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PMID: 10575033 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Sequence of neuron origin and neocortical laminar fate: relation to cell cycle of origin in the developing murine cerebral wall.

Takahashi T, Goto T, Miyama S, Nowakowski RS, Caviness VS

Abstract

Neurons destined for each region of the neocortex are known to arise approximately in an "inside-to-outside" sequence from a pseudostratified ventricular epithelium (PVE). This sequence is initiated rostrolaterally and propagates caudomedially. Moreover, independently of location in the PVE, the neuronogenetic sequence in mouse is divisible into 11 cell cycles that occur over a 6 d period. Here we use a novel "birth hour" method that identifies small cohorts of neurons born during a single 2 hr period, i.e., 10-20% of a single cell cycle, which corresponds to approximately 1.5% of the 6 d neuronogenetic period. This method shows that neurons arising with the same cycle of the 11 cycle sequence in mouse have common laminar fates even if they arise from widely separated positions on the PVE (neurons of fields 1 and 40) and therefore arise at different embryonic times. Even at this high level of temporal resolution, simultaneously arising cells occupy more than one cortical layer, and there is substantial overlap in the distributions of cells arising with successive cycles. We demonstrate additionally that the laminar representation of cells arising with a given cycle is little if at all modified over the early postnatal interval of histogenetic cell death. We infer from these findings that cell cycle is a neuronogenetic counting mechanism and that this counting mechanism is integral to subsequent processes that determine cortical laminar fate.

