival and differentiation of newborn neurons but not for expansion of neural progenitors during early neurogenesis in the mouse embryonic neocortex
-
De Pietri, Tonelli D, Pulvers JN, Haffner C, Murchison EP, Hannon GJ, Huttner WB. miRNAs are essential for survival and differentiation of newborn neurons but not for expansion of neural progenitors during early neurogenesis in the mouse embryonic neocortex. Development 2008; 135: 3911-3921.
-
(2008)
Development
, vol.135
, pp. 3911-3921
-
-
De Pietri Tonelli, D.1
Pulvers, J.N.2
Haffner, C.3
Murchison, E.P.4
Hannon, G.J.5
Huttner, W.B.6
-
12
-
-
18444415448
-
Regulation of miRNA expression during neural cell specification
-
Smirnova L, Grafe A, Seiler A, Schumacher S, Nitsch R, Wulczyn FG et al. Regulation of miRNA expression during neural cell specification. Eur J Neurosci 2005; 21: 1469-1477.
-
(2005)
Eur J Neurosci
, vol.21
, pp. 1469-1477
-
-
Smirnova, L.1
Grafe, A.2
Seiler, A.3
Schumacher, S.4
Nitsch, R.5
Wulczyn, F.G.6
-
13
-
-
33745480963
-
Specific microRNAs modulate embryonic stem cell-derived neurogenesis
-
Krichevsky AM, Sonntag KC, Isacson O, Kosik KS. Specific microRNAs modulate embryonic stem cell-derived neurogenesis. Stem Cells 2006; 24: 857-864.
-
(2006)
Stem Cells
, vol.24
, pp. 857-864
-
-
Krichevsky, A.M.1
Sonntag, K.C.2
Isacson, O.3
Kosik, K.S.4
-
14
-
-
78650843340
-
MiRNAs regulate SIRT1 expression during mouse embryonic stem cell differentiation and in adult mouse tissues
-
Saunders LR, Sharma AD, Tawney J, Nakagawa M, Okita K, Yamanaka S et al. miRNAs regulate SIRT1 expression during mouse embryonic stem cell differentiation and in adult mouse tissues. Aging (Albany, NY) 2010; 2: 415-431.
-
(2010)
Aging (Albany, NY)
, vol.2
, pp. 415-431
-
-
Saunders, L.R.1
Sharma, A.D.2
Tawney, J.3
Nakagawa, M.4
Okita, K.5
Yamanaka, S.6
-
15
-
-
64049095014
-
A feedback regulatory loop involving microRNA-9 and nuclear receptor TLX in neural stem cell fate determination
-
Zhao C, Sun G, Li S, Shi Y. A feedback regulatory loop involving microRNA-9 and nuclear receptor TLX in neural stem cell fate determination. Nat Struct Mol Biol 2009; 16: 365-371.
-
(2009)
Nat Struct Mol Biol
, vol.16
, pp. 365-371
-
-
Zhao, C.1
Sun, G.2
Li, S.3
Shi, Y.4
-
16
-
-
77949903674
-
MicroRNA-9 coordinates proliferation and migration of human embryonic stem cell-derived neural progenitors
-
Delaloy C, Liu L, Lee JA, Su H, Shen F, Yang GY et al. MicroRNA-9 coordinates proliferation and migration of human embryonic stem cell-derived neural progenitors. Cell Stem Cell 2010; 6: 323-335.
-
(2010)
Cell Stem Cell
, vol.6
, pp. 323-335
-
-
Delaloy, C.1
Liu, L.2
Lee, J.A.3
Su, H.4
Shen, F.5
Yang, G.Y.6
-
17
-
-
66949150988
-
MIR-92b and MIR-9/9∗ are specifically expressed in brain primary tumors and can be used to differentiate primary from metastatic brain tumors
-
Nass D, Rosenwald S, Meiri E, Gilad S, Tabibian-Keissar H, Schlosberg A et al. MiR-92b and miR-9/9∗ are specifically expressed in brain primary tumors and can be used to differentiate primary from metastatic brain tumors. Brain Pathol 2009; 19: 375-383.
-
(2009)
Brain Pathol
, vol.19
, pp. 375-383
-
-
Nass, D.1
Rosenwald, S.2
Meiri, E.3
Gilad, S.4
Tabibian-Keissar, H.5
Schlosberg, A.6
-
18
-
-
80054937128
-
CAMTA1 is a novel tumour suppressor regulated by MIR-9/9∗ in glioblastoma stem cells
-
Schraivogel D, Weinmann L, Beier D, Tabatabai G, Eichner A, Zhu JY et al. CAMTA1 is a novel tumour suppressor regulated by miR-9/9∗ in glioblastoma stem cells. EMBO J 2011; 30: 4309-4322.
