Clonally related visual cortical neurons show similar stimulus feature selectivity.

Ye Li, Hui Lu, Pei-lin Cheng, Shaoyu Ge, Huatai Xu, Song-Hai Shi, Yang Dan
Author Information
  1. Ye Li: Division of Neurobiology, Department of Molecular and Cell Biology, University of California, Berkeley, California 94720, USA.

Abstract

A fundamental feature of the mammalian neocortex is its columnar organization. In the visual cortex, functional columns consisting of neurons with similar orientation preferences have been characterized extensively, but how these columns are constructed during development remains unclear. The radial unit hypothesis posits that the ontogenetic columns formed by clonally related neurons migrating along the same radial glial fibre during corticogenesis provide the basis for functional columns in adult neocortex. However, a direct correspondence between the ontogenetic and functional columns has not been demonstrated. Here we show that, despite the lack of a discernible orientation map in mouse visual cortex, sister neurons in the same radial clone exhibit similar orientation preferences. Using a retroviral vector encoding green fluorescent protein to label radial clones of excitatory neurons, and in vivo two-photon calcium imaging to measure neuronal response properties, we found that sister neurons preferred similar orientations whereas nearby non-sister neurons showed no such relationship. Interestingly, disruption of gap junction coupling by viral expression of a dominant-negative mutant of Cx26 (also known as Gjb2) or by daily administration of a gap junction blocker, carbenoxolone, during the first postnatal week greatly diminished the functional similarity between sister neurons, suggesting that the maturation of ontogenetic into functional columns requires intercellular communication through gap junctions. Together with the recent finding of preferential excitatory connections among sister neurons, our results support the radial unit hypothesis and unify the ontogenetic and functional columns in the visual cortex.

References

  1. Nature. 2009 Mar 26;458(7237):501-4 [PMID: 19204731]
  2. J Neurosci. 2002 Aug 1;22(15):6549-59 [PMID: 12151534]
  3. J Neurosci. 1998 Feb 15;18(4):1419-27 [PMID: 9454851]
  4. PLoS Biol. 2005 Mar;3(3):e68 [PMID: 15737062]
  5. Nature. 2011 May 5;473(7345):87-91 [PMID: 21478872]
  6. J Neurosci. 1997 May 1;17(9):3096-111 [PMID: 9096144]
  7. Nature. 1993 Apr 15;362(6421):632-5 [PMID: 8464513]
  8. Nature. 2006 Aug 24;442(7105):925-8 [PMID: 16906137]
  9. Trends Neurosci. 2008 May;31(5):243-50 [PMID: 18403031]
  10. Nat Protoc. 2006;1(1):380-6 [PMID: 17406260]
  11. Neuron. 2011 Aug 11;71(3):425-32 [PMID: 21835340]
  12. J Neurosci. 2008 Jul 23;28(30):7520-36 [PMID: 18650330]
  13. Neuron. 2001 Feb;29(2):519-27 [PMID: 11239440]
  14. J Biol Chem. 2006 Mar 24;281(12):7994-8009 [PMID: 16407179]
  15. Brain. 1980 Jun;103(2):221-44 [PMID: 6772266]
  16. J Cell Sci. 2001 Jun;114(Pt 11):2105-13 [PMID: 11493646]
  17. J Comp Neurol. 1997 Aug 18;385(1):95-116 [PMID: 9268119]
  18. Nature. 2001 Feb 8;409(6821):714-20 [PMID: 11217860]
  19. Biomed Eng Online. 2003 May 17;2:13 [PMID: 12801419]
  20. J Physiol. 1962 Jan;160:106-54 [PMID: 14449617]
  21. Science. 1988 Jul 8;241(4862):170-6 [PMID: 3291116]
  22. Philos Trans R Soc Lond B Biol Sci. 2005 Apr 29;360(1456):837-62 [PMID: 15937015]
  23. Science. 1990 Apr 6;248(4951):73-6 [PMID: 2321027]
  24. Neuron. 2007 Oct 25;56(2):327-38 [PMID: 17964249]
  25. Neuron. 1993 Jan;10(1):103-14 [PMID: 8427699]
  26. Nature. 2005 Feb 10;433(7026):597-603 [PMID: 15660108]
  27. Brain. 1997 Apr;120 ( Pt 4):701-22 [PMID: 9153131]
  28. Nature. 2002 Feb 28;415(6875):1030-4 [PMID: 11875571]
  29. Proc Natl Acad Sci U S A. 2003 Jun 10;100(12):7319-24 [PMID: 12777621]
  30. Science. 1992 Jul 31;257(5070):665-9 [PMID: 1496379]
  31. Nature. 1991 Oct 3;353(6343):429-31 [PMID: 1896085]
  32. Cold Spring Harb Symp Quant Biol. 1990;55:265-78 [PMID: 2132820]
  33. Nature. 2005 Feb 24;433(7028):868-73 [PMID: 15729343]

Grants

  1. R01 DA024681/NIDA NIH HHS
  2. R21 NS072483/NINDS NIH HHS
  3. R01 NS065915/NINDS NIH HHS
  4. R21NS072483/NINDS NIH HHS
  5. R01 EY018861/NEI NIH HHS
  6. /Howard Hughes Medical Institute

MeSH Term

Animals
Animals, Newborn
Carbenoxolone
Cell Communication
Clone Cells
Connexin 26
Connexins
Female
Gap Junctions
Male
Mice
Mice, Inbred C57BL
Models, Neurological
Neurons
Visual Cortex

Chemicals

Connexins
Gjb2 protein, mouse
Connexin 26
Carbenoxolone

Word Cloud

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