Keywords
NASA Discipline Cell Biology Non-NASA Center
MeSH Terms
Aging/physiology Animals Animals, Newborn/anatomy & histology,growth & development Brain/embryology,growth & development Cell Cycle/physiology Embryo, Mammalian/cytology,physiology Embryonic and Fetal Development/physiology Mice Mice, Inbred Strains Neocortex/cytology Neurons/cytology,physiology
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Takahashi T
Department of Neurology, Massachusetts General Hospital, Harvard Medical School, Boston, Massachusetts 02114, USA. tata@med.keio.ac.jp
Goto T
Miyama S
Nowakowski R S
Caviness V S
Investigators
1 investigators, click to expand
Nowakowski R S
U Med & Dent NJ, Piscataway
References (61)
61 references, click to expand
  1. A gradient in the duration of the G1 phase in the murine neocortical proliferative epithelium.
    Cereb Cortex. 1997 Oct-Nov;7(7):678-89 PMID: 9373022
  2. Determinants of cell shape and orientation: a comparative Golgi analysis of cell-axon interrelationships in the developing neocortex of normal and reeler mice.
    J Comp Neurol. 1979 Sep 1;187(1):49-69 PMID: 489778
  3. Origin and route of tangentially migrating neurons in the developing neocortical intermediate zone.
    J Neurosci. 1997 Nov 1;17(21):8313-23 PMID: 9334406
  4. The generation of neuronal diversity in the central nervous system.
    Annu Rev Neurosci. 1991;14:269-300 PMID: 2031572
  5. Control of cell number in the developing mammalian visual system.
    Prog Neurobiol. 1989;32(3):207-34 PMID: 2652194
  6. Time of neuron origin in the hippocampal region. An autoradiographic study in the mouse.
    Exp Neurol Suppl. 1965 Oct;:Suppl 2:1-70 PMID: 5838955
  7. Cell cycle dependence of laminar determination in developing neocortex.
    Science. 1991 Oct 11;254(5029):282-5 PMID: 1925583
  8. Growth patterns in the lateral wall of the mouse telencephalon. II. Histological changes during and subsequent to the period of isocortical neuron production.
    J Anat. 1982 May;134(Pt 3):415-42 PMID: 7107510
  9. Tempo of neurogenesis and synaptogenesis in the primate cingulate mesocortex: comparison with the neocortex.
    J Comp Neurol. 1995 Sep 18;360(2):363-76 PMID: 8522653
  10. Mode of cell proliferation in the developing mouse neocortex.
    Proc Natl Acad Sci U S A. 1994 Jan 4;91(1):375-9 PMID: 8278397
  11. The timetable of laminar neurogenesis contributes to the specification of cortical areas in mouse isocortex.
    J Comp Neurol. 1997 Aug 18;385(1):95-116 PMID: 9268119
  12. The determination of neuronal fate in the cerebral cortex.
    Trends Neurosci. 1989 Sep;12(9):342-9 PMID: 2480675
  13. Numbers, time and neocortical neuronogenesis: a general developmental and evolutionary model.
    Trends Neurosci. 1995 Sep;18(9):379-83 PMID: 7482802
  14. Different origins and developmental histories of transient neurons in the marginal zone of the fetal and neonatal rat cortex.
    J Comp Neurol. 1998 Aug 10;397(4):493-518 PMID: 9699912
  15. Relationship of the time of origin and death of neurons in rat somatosensory cortex: barrel versus septal cortex and projection versus local circuit neurons.
    J Comp Neurol. 1995 Apr 24;355(1):6-14 PMID: 7636014
  16. Radial and horizontal deployment of clonally related cells in the primate neocortex: relationship to distinct mitotic lineages.
    Neuron. 1995 Aug;15(2):311-21 PMID: 7646888
  17. Local homogeneity of cell cycle length in developing mouse cortex.
    J Neurosci. 1997 Mar 15;17(6):2079-87 PMID: 9045735
  18. Early developmental events: cell lineages, acquisition of neuronal positions, and areal and laminar development.
    Neurosci Res Program Bull. 1982 Apr;20(4):439-51 PMID: 7121835
  19. Regulation of neuroblast cell-cycle kinetics plays a crucial role in the generation of unique features of neocortical areas.
    J Neurosci. 1997 Oct 15;17(20):7763-83 PMID: 9315898
  20. In situ labeling of apoptotic cell death in the cerebral cortex and thalamus of rats during development.
    J Comp Neurol. 1995 Dec 11;363(2):281-95 PMID: 8642075
  21. The cell cycle of the pseudostratified ventricular epithelium of the embryonic murine cerebral wall.
    J Neurosci. 1995 Sep;15(9):6046-57 PMID: 7666188
  22. Cell fate specification and symmetrical/asymmetrical divisions in the developing cerebral cortex.
    J Neurosci. 1997 Mar 15;17(6):2018-29 PMID: 9045730
  23. BUdR as an S-phase marker for quantitative studies of cytokinetic behaviour in the murine cerebral ventricular zone.
    J Neurocytol. 1992 Mar;21(3):185-97 PMID: 1373183
  24. Exploiting the dynamics of S-phase tracers in developing brain: interkinetic nuclear migration for cells entering versus leaving the S-phase.
    Dev Neurosci. 2000;22(1-2):44-55 PMID: 10657697
  25. [Quantitative study of autoradiographic marking in the rat nervous system. II. Final characteristics of the adult animal brain: interpretation rules and concept of cortical chronoarchitecture].
    Exp Brain Res. 1975;22(1):37-56 PMID: 1116500
  26. Interneuron migration from basal forebrain to neocortex: dependence on Dlx genes.
    Science. 1997 Oct 17;278(5337):474-6 PMID: 9334308
  27. Sequential genesis and determination of cone and rod photoreceptors in Xenopus.
    J Neurobiol. 1998 Jun;35(3):227-44 PMID: 9622007
  28. Changes of synaptic density in the primary visual cortex of the macaque monkey from fetal to adult stage.