-
(2011)
EMBO J
, vol.30
, pp. 4309-4322
-
-
Schraivogel, D.1
Weinmann, L.2
Beier, D.3
Tabatabai, G.4
Eichner, A.5
Zhu, J.Y.6
-
19
-
-
79952267171
-
MicroRNA-9 regulates neurogenesis in mouse telencephalon by targeting multiple transcription factors
-
Shibata M, Nakao H, Kiyonari H, Abe T, Aizawa S. MicroRNA-9 regulates neurogenesis in mouse telencephalon by targeting multiple transcription factors. J Neurosci 2011; 31: 3407-3422.
-
(2011)
J Neurosci
, vol.31
, pp. 3407-3422
-
-
Shibata, M.1
Nakao, H.2
Kiyonari, H.3
Abe, T.4
Aizawa, S.5
-
20
-
-
84860901706
-
MIR-9 controls the timing of neurogenesis through the direct inhibition of antagonistic factors
-
Coolen M, Thieffry D, Drivenes O, Becker TS, Bally-Cuif L. miR-9 controls the timing of neurogenesis through the direct inhibition of antagonistic factors. Dev Cell 2012; 22: 1052-1064.
-
(2012)
Dev Cell
, vol.22
, pp. 1052-1064
-
-
Coolen, M.1
Thieffry, D.2
Drivenes, O.3
Becker, T.S.4
Bally-Cuif, L.5
-
21
-
-
84859466185
-
The C. Elegans microRNA MIR-71 acts in neurons to promote germline-mediated longevity through regulation of DAF-16/FOXO
-
Boulias K, Horvitz HR. The C. elegans microRNA mir-71 acts in neurons to promote germline-mediated longevity through regulation of DAF-16/FOXO. Cell Metab 2012; 15: 439-450.
-
(2012)
Cell Metab
, vol.15
, pp. 439-450
-
-
Boulias, K.1
Horvitz, H.R.2
-
22
-
-
79959569726
-
The microRNA cluster MIR-106b ∼ 25 regulates adult neural stem/progenitor cell proliferation and neuronal differentiation
-
Brett JO, Renault VM, Rafalski VA, Webb AE, Brunet A. The microRNA cluster miR-106b ∼ 25 regulates adult neural stem/progenitor cell proliferation and neuronal differentiation. Aging (Albany, NY) 2011; 3: 108-124.
-
(2011)
Aging (Albany, NY
, vol.3
, pp. 108-124
-
-
Brett, J.O.1
Renault, V.M.2
Rafalski, V.A.3
Webb, A.E.4
Brunet, A.5
-
23
-
-
77649275464
-
MIR-9, a MYC/MYCN-activated microRNA, regulates E-cadherin and cancer metastasis
-
Ma L, Young J, Prabhala H, Pan E, Mestdagh P, Muth D et al. miR-9, a MYC/MYCN-activated microRNA, regulates E-cadherin and cancer metastasis. Nat Cell Biol 2010; 12: 247-256.
-
(2010)
Nat Cell Biol
, vol.12
, pp. 247-256
-
-
Ma, L.1
Young, J.2
Prabhala, H.3
Pan, E.4
Mestdagh, P.5
Muth, D.6
-
24
-
-
84896732922
-
Neurogenesis in the striatum of the adult human brain
-
Ernst A, Alkass K, Bernard S, Salehpour M, Perl S, Tisdale J et al. Neurogenesis in the striatum of the adult human brain. Cell 2014; 156: 1072-1083.
-
(2014)
Cell
, vol.156
, pp. 1072-1083
-
-
Ernst, A.1
Alkass, K.2
Bernard, S.3
Salehpour, M.4
Perl, S.5
Tisdale, J.6
-
25
-
-
80051684096
-
MicroRNA-mediated conversion of human fibroblasts to neurons
-
Yoo AS, Sun AX, Li L, Shcheglovitov A, Portmann T, Li Y et al. MicroRNA-mediated conversion of human fibroblasts to neurons. Nature 2011; 476: 228-231.
