Skip to main content
Top
Published in: Brain Structure and Function 6/2016

01-07-2016 | Original Article

Fgf15 regulates thalamic development by controlling the expression of proneural genes

Authors: Almudena Martinez-Ferre, Cosme Lloret-Quesada, Nilima Prakash, Wolfgang Wurst, John L. R. Rubenstein, Salvador Martinez

Published in: Brain Structure and Function | Issue 6/2016

Login to get access

Abstract

The establishment of the brain structural complexity requires a precisely orchestrated interplay between extrinsic and intrinsic signals modulating cellular mechanisms to guide neuronal differentiation. However, little is known about the nature of these signals in the diencephalon, a complex brain region that processes and relays sensory and motor information to and from the cerebral cortex and subcortical structures. Morphogenetic signals from brain organizers regulate histogenetic processes such as cellular proliferation, migration, and differentiation. Sonic hedgehog (Shh) in the key signal of the ZLI, identified as the diencephalic organizer. Fgf15, the mouse gene orthologous of human, chick, and zebrafish Fgf19, is induced by Shh signal and expressed in the diencephalic alar plate progenitors during histogenetic developmental stages. This work investigates the role of Fgf15 signal in diencephalic development. In the absence of Fgf15, the complementary expression pattern of proneural genes: Ascl1 and Nng2, is disrupted and the GABAergic thalamic cells do not differentiate; in addition dorsal thalamic progenitors failed to exit from the mitotic cycle and to differentiate into neurons. Therefore, our findings indicate that Fgf15 is the Shh downstream signal to control thalamic regionalization, neurogenesis, and neuronal differentiation by regulating the expression and mutual segregation of neurogenic and proneural regulatory genes.
Appendix
Available only for authorised users
Literature
go back to reference Anderson SA, Marín O, Horn C, Jennings K, Rubenstein JLR (2001) Distinct cortical migrations from the medial and lateral ganglionic eminences. Development 128(3):353–363PubMed Anderson SA, Marín O, Horn C, Jennings K, Rubenstein JLR (2001) Distinct cortical migrations from the medial and lateral ganglionic eminences. Development 128(3):353–363PubMed
go back to reference Borello U, Cobos I, Long JE, McWhirter JR, Murre C, Rubenstein JL (2008) FGF15 promotes neurogenesis and opposes FGF8 function during neocortical development. Neural Dev 3:17CrossRefPubMedPubMedCentral Borello U, Cobos I, Long JE, McWhirter JR, Murre C, Rubenstein JL (2008) FGF15 promotes neurogenesis and opposes FGF8 function during neocortical development. Neural Dev 3:17CrossRefPubMedPubMedCentral
go back to reference Chatterjee M, Li K, Chen L, Maisano X, Guo Q, Gan L, Li JY (2012) Gbx2 regulates thalamocortical axon guidance by modifying the LIM and Robo codes. Development 139(24):4633–4643CrossRefPubMedPubMedCentral Chatterjee M, Li K, Chen L, Maisano X, Guo Q, Gan L, Li JY (2012) Gbx2 regulates thalamocortical axon guidance by modifying the LIM and Robo codes. Development 139(24):4633–4643CrossRefPubMedPubMedCentral
go back to reference Chen Y, Li X, Eswarakumar VP, Seger R, Lonai P (2000) Fibroblast growth factor (FGF) signaling through PI 3-kinase and Akt-PKB is required for embryoid body differentiation. Oncogene 19:3750–3756CrossRefPubMed Chen Y, Li X, Eswarakumar VP, Seger R, Lonai P (2000) Fibroblast growth factor (FGF) signaling through PI 3-kinase and Akt-PKB is required for embryoid body differentiation. Oncogene 19:3750–3756CrossRefPubMed
