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Axonal MRNA in Uninjured and Regenerating Cortical Mammalian Axons

Overview
Journal J Neurosci
Specialty Neurology
Date 2009 Apr 17
PMID 19369540
Citations 189
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Abstract

Using a novel microfluidic chamber that allows the isolation of axons without contamination by nonaxonal material, we have for the first time purified mRNA from naive, matured CNS axons, and identified the presence of >300 mRNA transcripts. We demonstrate that the transcripts are axonal in nature, and that many of the transcripts present in uninjured CNS axons overlap with those previously identified in PNS injury-conditioned DRG axons. The axonal transcripts detected in matured cortical axons are enriched for protein translational machinery, transport, cytoskeletal components, and mitochondrial maintenance. We next investigated how the axonal mRNA pool changes after axotomy, revealing that numerous gene transcripts related to intracellular transport, mitochondria and the cytoskeleton show decreased localization 2 d after injury. In contrast, gene transcripts related to axonal targeting and synaptic function show increased localization in regenerating cortical axons, suggesting that there is an increased capacity for axonal outgrowth and targeting, and increased support for synapse formation and presynaptic function in regenerating CNS axons after injury. Our data demonstrate that CNS axons contain many mRNA species of diverse functions, and suggest that, like invertebrate and PNS axons, CNS axons synthesize proteins locally, maintaining a degree of autonomy from the cell body.

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References
1.
Olsson T, Kristensson K, Ljungdahl A, Maehlen J, Holmdahl R, Klareskog L . Gamma-interferon-like immunoreactivity in axotomized rat motor neurons. J Neurosci. 1989; 9(11):3870-5. PMC: 6569937. View

2.
Boulanger L, Shatz C . Immune signalling in neural development, synaptic plasticity and disease. Nat Rev Neurosci. 2004; 5(7):521-31. DOI: 10.1038/nrn1428. View

3.
Gioio A, Eyman M, Zhang H, Lavina Z, Giuditta A, Kaplan B . Local synthesis of nuclear-encoded mitochondrial proteins in the presynaptic nerve terminal. J Neurosci Res. 2001; 64(5):447-53. DOI: 10.1002/jnr.1096. View

4.
Verma P, Chierzi S, Codd A, Campbell D, Meyer R, Holt C . Axonal protein synthesis and degradation are necessary for efficient growth cone regeneration. J Neurosci. 2005; 25(2):331-42. PMC: 3687202. DOI: 10.1523/JNEUROSCI.3073-04.2005. View

5.
Weiner O, Zorn A, Krieg P, Bittner G . Medium weight neurofilament mRNA in goldfish Mauthner axoplasm. Neurosci Lett. 1996; 213(2):83-6. PMC: 2830807. DOI: 10.1016/0304-3940(96)12860-3. View