-
(2011)
Nature
, vol.476
, pp. 228-231
-
-
Yoo, A.S.1
Sun, A.X.2
Li, L.3
Shcheglovitov, A.4
Portmann, T.5
Li, Y.6
-
26
-
-
33748310866
-
Detection of mammalian microRNA expression by in situ hybridization with RNA oligonucleotides
-
Deo M, Yu JY, Chung KH, Tippens M, Turner DL. Detection of mammalian microRNA expression by in situ hybridization with RNA oligonucleotides. Dev Dyn 2006; 235: 2538-2548.
-
(2006)
Dev Dyn
, vol.235
, pp. 2538-2548
-
-
Deo, M.1
Yu, J.Y.2
Chung, K.H.3
Tippens, M.4
Turner, D.L.5
-
27
-
-
70350497348
-
FoxOs cooperatively regulate diverse pathways governing neural stem cell homeostasis
-
Paik JH, Ding Z, Narurkar R, Ramkissoon S, Muller F, Kamoun WS et al. FoxOs cooperatively regulate diverse pathways governing neural stem cell homeostasis. Cell Stem Cell 2009; 5: 540-553.
-
(2009)
Cell Stem Cell
, vol.5
, pp. 540-553
-
-
Paik, J.H.1
Ding, Z.2
Narurkar, R.3
Ramkissoon, S.4
Muller, F.5
Kamoun, W.S.6
-
28
-
-
84861976352
-
FoxO1 target Gpr17 activates AgRP neurons to regulate food intake
-
Ren H, Orozco IJ, Su Y, Suyama S, Gutierrez-Juarez R, Horvath TL et al. FoxO1 target Gpr17 activates AgRP neurons to regulate food intake. Cell 2012; 149: 1314-1326.
-
(2012)
Cell
, vol.149
, pp. 1314-1326
-
-
Ren, H.1
Orozco, I.J.2
Su, Y.3
Suyama, S.4
Gutierrez-Juarez, R.5
Horvath, T.L.6
-
29
-
-
33745576798
-
Role of hypothalamic Foxo1 in the regulation of food intake and energy homeostasis
-
Kim MS, Pak YK, Jang PG, Namkoong C, Choi YS, Won JC et al. Role of hypothalamic Foxo1 in the regulation of food intake and energy homeostasis. Nat Neurosci 2006; 9: 901-906.
-
(2006)
Nat Neurosci
, vol.9
, pp. 901-906
-
-
Kim, M.S.1
Pak, Y.K.2
Jang, P.G.3
Namkoong, C.4
Choi, Y.S.5
Won, J.C.6
-
30
-
-
77956260966
-
Uncoupling of acetylation from phosphorylation regulates FoxO1 function independent of its subcellular localization
-
Qiang L, Banks AS, Accili D. Uncoupling of acetylation from phosphorylation regulates FoxO1 function independent of its subcellular localization. J Biol Chem 2010; 285: 27396-27401.
-
(2010)
J Biol Chem
, vol.285
, pp. 27396-27401
-
-
Qiang, L.1
Banks, A.S.2
Accili, D.3
-
31
-
-
69249215528
-
The cyclic gene Hes1 contributes to diverse differentiation responses of embryonic stem cells
-
Kobayashi T, Mizuno H, Imayoshi I, Furusawa C, Shirahige K, Kageyama R. The cyclic gene Hes1 contributes to diverse differentiation responses of embryonic stem cells. Genes Dev 2009; 23: 1870-1875.
-
(2009)
Genes Dev
, vol.23
, pp. 1870-1875
-
-
Kobayashi, T.1
Mizuno, H.2
Imayoshi, I.3
Furusawa, C.4
Shirahige, K.5
Kageyama, R.6
-
32
-
-
51049113603
-
Notch signaling specifies megakaryocyte development from hematopoietic stem cells
-
Mercher T, Cornejo MG, Sears C, Kindler T, Moore SA, Maillard I et al. Notch signaling specifies megakaryocyte development from hematopoietic stem cells. Cell Stem Cell 2008; 3: 314-326.
-
(2008)
Cell Stem Cell
, vol.3
, pp. 314-326
-
-
Mercher, T.1
Cornejo, M.G.2
Sears, C.3
Kindler, T.4
Moore, S.A.5
Maillard, I.6
-
33
-
-
20244389684
-
Notch1 expression in early lymphopoiesis influences B versus T lineage determination
-
Pui JC, Allman D, Xu L, DeRocco S, Karnell FG, Bakkour S et al. Notch1 expression in early lymphopoiesis influences B versus T lineage determination. Immunity 1999; 11: 299-308.