go back to reference Chi CL, Martinez S, Wurst W, Martin GR (2003) The isthmic organizer signal FGF8 is required for cell survival in the prospective midbrain and cerebellum. Development 130(12):2633–2644CrossRefPubMed Chi CL, Martinez S, Wurst W, Martin GR (2003) The isthmic organizer signal FGF8 is required for cell survival in the prospective midbrain and cerebellum. Development 130(12):2633–2644CrossRefPubMed
go back to reference Crossley PH, Martin GR (1995a) The mouse Fgf8 gene encodes a family of polypeptides and is expressed in regions that direct outgrowth and patterning in the developing embryo. Development 121:439–451PubMed Crossley PH, Martin GR (1995a) The mouse Fgf8 gene encodes a family of polypeptides and is expressed in regions that direct outgrowth and patterning in the developing embryo. Development 121:439–451PubMed
go back to reference Crossley PH, Martin GR (1995b) The mouse Fgf8 gene encodes a family of polypeptides and is expressed in regions that directs outgrowth and patterning in the developing embryo. Development 121(2):439–451PubMed Crossley PH, Martin GR (1995b) The mouse Fgf8 gene encodes a family of polypeptides and is expressed in regions that directs outgrowth and patterning in the developing embryo. Development 121(2):439–451PubMed
go back to reference Delaunay D, Heydon K, Miguez A, Schwab M, Nave K-A, Thomas JL, Spassky N, Martinez S, Zalc B (2009) Genetic tracing of subpopulation neurons in the prethalamus of mice (Mus musculus). J Comp Neurol 512:74–83CrossRefPubMed Delaunay D, Heydon K, Miguez A, Schwab M, Nave K-A, Thomas JL, Spassky N, Martinez S, Zalc B (2009) Genetic tracing of subpopulation neurons in the prethalamus of mice (Mus musculus). J Comp Neurol 512:74–83CrossRefPubMed
go back to reference Dickinson M, McMahon A (1992) The role of Wnt genes in vertebrate development. Curr Opin Genet Dev 2:562–566CrossRefPubMed Dickinson M, McMahon A (1992) The role of Wnt genes in vertebrate development. Curr Opin Genet Dev 2:562–566CrossRefPubMed
go back to reference Echelard Y, Epstein D, St-Jacques B, Shen L, Mohler J, McMahon J, McMahon A (1993) Sonic hedgehog, a member of a family of putative signaling molecules, is implicated in the regulation of CNS polarity. Cell 75:1417–1430CrossRefPubMed Echelard Y, Epstein D, St-Jacques B, Shen L, Mohler J, McMahon J, McMahon A (1993) Sonic hedgehog, a member of a family of putative signaling molecules, is implicated in the regulation of CNS polarity. Cell 75:1417–1430CrossRefPubMed
go back to reference Fischer T, Faus-Kessler T, Welzl G, Simeone A, Wurst W, Prakash N (2011) Fgf15-mediated control of neurogenic and proneural gene expression regulates dorsal midbrain neurogenesis. Dev Biol 350:496–510CrossRefPubMed Fischer T, Faus-Kessler T, Welzl G, Simeone A, Wurst W, Prakash N (2011) Fgf15-mediated control of neurogenic and proneural gene expression regulates dorsal midbrain neurogenesis. Dev Biol 350:496–510CrossRefPubMed
go back to reference Ford-Perriss M, Abud H, Murphy M (2001) Fibroblast growth factors in the developing central nervous system. Clin Exp Pharmacol Physiol 28:493–503CrossRefPubMed Ford-Perriss M, Abud H, Murphy M (2001) Fibroblast growth factors in the developing central nervous system. Clin Exp Pharmacol Physiol 28:493–503CrossRefPubMed
go back to reference Garel S, Huffman KJ, Rubenstein JLR (2003) Molecular regionalization of the neocortex is disrupted in Fgf8 hypomorphic mutants. Development 130:1903–1914CrossRefPubMed Garel S, Huffman KJ, Rubenstein JLR (2003) Molecular regionalization of the neocortex is disrupted in Fgf8 hypomorphic mutants. Development 130:1903–1914CrossRefPubMed
go back to reference Gimeno L, Martinez S (2007) Expression of chick Fgf19 and mouse Fgf15 orthologs is regulated in the developing brain by Fgf8 and Shh. Dev Dyn 236:2285–2297CrossRefPubMed Gimeno L, Martinez S (2007) Expression of chick Fgf19 and mouse Fgf15 orthologs is regulated in the developing brain by Fgf8 and Shh. Dev Dyn 236:2285–2297CrossRefPubMed
