Review of the Multiple Aspects of Neurofilament Functions, and their Possible Contribution to Neurodegeneration

Neurofilaments (NF) are the most abundant cytoskeletal component of large myelinated axons from adult central and peripheral nervous system. Here, we provide an overview of the complementary approaches, including biochemistry, cell biology and transgenic technology that were used to investigate the assembly, axonal transport and functions of NF in normal and pathological situations. Following their synthesis and assembly in the cell body, NFs are transported along the axon. This process is finely regulated via phosphorylation of the carboxy-terminal part of the two high-molecular-weight subunits of NF. The correct formation of an axonal network of NF is crucial for the establishment and maintenance of axonal calibre and consequently for the optimisation of conduction velocity. The frequent disorganisation of NF network observed in several neuropathologies support their contribution. However, despite the presence of NF mutations found in some patients, the exact relations between these mutations, the abnormal NF organisation and the pathological process remain a challenging field of investigation.

[1]  G. Lynch,et al.  Distribution of calcium‐activated protease calpain in the rat brain , 1990, The Journal of comparative neurology.

[2]  H. Pant,et al.  Neurofilament protein synthesis and phosphorylation , 2000, Journal of neurocytology.

[3]  H. Pant Dephosphorylation of neurofilament proteins enhances their susceptibility to degradation by calpain. , 1988, The Biochemical journal.

[4]  Ueli Aebi,et al.  Intermediate filaments: from cell architecture to nanomechanics , 2007, Nature Reviews Molecular Cell Biology.

[5]  Scott T. Brady,et al.  A novel brain ATPase with properties expected for the fast axonal transport motor , 1985, Nature.

[6]  R. Nixon,et al.  Posttranslational modification of a neurofilament protein during axoplasmic transport: implications for regional specialization of CNS axons , 1982, The Journal of cell biology.

[7]  Sanjay Kumar,et al.  Modulation of repulsive forces between neurofilaments by sidearm phosphorylation. , 2004, Biochemical and biophysical research communications.

[8]  M. Sacher,et al.  Increased phosphorylation of the amino-terminal domain of the low molecular weight neurofilament subunit in okadaic acid-treated neurons. , 1994, The Journal of biological chemistry.

[9]  J W Griffin,et al.  Control of axonal caliber by neurofilament transport , 1984, The Journal of cell biology.

[10]  J. Clark,et al.  The influence of nodal constriction on conduction velocity in myelinated nerve fibers. , 1993, Neuroreport.

[11]  M. Somerville,et al.  Neurofilament Light and Polyadenylated mRNA Levels Are Decreased in Amyotrophic Lateral Sclerosis Motor Neurons , 1994, Journal of neuropathology and experimental neurology.

[12]  M. Pappolla Lewy bodies of Parkinson's disease. Immune electron microscopic demonstration of neurofilament antigens in constituent filaments. , 1986, Archives of pathology & laboratory medicine.

[13]  Elaine Fuchs,et al.  Integrators of the Cytoskeleton that Stabilize Microtubules , 1999, Cell.

[14]  G. Elder,et al.  Expression of human mid-sized neurofilament subunit in transgenic mice. , 1992, Brain research. Molecular brain research.

[15]  W. Schlaepfer,et al.  An Immunoblot Study of Neurofilament Degradation In Situ and During Calcium‐Activated Proteolysis , 1985, Journal of neurochemistry.

[16]  Y. Itoyama,et al.  Myelin-associated glycoprotein demonstrated immunocytochemically in myelin and myelin-forming cells of developing rat. , 1979, Proceedings of the National Academy of Sciences of the United States of America.

[17]  T. Gotow,et al.  The neurofilament middle molecular mass subunit carboxyl-terminal tail domains is essential for the radial growth and cytoskeletal architecture of axons but not for regulating neurofilament transport rate , 2003, The Journal of cell biology.

[18]  A. Hirano Cytopathology of amyotrophic lateral sclerosis. , 1991, Advances in neurology.

[19]  N. Hirokawa,et al.  Molecular architecture of the neurofilament. I. Subunit arrangement of neurofilament L protein in the intermediate-sized filament. , 1990, Journal of molecular biology.

[20]  A Al-Chalabi,et al.  Deletions of the heavy neurofilament subunit tail in amyotrophic lateral sclerosis. , 1999, Human molecular genetics.

[21]  M. Oblinger,et al.  Comparison of changes in β-tubulin and NF gene expression in rat DRG neurons under regeneration-permissive and regeneration-prohibitive conditions , 1994, Brain Research.

[22]  B. Khatra,et al.  Phosphorylation of bovine neurofilament proteins by protein kinase FA (glycogen synthase kinase 3). , 1991, The Journal of biological chemistry.

[23]  W. Parker,et al.  Parkinson's disease transgenic mitochondrial cybrids generate Lewy inclusion bodies , 2004, Journal of neurochemistry.

[24]  G. Hart,et al.  Glycosylation of mammalian neurofilaments. Localization of multiple O-linked N-acetylglucosamine moieties on neurofilament polypeptides L and M. , 1993, The Journal of biological chemistry.

[25]  W. Schlaepfer Calcium-induced degeneration of axoplasm in isolated segments of rat peripheral nerve. , 1974, Brain research.

