Literature DB >> 15731004

Re-establishing the regenerative potential of central nervous system axons in postnatal mice.

Kin-Sang Cho1, Liu Yang, Bin Lu, Hong Feng Ma, Xizhong Huang, Milos Pekny, Dong Feng Chen.   

Abstract

At a certain point in development, axons in the mammalian central nervous system lose their ability to regenerate after injury. Using the optic nerve model, we show that this growth failure coincides with two developmental events: the loss of Bcl-2 expression by neurons and the maturation of astrocytes. Before postnatal day 4, when astrocytes are immature, overexpression of Bcl-2 alone supported robust and rapid optic nerve regeneration over long distances, leading to innervation of brain targets by day 4 in mice. As astrocytes matured after postnatal day 4, axonal regeneration was inhibited in mice overexpressing Bcl-2. Concurrent induction of Bcl-2 and attenuation of reactive gliosis reversed the failure of CNS axonal re-elongation in postnatal mice and led to rapid axonal regeneration over long distances and reinnervation of the brain targets by a majority of severed optic nerve fibers up to 2 weeks of age. These results suggest that an early postnatal downregulation of Bcl-2 and post-traumatic reactive gliosis are two important elements of axon regenerative failure in the CNS.

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Year:  2005        PMID: 15731004      PMCID: PMC1351228          DOI: 10.1242/jcs.01658

Source DB:  PubMed          Journal:  J Cell Sci        ISSN: 0021-9533            Impact factor:   5.285


  48 in total

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Authors:  S J Davies; D R Goucher; C Doller; J Silver
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Review 2.  The relationship between neuronal survival and regeneration.

Authors:  J L Goldberg; B A Barres
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Journal:  EMBO J       Date:  2005-02-17       Impact factor: 11.598

Review 4.  Regeneration in the spinal cord.

Authors:  B S Bregman
Journal:  Curr Opin Neurobiol       Date:  1998-12       Impact factor: 6.627

5.  Regeneration of adult axons in white matter tracts of the central nervous system.

Authors:  S J Davies; M T Fitch; S P Memberg; A K Hall; G Raisman; J Silver
Journal:  Nature       Date:  1997 Dec 18-25       Impact factor: 49.962

Review 6.  Understanding glial abnormalities associated with myelin deficiency in the jimpy mutant mouse.

Authors:  J M Vela; B González; B Castellano
Journal:  Brain Res Brain Res Rev       Date:  1998-03

Review 7.  Why do mature CNS neurons of mammals fail to re-establish connections following injury--functions of bcl-2.

Authors:  D F Chen; S Tonegawa
Journal:  Cell Death Differ       Date:  1998-10       Impact factor: 15.828

8.  Bcl-2 influences axonal growth rate in embryonic sensory neurons.

Authors:  M Hilton; G Middleton; A M Davies
Journal:  Curr Biol       Date:  1997-10-01       Impact factor: 10.834

9.  Optic nerve crush: axonal responses in wild-type and bcl-2 transgenic mice.

Authors:  S Chierzi; E Strettoi; M C Cenni; L Maffei
Journal:  J Neurosci       Date:  1999-10-01       Impact factor: 6.167

10.  Abnormal reaction to central nervous system injury in mice lacking glial fibrillary acidic protein and vimentin.

Authors:  M Pekny; C B Johansson; C Eliasson; J Stakeberg; A Wallén; T Perlmann; U Lendahl; C Betsholtz; C H Berthold; J Frisén
Journal:  J Cell Biol       Date:  1999-05-03       Impact factor: 10.539

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  39 in total

Review 1.  Krüppel-like transcription factors in the nervous system: novel players in neurite outgrowth and axon regeneration.

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3.  Dynamic patterns of histone lysine methylation in the developing retina.

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Journal:  Invest Ophthalmol Vis Sci       Date:  2010-07-29       Impact factor: 4.799

4.  Calpastatin overexpression protects axonal transport in an in vivo model of traumatic axonal injury.

Authors:  Marek Ma; Frances S Shofer; Robert W Neumar
Journal:  J Neurotrauma       Date:  2012-08-29       Impact factor: 5.269

Review 5.  Astrocytes, therapeutic targets for neuroprotection and neurorestoration in ischemic stroke.

Authors:  Zhongwu Liu; Michael Chopp
Journal:  Prog Neurobiol       Date:  2015-10-09       Impact factor: 11.685

6.  Bcl-2 enhances Ca(2+) signaling to support the intrinsic regenerative capacity of CNS axons.

Authors:  Jianwei Jiao; Xizhong Huang; Rachel Ann Feit-Leithman; Rachael Lee Neve; William Snider; Darlene Ann Dartt; Dong Feng Chen
Journal:  EMBO J       Date:  2005-02-17       Impact factor: 11.598

7.  Complement Peptide C3a Promotes Astrocyte Survival in Response to Ischemic Stress.

Authors:  Noriko Shinjyo; Yolanda de Pablo; Milos Pekny; Marcela Pekna
Journal:  Mol Neurobiol       Date:  2015-05-14       Impact factor: 5.590

8.  Beneficial effects of gfap/vimentin reactive astrocytes for axonal remodeling and motor behavioral recovery in mice after stroke.

Authors:  Zhongwu Liu; Yi Li; Yisheng Cui; Cynthia Roberts; Mei Lu; Ulrika Wilhelmsson; Milos Pekny; Michael Chopp
Journal:  Glia       Date:  2014-07-15       Impact factor: 7.452

9.  Attenuating astrocyte activation accelerates plaque pathogenesis in APP/PS1 mice.

Authors:  Andrew W Kraft; Xiaoyan Hu; Hyejin Yoon; Ping Yan; Qingli Xiao; Yan Wang; So Chon Gil; Jennifer Brown; Ulrika Wilhelmsson; Jessica L Restivo; John R Cirrito; David M Holtzman; Jungsu Kim; Milos Pekny; Jin-Moo Lee
Journal:  FASEB J       Date:  2012-10-04       Impact factor: 5.191

10.  SOCS3 deletion promotes optic nerve regeneration in vivo.

Authors:  Patrice D Smith; Fang Sun; Kevin Kyungsuk Park; Bin Cai; Chen Wang; Kenichiro Kuwako; Irene Martinez-Carrasco; Lauren Connolly; Zhigang He
Journal:  Neuron       Date:  2009-12-10       Impact factor: 17.173

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