go back to reference Gimeno L, Brûlet P, Martinez S (2003) Study of Fgf15 gene expression in developing mouse brain. Gene Expr Patterns 3:473–481CrossRefPubMed Gimeno L, Brûlet P, Martinez S (2003) Study of Fgf15 gene expression in developing mouse brain. Gene Expr Patterns 3:473–481CrossRefPubMed
go back to reference Golding B, Pouchelon G, Bellone C, Murthy S, Nardo AAD, Govindan S, Ogawa M, Shimogori T, Lüscher C, Dayer A et al (2014) Retinal input directs the recruitment of inhibitory interneurons into thalamic visual circuits. Neuron 81(5):1057–1069CrossRefPubMed Golding B, Pouchelon G, Bellone C, Murthy S, Nardo AAD, Govindan S, Ogawa M, Shimogori T, Lüscher C, Dayer A et al (2014) Retinal input directs the recruitment of inhibitory interneurons into thalamic visual circuits. Neuron 81(5):1057–1069CrossRefPubMed
go back to reference Harmer NJ, Pellegrini L, Chirgadze D, Fernandez-Recio J, Blundell TL (2004) The crystal structure of fibroblast growth factor (FGF) 19 reveals novel features of the FGF family and offers a structural basis for its unusual receptor affinity. Biochemistry 43:629–640CrossRefPubMed Harmer NJ, Pellegrini L, Chirgadze D, Fernandez-Recio J, Blundell TL (2004) The crystal structure of fibroblast growth factor (FGF) 19 reveals novel features of the FGF family and offers a structural basis for its unusual receptor affinity. Biochemistry 43:629–640CrossRefPubMed
go back to reference Inamura N, Ono K, Takebayashi H, Zalc B, Ikenaka K (2011) Olig2 lineage cells generate GABAergic neurons in the prethalamic nuclei, including the zona incerta, ventral lateral geniculate nucleus and reticular thalamic nucleus. Dev Neurosci 33:118–129CrossRefPubMed Inamura N, Ono K, Takebayashi H, Zalc B, Ikenaka K (2011) Olig2 lineage cells generate GABAergic neurons in the prethalamic nuclei, including the zona incerta, ventral lateral geniculate nucleus and reticular thalamic nucleus. Dev Neurosci 33:118–129CrossRefPubMed
go back to reference Inverardi F, Beolchi MS, Ortino B, Moroni RF, Regordi MC, Amadeo A, Frassoni C (2007) GABA immunoreactivity in the developing rat thalamus and Otx2 homeoprotein expression in migrating neurons. Brain Res Bull 73:64–74CrossRefPubMed Inverardi F, Beolchi MS, Ortino B, Moroni RF, Regordi MC, Amadeo A, Frassoni C (2007) GABA immunoreactivity in the developing rat thalamus and Otx2 homeoprotein expression in migrating neurons. Brain Res Bull 73:64–74CrossRefPubMed
go back to reference Ishibashi M (2004) Molecular mechanisms for morphogenesis of the central nervous system in mammals. Anat Sci Int 79:226–34CrossRefPubMed Ishibashi M (2004) Molecular mechanisms for morphogenesis of the central nervous system in mammals. Anat Sci Int 79:226–34CrossRefPubMed
go back to reference Ishibashi M, McMahon AP (2002) A sonic hedgehog-dependent signaling relay regulates growth of diencephalic and mesencephalic primordia in the early mouse embryo. Development 129:4807–4819PubMed Ishibashi M, McMahon AP (2002) A sonic hedgehog-dependent signaling relay regulates growth of diencephalic and mesencephalic primordia in the early mouse embryo. Development 129:4807–4819PubMed
go back to reference Jeong Y, Dolson DK, Waclaw RR, Matise MP, Sussel L, Campbell K, Kaestner KH, Epstein DJ (2011) Spatial and temporal requirements for sonic hedgehog in the regulation of thalamic interneuron identity. Development 138:531–541CrossRefPubMedPubMedCentral Jeong Y, Dolson DK, Waclaw RR, Matise MP, Sussel L, Campbell K, Kaestner KH, Epstein DJ (2011) Spatial and temporal requirements for sonic hedgehog in the regulation of thalamic interneuron identity. Development 138:531–541CrossRefPubMedPubMedCentral
