Literature DB >> 14722615

Axonal degeneration in paraplegin-deficient mice is associated with abnormal mitochondria and impairment of axonal transport.

Fatima Ferreirinha1, Angelo Quattrini, Marinella Pirozzi, Valentina Valsecchi, Giorgia Dina, Vania Broccoli, Alberto Auricchio, Fiorella Piemonte, Giulia Tozzi, Laura Gaeta, Giorgio Casari, Andrea Ballabio, Elena I Rugarli.   

Abstract

In several neurodegenerative diseases, axonal degeneration occurs before neuronal death and contributes significantly to patients' disability. Hereditary spastic paraplegia (HSP) is a genetically heterogeneous condition characterized by selective degeneration of axons of the corticospinal tracts and fasciculus gracilis. HSP may therefore be considered an exemplary disease to study the local programs mediating axonal degeneration. We have developed a mouse model for autosomal recessive HSP due to mutations in the SPG7 gene encoding the mitochondrial ATPase paraplegin. Paraplegin-deficient mice are affected by a distal axonopathy of spinal and peripheral axons, characterized by axonal swelling and degeneration. We found that mitochondrial morphological abnormalities occurred in synaptic terminals and in distal regions of axons long before the first signs of swelling and degeneration and correlated with onset of motor impairment during a rotarod test. Axonal swellings occur through massive accumulation of organelles and neurofilaments, suggesting impairment of anterograde axonal transport. Retrograde axonal transport is delayed in symptomatic mice. We speculate that local failure of mitochondrial function may affect axonal transport and cause axonal degeneration. Our data suggest that a timely therapeutic intervention may prevent the loss of axons.

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Year:  2004        PMID: 14722615      PMCID: PMC311437          DOI: 10.1172/JCI20138

Source DB:  PubMed          Journal:  J Clin Invest        ISSN: 0021-9738            Impact factor:   14.808


  43 in total

Review 1.  The machinery of mitochondrial inheritance and behavior.

Authors:  M P Yaffe
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Authors:  P Ronner; E Friel; K Czerniawski; S Fränkle
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Authors:  A F Neuwald; L Aravind; J L Spouge; E V Koonin
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4.  Classification of the hereditary ataxias and paraplegias.

Authors:  A E Harding
Journal:  Lancet       Date:  1983-05-21       Impact factor: 79.321

5.  Cholera toxin and wheat germ agglutinin conjugates as neuroanatomical probes: their uptake and clearance, transganglionic and retrograde transport and sensitivity.

Authors:  X C Wan; J Q Trojanowski; J O Gonatas
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Authors:  I Griffiths; M Klugmann; T Anderson; D Yool; C Thomson; M H Schwab; A Schneider; F Zimmermann; M McCulloch; N Nadon; K A Nave
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7.  Modulations of neurofilament axonal transport during the development of rabbit retinal ganglion cells.

Authors:  M Willard; C Simon
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8.  Cerebral ischemia and reperfusion: prevention of brain mitochondrial injury by lidoflazine.

Authors:  R E Rosenthal; F Hamud; G Fiskum; P J Varghese; S Sharpe
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Authors:  K A Shepard; M P Yaffe
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Authors:  G Casari; M De Fusco; S Ciarmatori; M Zeviani; M Mora; P Fernandez; G De Michele; A Filla; S Cocozza; R Marconi; A Dürr; B Fontaine; A Ballabio
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