-
(1999)
Immunity
, vol.11
, pp. 299-308
-
-
Pui, J.C.1
Allman, D.2
Xu, L.3
DeRocco, S.4
Karnell, F.G.5
Bakkour, S.6
-
34
-
-
33751078603
-
Canonical notch signaling functions as a commitment switch in the epidermal lineage
-
Blanpain C, Lowry WE, Pasolli HA, Fuchs E. Canonical notch signaling functions as a commitment switch in the epidermal lineage. Genes Dev 2006; 20: 3022-3035.
-
(2006)
Genes Dev
, vol.20
, pp. 3022-3035
-
-
Blanpain, C.1
Lowry, W.E.2
Pasolli, H.A.3
Fuchs, E.4
-
35
-
-
52949134150
-
Notch signaling regulates mammary stem cell function and luminal cell-fate commitment
-
Bouras T, Pal B, Vaillant F, Harburg G, Asselin-Labat ML, Oakes SR et al. Notch signaling regulates mammary stem cell function and luminal cell-fate commitment. Cell Stem Cell 2008; 3: 429-441.
-
(2008)
Cell Stem Cell
, vol.3
, pp. 429-441
-
-
Bouras, T.1
Pal, B.2
Vaillant, F.3
Harburg, G.4
Asselin-Labat, M.L.5
Oakes, S.R.6
-
36
-
-
0036205049
-
Notch pathway molecules are essential for the maintenance, but not the generation, of mammalian neural stem cells
-
Hitoshi S, Alexson T, Tropepe V, Donoviel D, Elia AJ, Nye JS et al. Notch pathway molecules are essential for the maintenance, but not the generation, of mammalian neural stem cells. Genes Dev 2002; 16: 846-858.
-
(2002)
Genes Dev
, vol.16
, pp. 846-858
-
-
Hitoshi, S.1
Alexson, T.2
Tropepe, V.3
Donoviel, D.4
Elia, A.J.5
Nye, J.S.6
-
37
-
-
34848838902
-
A Foxo/ Notch pathway controls myogenic differentiation and fiber type specification
-
Kitamura T, Kitamura YI, Funahashi Y, Shawber CJ, Castrillon DH, Kollipara R et al. A Foxo/ Notch pathway controls myogenic differentiation and fiber type specification. J Clin Invest 2007; 117: 2477-2485.
-
(2007)
J Clin Invest
, vol.117
, pp. 2477-2485
-
-
Kitamura, T.1
Kitamura, Y.I.2
Funahashi, Y.3
Shawber, C.J.4
Castrillon, D.H.5
Kollipara, R.6
-
38
-
-
0028232358
-
Recognition sequence of a highly conserved DNA binding protein RBP-J kappa
-
Tun T, Hamaguchi Y, Matsunami N, Furukawa T, Honjo T, Kawaichi M. Recognition sequence of a highly conserved DNA binding protein RBP-J kappa. Nucleic Acids Res 1994; 22: 965-971.
-
(1994)
Nucleic Acids Res
, vol.22
, pp. 965-971
-
-
Tun, T.1
Hamaguchi, Y.2
Matsunami, N.3
Furukawa, T.4
Honjo, T.5
Kawaichi, M.6
-
39
-
-
0037237279
-
The forkhead transcription factor Foxo1 regulates adipocyte differentiation
-
Nakae J, Kitamura T, Kitamura Y, Biggs WH 3rd, Arden KC, Accili D et al. The forkhead transcription factor Foxo1 regulates adipocyte differentiation. Dev Cell 2003; 4: 119-129.
-
(2003)
Dev Cell
, vol.4
, pp. 119-129
-
-
Nakae, J.1
Kitamura, T.2
Kitamura, Y.3
Biggs, W.H.4
Arden, K.C.5
Accili, D.6
-
40
-
-
56349127778
-
Distinct functions for the transcription factor Foxo1 at various stages of B cell differentiation
-
Dengler HS, Baracho GV, Omori SA, Bruckner S, Arden KC, Castrillon DH et al. Distinct functions for the transcription factor Foxo1 at various stages of B cell differentiation. Nat Immunol 2008; 9: 1388-1398.
-
(2008)
Nat Immunol
, vol.9
, pp. 1388-1398
-
-
Dengler, H.S.1
Baracho, G.V.2
Omori, S.A.3
Bruckner, S.4
Arden, K.C.5
Castrillon, D.H.6
-
41
-
-
84858228682
-
FoxO1 is required in endothelial but not myocardial cell lineages during cardiovascular development
-
Sengupta A, Chakraborty S, Paik J, Yutzey KE, Evans-Anderson HJ. FoxO1 is required in endothelial but not myocardial cell lineages during cardiovascular development. Dev Dyn 2012; 241: 803-813.