go back to reference Jones EG (1985) The thalamus. Springer, Plenum Press, New York Jones EG (1985) The thalamus. Springer, Plenum Press, New York
go back to reference Jones S (2007) Mini-review: endocrine actions of fibroblast growth factor 19. Mol Pharm 5:42–48CrossRef Jones S (2007) Mini-review: endocrine actions of fibroblast growth factor 19. Mol Pharm 5:42–48CrossRef
go back to reference Kang W, Wong LC, Shi SH, Hébert JM (2009) The transition from radial glial to intermediate progenitor cell is inhibited by FGF signaling during corticogenesis. J Neurosci 29:14571–14580CrossRefPubMedPubMedCentral Kang W, Wong LC, Shi SH, Hébert JM (2009) The transition from radial glial to intermediate progenitor cell is inhibited by FGF signaling during corticogenesis. J Neurosci 29:14571–14580CrossRefPubMedPubMedCentral
go back to reference Kataoka A, Shimogori T (2008) Fgf8 controls regional identity in the developing thalamus. Development 135(17):2873–2881CrossRefPubMed Kataoka A, Shimogori T (2008) Fgf8 controls regional identity in the developing thalamus. Development 135(17):2873–2881CrossRefPubMed
go back to reference Kiecker C, Lumsden A (2004) Hedgehog signaling from the ZLI regulates diencephalic regional identity. Nat Neurosci 7:1242–1249CrossRefPubMed Kiecker C, Lumsden A (2004) Hedgehog signaling from the ZLI regulates diencephalic regional identity. Nat Neurosci 7:1242–1249CrossRefPubMed
go back to reference Kingsley D (1994) The TGF-beta superfamily: new members, new receptors and new genetic tests of function in different organisms. Genes Dev 8:133–146CrossRefPubMed Kingsley D (1994) The TGF-beta superfamily: new members, new receptors and new genetic tests of function in different organisms. Genes Dev 8:133–146CrossRefPubMed
go back to reference Kitamura K, Miura H, Yanazawa M, Miyashita T, Kato K (1997) Expression patterns of Brx1 (Rieg gene), Sonic hedgehog, Nkx2.2, Dlx1 and Arx during zona limitans intrathalamica and embryonic ventral lateral geniculate nuclear formation. Mech Dev 67:83–96CrossRefPubMed Kitamura K, Miura H, Yanazawa M, Miyashita T, Kato K (1997) Expression patterns of Brx1 (Rieg gene), Sonic hedgehog, Nkx2.2, Dlx1 and Arx during zona limitans intrathalamica and embryonic ventral lateral geniculate nuclear formation. Mech Dev 67:83–96CrossRefPubMed
go back to reference Lendahl U, Zimmerman LB, McKay RD (1990) CNS stem cells express a new class of intermediate filament protein. Cell 60(4):585–595CrossRefPubMed Lendahl U, Zimmerman LB, McKay RD (1990) CNS stem cells express a new class of intermediate filament protein. Cell 60(4):585–595CrossRefPubMed
go back to reference Martinez S, Crossley PH, Cobos I, Rubenstein JLR, Martin GR (1999) FGF8 induces formation of an ectopic isthmic organizer and isthmocerebellar development via a repressive effect on Otx2 expression. Development 126(6):1189–1200PubMed Martinez S, Crossley PH, Cobos I, Rubenstein JLR, Martin GR (1999) FGF8 induces formation of an ectopic isthmic organizer and isthmocerebellar development via a repressive effect on Otx2 expression. Development 126(6):1189–1200PubMed
go back to reference Martinez-Ferre A, Martinez S (2009) The development of the thalamic motor learning area is regulated by Fgf8 expression. J Neurosci 29(42):13389–13400CrossRefPubMed Martinez-Ferre A, Martinez S (2009) The development of the thalamic motor learning area is regulated by Fgf8 expression. J Neurosci 29(42):13389–13400CrossRefPubMed