    J Neurosci. 1993 Jul;13(7):2801-20 PMID: 8331373
  29. Mode of cell migration to the superficial layers of fetal monkey neocortex.
    J Comp Neurol. 1972 May;145(1):61-83 PMID: 4624784
  30. Mapping of cortical histogenesis in the ferret.
    J Embryol Exp Morphol. 1984 Jun;81:239-52 PMID: 6470609
  31. Changes in cell-cycle kinetics during the development and evolution of primate neocortex.
    Proc Natl Acad Sci U S A. 1998 Feb 3;95(3):1242-6 PMID: 9448316
  32. Interkinetic and migratory behavior of a cohort of neocortical neurons arising in the early embryonic murine cerebral wall.
    J Neurosci. 1996 Sep 15;16(18):5762-76 PMID: 8795631
  33. Cell proliferation and migration in the primitive ependymal zone: an autoradiographic study of histogenesis in the nervous system.
    Exp Neurol. 1959 Oct;1:322-33 PMID: 14446424
  34. Lineage analysis reveals neurotransmitter (GABA or glutamate) but not calcium-binding protein homogeneity in clonally related cortical neurons.
    J Neurosci. 1994 Jan;14(1):107-23 PMID: 7904303
  35. Neuronal migration and contact guidance in the primate telencephalon.
    Postgrad Med J. 1978;54 Suppl 1:25-40 PMID: 364453
  36. Architectonic map of neocortex of the normal mouse.
    J Comp Neurol. 1975 Nov 15;164(2):247-63 PMID: 1184785
  37. Cell production gradients in the developing ferret isocortex.
    J Anat. 1986 Feb;144:1-14 PMID: 3693037
  38. Neurogenesis of the cat's primary visual cortex.
    J Comp Neurol. 1985 Dec 22;242(4):611-31 PMID: 4086673
  39. The alignment of migrating neural cells in relation to the murine neopallial radial glial fiber system.
    Cereb Cortex. 1991 May-Jun;1(3):221-9 PMID: 1668365
  40. Autoradiographic study of development of the cerebral cortex in the rabbit.
    Brain Behav Evol. 1974;9(5):317-32 PMID: 4425945
  41. Cell lineage and cell migration in the developing cerebral cortex.
    Experientia. 1990 Sep 15;46(9):940-7 PMID: 2209803
  42. Development of the barrels and barrel field in the somatosensory cortex of the mouse.
    J Comp Neurol. 1977 Feb 15;171(4):545-60 PMID: 833357
  43. [Chronoarchitectonic analysis of the rat brain using radioautography. I. Histogenesis of the telencephalon].
    J Hirnforsch. 1975;16(1):55-74 PMID: 1184959
  44. The leaving or Q fraction of the murine cerebral proliferative epithelium: a general model of neocortical neuronogenesis.
    J Neurosci. 1996 Oct 1;16(19):6183-96 PMID: 8815900
  45. Autoradiographic study of cell migration during histogenesis of cerebral cortex in the mouse.
    Nature. 1961 Nov 25;192:766-8 PMID: 17533671
  46. Modulation of the cell cycle contributes to the parcellation of the primate visual cortex.
    Nature. 1993 Dec 2;366(6454):464-6 PMID: 8247154
  47. Cell migrations to the isocortex in the rat.
    Anat Rec. 1968 Mar;160(3):619-34 PMID: 5664077
  48. Neurons in rhesus monkey visual cortex: systematic relation between time of origin and eventual disposition.
    Science. 1974 Feb 1;183(4123):425-7 PMID: 4203022
  49. Growth patterns in the lateral wall of the mouse telencephalon: I. Autoradiographic studies of the histogenesis of the isocortex and adjacent areas.
    J Anat. 1982 Mar;134(Pt 2):273-98 PMID: 7076556
  50. Independent controls for neocortical neuron production and histogenetic cell death.
    Dev Neurosci. 2000;22(1-2):125-38 PMID: 10657705
  51. The genetic sequence of retinal development in the ciliary margin of the Xenopus eye.
    Dev Biol. 1998 Jul 15;199(2):185-200 PMID: 9698439
  52. Dynamics of cell migration from the lateral ganglionic eminence in the rat.
    J Neurosci. 1996 Oct 1;16(19):6146-56 PMID: 8815897
  53. Neocortical histogenesis in normal and reeler mice: a developmental study based upon [3H]thymidine autoradiography.
    Brain Res. 1982 Jul;256(3):293-302 PMID: 7104762
  54. Local differences in the amount of early cell death in neocortex predict adult local specializations.
    Science. 1983 Mar 18;219(4590):1349-51 PMID: 6828866
  55. Fates of visual cortical neurons in the ferret after isochronic and heterochronic transplantation.
    J Neurosci. 1988 Mar;8(3):945-74 PMID: 3346731
  56. Mechanisms of cortical development: a view from mutations in mice.
    Annu Rev Neurosci. 1978;1:297-326 PMID: 386903
  57. Cell death and removal in the cerebral cortex during development.
    Prog Neurobiol. 1992 Jul;39(1):1-43 PMID: 1589584
  58. Subsets of retinal progenitors display temporally regulated and distinct biases in the fates of their progeny.
    Development. 1997 Mar;124(6):1119-31 PMID: 9102299
  59. Density of neurons and synapses in the cerebral cortex of the mouse.
    J Comp Neurol. 1989 Aug 22;286(4):442-55 PMID: 2778101
  60. Synaptogenesis in the prefrontal cortex of rhesus monkeys.
    Cereb Cortex. 1994 Jan-Feb;4(1):78-96 PMID: 8180493
  61. Postnatal development of the mouse cerebral neocortex. I. Quantitative cytoarchitectonics of some motor and sensory areas.
    J Hirnforsch. 1977;18(6):461-81 PMID: 611144
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
0270-6474
Published
1999-12-01
Pages
10357-71
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6782435
Subset
IM
Grants
NINDS NIH HHS · NS12005 · United States
NINDS NIH HHS · NS33433 · United States
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Analysis Services

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