-
(2012)
Dev Dyn
, vol.241
, pp. 803-813
-
-
Sengupta, A.1
Chakraborty, S.2
Paik, J.3
Yutzey, K.E.4
Evans-Anderson, H.J.5
-
42
-
-
84881610068
-
FOXO3 shares common targets with ASCL1 genome-wide and inhibits ASCL1-dependent neurogenesis
-
Webb AE, Pollina EA, Vierbuchen T, Urban N, Ucar D, Leeman DS et al. FOXO3 shares common targets with ASCL1 genome-wide and inhibits ASCL1-dependent neurogenesis. Cell Rep 2013; 4: 477-491.
-
(2013)
Cell Rep
, vol.4
, pp. 477-491
-
-
Webb, A.E.1
Pollina, E.A.2
Vierbuchen, T.3
Urban, N.4
Ucar, D.5
Leeman, D.S.6
-
43
-
-
33750432857
-
Comparative sequence analysis reveals an intricate network among REST, CREB and miRNA in mediating neuronal gene expression
-
Wu J, Xie X. Comparative sequence analysis reveals an intricate network among REST, CREB and miRNA in mediating neuronal gene expression. Genome Biol 2006; 7: R85.
-
(2006)
Genome Biol
, vol.7
, pp. R85
-
-
Wu, J.1
Xie, X.2
-
44
-
-
33847687694
-
Comparative evolutionary analysis of the FoxG1 transcription factor from diverse vertebrates identifies conserved recognition sites for microRNA regulation
-
Bredenkamp N, Seoighe C, Illing N. Comparative evolutionary analysis of the FoxG1 transcription factor from diverse vertebrates identifies conserved recognition sites for microRNA regulation. Dev Genes Evol 2007; 217: 227-233.
-
(2007)
Dev Genes Evol
, vol.217
, pp. 227-233
-
-
Bredenkamp, N.1
Seoighe, C.2
Illing, N.3
-
45
-
-
84864304495
-
MicroRNA-9 Modulates Hes1 ultradian oscillations by forming a double-negative feedback loop
-
Bonev B, Stanley P, Papalopulu N. MicroRNA-9 Modulates Hes1 ultradian oscillations by forming a double-negative feedback loop. Cell Rep 2012; 2: 10-18.
-
(2012)
Cell Rep
, vol.2
, pp. 10-18
-
-
Bonev, B.1
Stanley, P.2
Papalopulu, N.3
-
46
-
-
79961173038
-
Inhibition of Notch signaling ameliorates insulin resistance in a FoxO1-dependent manner
-
Pajvani UB, Shawber CJ, Samuel VT, Birkenfeld AL, Shulman GI, Kitajewski J et al. Inhibition of Notch signaling ameliorates insulin resistance in a FoxO1-dependent manner. Nat Med 2011; 17: 961-967.
-
(2011)
Nat Med
, vol.17
, pp. 961-967
-
-
Pajvani, U.B.1
Shawber, C.J.2
Samuel, V.T.3
Birkenfeld, A.L.4
Shulman, G.I.5
Kitajewski, J.6
-
47
-
-
84906562191
-
Glucosamine-induced OGTactivation mediates glucose production through cleaved Notch1 and FoxO1, which coordinately contributed to the regulation of maintenance of self-renewal in mouse embryonic stem cells
-
Jeon JH, Suh HN, Kim MO, Ryu JM, Han HJ. Glucosamine-induced OGTactivation mediates glucose production through cleaved Notch1 and FoxO1, which coordinately contributed to the regulation of maintenance of self-renewal in mouse embryonic stem cells. Stem Cells Dev 2014; 23: 2067-2079.
-
(2014)
Stem Cells Dev
, vol.23
, pp. 2067-2079
-
-
Jeon, J.H.1
Suh, H.N.2
Kim, M.O.3
Ryu, J.M.4
Han, H.J.5
-
48
-
-
84885172074
-
FoxO3 coordinates metabolic pathways to maintain redox balance in neural stem cells
-
Yeo H, Lyssiotis CA, Zhang Y, Ying H, Asara JM, Cantley LC et al. FoxO3 coordinates metabolic pathways to maintain redox balance in neural stem cells. EMBO J 2013; 32: 2589-2602.
-
(2013)
EMBO J
, vol.32
, pp. 2589-2602
-
-
Yeo, H.1
Lyssiotis, C.A.2
Zhang, Y.3
Ying, H.4
Asara, J.M.5
Cantley, L.C.6
|