go back to reference Martinez-Ferre A, Navarro-Garberi M, Bueno C, Martinez S (2013) Wnt signal specifies the intrathalamic limit and its organizer properties by regulating Shh induction in the alar plate. J Neurosci 33(9):3967–3980CrossRefPubMed Martinez-Ferre A, Navarro-Garberi M, Bueno C, Martinez S (2013) Wnt signal specifies the intrathalamic limit and its organizer properties by regulating Shh induction in the alar plate. J Neurosci 33(9):3967–3980CrossRefPubMed
go back to reference Mason I (2007) Initiation to end point: the multiple roles of fibroblast growth factors in neural development. Nat Rev Neurosci 8:583–596CrossRefPubMed Mason I (2007) Initiation to end point: the multiple roles of fibroblast growth factors in neural development. Nat Rev Neurosci 8:583–596CrossRefPubMed
go back to reference Miyake A, Nakayama Y, Konishi M, Itoh N (2005) Fgf19 regulated by Hh signaling is required for zebrafish forebrain development. Dev Biol 288(1):259–275CrossRefPubMed Miyake A, Nakayama Y, Konishi M, Itoh N (2005) Fgf19 regulated by Hh signaling is required for zebrafish forebrain development. Dev Biol 288(1):259–275CrossRefPubMed
go back to reference Moreno-Bravo JA, Perez-Balaguer A, Martinez-Lopez JE, Aroca P, Puelles L, Martinez S, Puelles E (2014) Role of Shh in the development of molecularly characterized tegmental nuclei in mouse rhombomere 1. Brain Struct Funct 219:777–792CrossRefPubMed Moreno-Bravo JA, Perez-Balaguer A, Martinez-Lopez JE, Aroca P, Puelles L, Martinez S, Puelles E (2014) Role of Shh in the development of molecularly characterized tegmental nuclei in mouse rhombomere 1. Brain Struct Funct 219:777–792CrossRefPubMed
go back to reference Nakagawa Y, O’Leary DDM (2001) Combinatiorial expression patterns of LIM-homeodomain and other regulatory genes parcellate developing thalamus. J Neurosci 21(8):2711–2725PubMed Nakagawa Y, O’Leary DDM (2001) Combinatiorial expression patterns of LIM-homeodomain and other regulatory genes parcellate developing thalamus. J Neurosci 21(8):2711–2725PubMed
go back to reference Nakagawa Y, Shimogori T (2012) Diversity of thalamic progenitor cells and postmitotic neurons. Eur J Neurosci 35(10):1554–1562CrossRefPubMed Nakagawa Y, Shimogori T (2012) Diversity of thalamic progenitor cells and postmitotic neurons. Eur J Neurosci 35(10):1554–1562CrossRefPubMed
go back to reference Nakamura H, Sato T, Suzuki-Hirano A (2008) Isthmus organizaer for mesencephalon and metencephalon. Dev Growth Differ 50(Suppl 1):113–118CrossRef Nakamura H, Sato T, Suzuki-Hirano A (2008) Isthmus organizaer for mesencephalon and metencephalon. Dev Growth Differ 50(Suppl 1):113–118CrossRef
go back to reference Ong SH, Hadari YR, Gotoh N, Guy GR, Schlessinger J, Lax I (2001) Stimulation of phosphatidylinositol 3-kinase by fibroblast growth factor receptors is mediated by coordinated recruitment of multiple docking proteins. Proc Natl Acad Sci USA 98:6074–6079CrossRefPubMedPubMedCentral Ong SH, Hadari YR, Gotoh N, Guy GR, Schlessinger J, Lax I (2001) Stimulation of phosphatidylinositol 3-kinase by fibroblast growth factor receptors is mediated by coordinated recruitment of multiple docking proteins. Proc Natl Acad Sci USA 98:6074–6079CrossRefPubMedPubMedCentral
go back to reference Ortino B, Inverardi F, Morante-Oria J, Fairén A, Frassoni C (2003) Substrates and routes of migration of early generated neurons in the developing rat thalamus. Eur J Neurosci 18(2):323–332CrossRefPubMed Ortino B, Inverardi F, Morante-Oria J, Fairén A, Frassoni C (2003) Substrates and routes of migration of early generated neurons in the developing rat thalamus. Eur J Neurosci 18(2):323–332CrossRefPubMed
go back to reference Ottersen OP, Storm-Mathisen J (1984) Glutamate- and GABA-containing neurons in the mouse and rat brain, as demonstrated with a new immunocytochemical technique. J Comp Neurol 229(3):374–392CrossRefPubMed Ottersen OP, Storm-Mathisen J (1984) Glutamate- and GABA-containing neurons in the mouse and rat brain, as demonstrated with a new immunocytochemical technique. J Comp Neurol 229(3):374–392CrossRefPubMed
