Organ Regeneration Based on Developmental Biology

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Nicholas CR, Chen J, Tang Y, Southwell DG, Chalmers N, Vogt D, Arnold CM, Chen YJ, Stanley
EG, Elefanty AG, Sasai Y, Alvarez-Buylla A, Rubenstein JL, Kriegstein AR (2013) Functional
maturation of hPSC-derived forebrain interneurons requires an extended timeline and mimics
human neural development. Cell Stem Cell 12(5):573–586
Nóbrega-Pereira S, Gelman D, Bartolini G, Pla R, Pierani A, Marín O (2010) Origin and molecular
specification of globus pallidus neurons. J Neurosci 30(8):2824–2834
Noctor SC, Flint AC, Weissman TA, Dammerman RS, Kriegstein AR (2001) Neurons derived from
radial glial cells establish radial units in neocortex. Nature 409(6821):714–720
Noctor SC, Martínez-Cerdeño V, Ivic L, Kriegstein AR (2004) Cortical neurons arise in symmetric
and asymmetric division zones and migrate through specific phases. Nat Neurosci
7(2):136–144
Nordström U, Jessell TM, Edlund T (2002) Progressive induction of caudal neural character by
graded Wnt signaling. Nat Neurosci 5:525–532
Northcutt RG, Kaas JH (1995) The emergence and evolution of mammalian neocortex. Trends
Neurosci 18(9):373–379
O’Leary DD (1989) Do cortical areas emerge from a protocortex? Trends Neurosci
12(10):400–406
O’Leary DD, Chou SJ, Sahara S (2007) Area patterning of the mammalian cortex. Neuron
56:252–269
Piccolo S, Sasai Y, Lu B, De Robertis EM (1996) Dorsoventral patterning in Xenopus: inhibition
of ventral signals by direct binding of chordin to BMP-4. Cell 86(4):589–598
Praetorius J, Nielsen S (2006) Distribution of sodium transporters and aquaporin-1 in the human
choroid plexus. Am J Phys Cell Phys 291(1):C59–C67
Rakic P (1988) Specification of cerebral cortical areas. Science 241(4862):170–176
Rubenstein JL, Shimamura K, Martinez S, Puelles L (1998) Regionalization of the prosencephalic
neural plate. Annu Rev Neurosci 21(1):445–477
Sahara S, Kawakami Y, Belmonte JCI, O'Leary DD (2007) Sp8 exhibits reciprocal induction with
Fgf8 but has an opposing effect on anterior-posterior cortical area patterning. Neural Dev
2(1):10
Sakaguchi H, Kadoshima T, Soen M, Narii N, Ishida Y, Ohgushi M, Takahashi J, Eiraku M, Sasai
Y (2015) Generation of functional hippocampal neurons from self-organizing human embry-
onic stem cell-derived dorsomedial telencephalic tissue. Nat Commun 6:8896
Sansom SN, Hébert JM, Thammongkol U, Smith J, Nisbet G, Surani MA, McConnell SK, Livesey
FJ (2005) Genomic characterisation of a Fgf-regulated gradient-based neocortical protomap.
Development 132(17):3947–3961
Sasai Y (2013a) Next-generation regenerative medicine: organogenesis from stem cells in 3D cul-
ture. Cell Stem Cell 12(5):520–530
Sasai Y (2013b) Cytosystems dynamics in self-organization of tissue architecture. Nature
493(7432):318–326
Sasai Y, De Robertis EM (1997) Ectodermal patterning in vertebrate embryos. Dev Biol
182(1):5–20
Sasai Y, Lu B, Steinbeisser H, De Robertis EM (1995) Regulation of neural induction by the Chd
and Bmp-4 antagonistic patterning signals in Xenopus. Nature 376(6538):333–336
Sato SM, Sargent TD (1989) Development of neural inducing capacity in dissociated Xenopus
embryos. Dev Biol 134(1):263–266
Shen Q, Wang Y, Dimos JT, Fasano CA, Phoenix TN, Lemischka IR, Ivanova NB, Stifani S,
Morrisey EE, Temple S (2006) The timing of cortical neurogenesis is encoded within lineages
of individual progenitor cells. Nat Neurosci 9(6):743–751
Shimamura K, Hartigan DJ, Martinez S, Puelles L, Rubenstein JL (1995) Longitudinal organiza-
tion of the anterior neural plate and neural tube. Development 121(12):3923–3933
Shitamukai A, Konno D, Matsuzaki F (2011) Oblique radial glial divisions in the developing
mouse neocortex induce self-renewing progenitors outside the germinal zone that resemble
primate outer subventricular zone progenitors. J Neurosci 31:3683–3695


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