go back to reference Peukert D, Weber S, Lumsden A, Scholpp S (2011) Lhx2 and Lhx9 determine neuronal differentiation and compartition in the caudal forebrain by regulating Wnt signaling. PLOS Biol 9(12):e1001218CrossRefPubMedPubMedCentral Peukert D, Weber S, Lumsden A, Scholpp S (2011) Lhx2 and Lhx9 determine neuronal differentiation and compartition in the caudal forebrain by regulating Wnt signaling. PLOS Biol 9(12):e1001218CrossRefPubMedPubMedCentral
go back to reference Puelles L, Martinez S (2013) Patterning of the diencephalon, in the patterning and cell type specification in the developing CNS and PNS. John Rubenstein and Pasko Rakic. Elsevier, Amsterdam Puelles L, Martinez S (2013) Patterning of the diencephalon, in the patterning and cell type specification in the developing CNS and PNS. John Rubenstein and Pasko Rakic. Elsevier, Amsterdam
go back to reference Puelles E, Acampora D, Gogoi R, Tuorto F, Papalia A, Guillemot F, Ang S-L, Simeone A (2006) Otx2 controls identity and fate of glutamatergic progenitors of the thalamus by repressing GABAergic differentiation. J Neurosci 26(22):5955–5964CrossRefPubMed Puelles E, Acampora D, Gogoi R, Tuorto F, Papalia A, Guillemot F, Ang S-L, Simeone A (2006) Otx2 controls identity and fate of glutamatergic progenitors of the thalamus by repressing GABAergic differentiation. J Neurosci 26(22):5955–5964CrossRefPubMed
go back to reference Roybon L, Mastracci TL, Ribeiro D, Sussel L, Brundin P, Li JY (2010) GABAergic differentiation induced by Mash1 is compromised by the bHLH proteins Neurogenin2, NeuroD1, and NeuroD2. Cereb Cortex 5:1234–1244CrossRef Roybon L, Mastracci TL, Ribeiro D, Sussel L, Brundin P, Li JY (2010) GABAergic differentiation induced by Mash1 is compromised by the bHLH proteins Neurogenin2, NeuroD1, and NeuroD2. Cereb Cortex 5:1234–1244CrossRef
go back to reference Sato T, Joyner AL (2009) The duration of Fgf8 isthmic organizer expression is key to patterning different tectal-isthmo-cerebellum structures. Development 136(21):3617–3626CrossRefPubMedPubMedCentral Sato T, Joyner AL (2009) The duration of Fgf8 isthmic organizer expression is key to patterning different tectal-isthmo-cerebellum structures. Development 136(21):3617–3626CrossRefPubMedPubMedCentral
go back to reference Scholpp S, Wolf O, Brand M, Liumsden A (2006) Hedgehod sinalling from the zona limitans intrathalamica orchestrates patterning of the zebrafish diencephalon. Development 133:855–864CrossRefPubMed Scholpp S, Wolf O, Brand M, Liumsden A (2006) Hedgehod sinalling from the zona limitans intrathalamica orchestrates patterning of the zebrafish diencephalon. Development 133:855–864CrossRefPubMed
go back to reference Scholpp S, Delogu A, Gilthorpe J, Peukert D, Schindler S, Lumsden A (2009) Her6 regulates the neurogenetic gradient and neuronal identity in the thalamus. Proc Natl Acad Sci USA 24:19895–19900CrossRef Scholpp S, Delogu A, Gilthorpe J, Peukert D, Schindler S, Lumsden A (2009) Her6 regulates the neurogenetic gradient and neuronal identity in the thalamus. Proc Natl Acad Sci USA 24:19895–19900CrossRef
go back to reference Simeone A, Acampora D, Mallamaci A, Stornaiuolo A, D’Apice MR, Nigro V, Boncinelli E (1993) A vertebrate gene related to orthodenticle contains a homeodomain of the bicoid class and demarcates anterior neuroectoderm in the gastrulating mouse embryo. EMBO J 12:2735–27747PubMedPubMedCentral Simeone A, Acampora D, Mallamaci A, Stornaiuolo A, D’Apice MR, Nigro V, Boncinelli E (1993) A vertebrate gene related to orthodenticle contains a homeodomain of the bicoid class and demarcates anterior neuroectoderm in the gastrulating mouse embryo. EMBO J 12:2735–27747PubMedPubMedCentral
go back to reference Storm EE, Garel S, Borello U, Hebert JM, Martinez S, McConnell SK, Martin GR, Rubenstein JL (2006) Dose-dependent functions of Fgf8 in regulating telencephalic patterning centers. Development 133:1831–1844CrossRefPubMed Storm EE, Garel S, Borello U, Hebert JM, Martinez S, McConnell SK, Martin GR, Rubenstein JL (2006) Dose-dependent functions of Fgf8 in regulating telencephalic patterning centers. Development 133:1831–1844CrossRefPubMed
go back to reference Theiler K (1989) The house mouse. Atlas of embryonic development. Springer, New YorkCrossRef Theiler K (1989) The house mouse. Atlas of embryonic development. Springer, New YorkCrossRef
go back to reference Vieira C, Martinez S (2006) Sonic hedgehog from the basal plate and the zona limitans intrathalamica exhibits differential activity on diencephalic molecular regionalization and nuclear structure. Neurosci 143:129–140CrossRef Vieira C, Martinez S (2006) Sonic hedgehog from the basal plate and the zona limitans intrathalamica exhibits differential activity on diencephalic molecular regionalization and nuclear structure. Neurosci 143:129–140CrossRef
go back to reference Virolainen SM, Achim K, Peltopuro P, Salminen M, Partanen J (2012) Transcriptional regulatory mechanisms underlying the GABAergic neuron fate in different diencephalic prosomeres. Development 139(20):3795–3805CrossRefPubMed Virolainen SM, Achim K, Peltopuro P, Salminen M, Partanen J (2012) Transcriptional regulatory mechanisms underlying the GABAergic neuron fate in different diencephalic prosomeres. Development 139(20):3795–3805CrossRefPubMed
go back to reference Vue TY, Aaker J, Taniguchi A, Kazemzadeh C, Skidmore JM, Martin DM, Martin JF, Treier M, Nakagawa Y (2007) Characterization of progenitor domains in the developing mouse thalamus. J Comp Neurol 505:73–91CrossRefPubMed Vue TY, Aaker J, Taniguchi A, Kazemzadeh C, Skidmore JM, Martin DM, Martin JF, Treier M, Nakagawa Y (2007) Characterization of progenitor domains in the developing mouse thalamus. J Comp Neurol 505:73–91CrossRefPubMed
go back to reference Vue TY, Bluske K, Alishahi A, Yang LL, Koyano-Nakagawa N, Novitch B, Nakagawa Y (2009) Sonic hedgehog signaling controls thalamic progenitor identity and nuclei specification in mice. J Neurosci 29(19):4484–4497CrossRefPubMedPubMedCentral Vue TY, Bluske K, Alishahi A, Yang LL, Koyano-Nakagawa N, Novitch B, Nakagawa Y (2009) Sonic hedgehog signaling controls thalamic progenitor identity and nuclei specification in mice. J Neurosci 29(19):4484–4497CrossRefPubMedPubMedCentral
go back to reference Wright TJ, Ladher R, McWhirter J, Murre C, Schoenwolf GC, Mansour SL (2004) Mouse FGF15 is the orgholog of human and chick FGF19, but is not uniquely required for otic induction. Dev Biol 269:264–275CrossRefPubMed Wright TJ, Ladher R, McWhirter J, Murre C, Schoenwolf GC, Mansour SL (2004) Mouse FGF15 is the orgholog of human and chick FGF19, but is not uniquely required for otic induction. Dev Biol 269:264–275CrossRefPubMed
Metadata
Title
Fgf15 regulates thalamic development by controlling the expression of proneural genes
Authors
Almudena Martinez-Ferre
Cosme Lloret-Quesada
Nilima Prakash
Wolfgang Wurst
John L. R. Rubenstein
Salvador Martinez
Publication date
01-07-2016
Publisher
Springer Berlin Heidelberg
Published in
Brain Structure and Function / Issue 6/2016
Print ISSN: 1863-2653
Electronic ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-015-1089-5

Other articles of this Issue 6/2016

Brain Structure and Function 6/2016 Go to the issue