[26]  C. Shaw,et al.  Charcot-Marie-Tooth disease neurofilament mutations disrupt neurofilament assembly and axonal transport. , 2002, Human molecular genetics.

[27]  L. Sternberger,et al.  Monoclonal antibodies distinguish phosphorylated and nonphosphorylated forms of neurofilaments in situ. , 1983, Proceedings of the National Academy of Sciences of the United States of America.

[28]  D. Price,et al.  Slowing of the axonal transport of neurofilament proteins during development , 1983, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[29]  M. Yahr,et al.  Antineurofilament antibodies in postencephalitic and idiopathic Parkinson's disease , 1983, Journal of the Neurological Sciences.

[30]  L. Descarries,et al.  CNS distribution and overexpression of neurofilament light proteins (NF-L) in mice transgenic for the human NF-L: Aberrant accumulation in thalamic perikarya , 1995, Experimental Neurology.

[31]  D. Brooks,et al.  The effect of lead on the avian auditory brainstem. , 2006, Neurotoxicology.

[32]  A. Huxley,et al.  Evidence for saltatory conduction in peripheral myelinated nerve fibres , 1949, The Journal of physiology.

[33]  I. Mohri,et al.  A case of giant axonal neuropathy showing focal aggregation and hypophosphorylation of intermediate filaments , 1998, Brain and Development.

[34]  H. Pant,et al.  Bovine neurofilament-enriched preparations contain kinase activity similar to casein kinase I — Neurofilament phosphorylation by casein kinase I (CKI) , 1993, Neuroscience Letters.

[35]  Virginia M. Y. Lee,et al.  Myelin-Associated Glycoprotein Is a Myelin Signal that Modulates the Caliber of Myelinated Axons , 1998, The Journal of Neuroscience.

[36]  R. Margolis,et al.  Monoclonal antibody to microtubule-associated STOP protein: affinity purification of neuronal STOP activity and comparison of antigen with activity in neuronal and nonneuronal cell extracts. , 1989, Biochemistry.

[37]  L. Autilio‐Gambetti,et al.  Giant axonal neuropathy: acceleration of neurofilament transport in optic axons. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[38]  R. Shoeman,et al.  Sites of nucleic acid binding in type I-IV intermediate filament subunit proteins. , 2001, Biochemistry.

[39]  Q. Zhu,et al.  Absence of neurofilaments reduces the selective vulnerability of motor neurons and slows disease caused by a familial amyotrophic lateral sclerosis-linked superoxide dismutase 1 mutant. , 1998, Proceedings of the National Academy of Sciences of the United States of America.

[40]  R. Nixon,et al.  Oligodendroglia Regulate the Regional Expansion of Axon Caliber and Local Accumulation of Neurofilaments during Development Independently of Myelin Formation , 1996, The Journal of Neuroscience.

[41]  J. Trojanowski,et al.  Alzheimer disease tangles share immunological similarities with multiphosphorylation repeats in the two large neurofilament proteins. , 1988, Proceedings of the National Academy of Sciences of the United States of America.

[42]  Sameer B. Shah,et al.  NF-M is an essential target for the myelin-directed “outside-in” signaling cascade that mediates radial axonal growth , 2003, The Journal of cell biology.

[43]  M. Glicksman,et al.  Posttranslational modification of neurofilament polypeptides in rabbit retina. , 1987, Journal of neurobiology.

[44]  M. Poo,et al.  Diffusional transport of macromolecules in developing nerve processes , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[45]  J. Walton,et al.  Lead exposure during development results in increased neurofilament phosphorylation, neuritic beading, and temporal processing deficits within the murine auditory brainstem , 2008, The Journal of comparative neurology.

[46]  D. W. Sickles,et al.  Toxic axonal degeneration occurs independent of neurofilament accumulation , 1994, Journal of neuroscience research.

[47]  Q. Zhu,et al.  Disruption of Type IV Intermediate Filament Network in Mice Lacking the Neurofilament Medium and Heavy Subunits , 1999, Journal of neurochemistry.

[48]  Jeffrey A. Cohen,et al.  Neurofilament mRNA is reduced in Parkinson's disease substantia nigra pars compacta neurons , 1993, The Journal of comparative neurology.

[49]  R. Lasek,et al.  The slow component of axonal transport. Identification of major structural polypeptides of the axon and their generality among mammalian neurons , 1975, The Journal of cell biology.

[50]  T. Tabira,et al.  Giant axonal neuropathy , 1975, Neurology.

[51]  J. Julien,et al.  Defective axonal transport in a transgenic mouse model of amyotrophic lateral sclerosis , 1995, Nature.

[52]  T. Shea,et al.  Dynein mediates retrograde neurofilament transport within axons and anterograde delivery of NFs from perikarya into axons: regulation by multiple phosphorylation events. , 2006, Cell motility and the cytoskeleton.

[53]  H. Sakai,et al.  Network formation by neurofilament-induced polymerization of tubulin: 200K subunit of neurofilament triplet promotes nucleation of tubulin polymerization and enhances microtubule assembly. , 1983, Journal of biochemistry.

[54]  M. Polymeropoulos,et al.  Deletions in the Parkin gene and genetic heterogeneity in a Greek family with early onset Parkinson’s disease , 1998, Human Genetics.

[55]  M Rydmark,et al.  Electron microscopic serial section analysis of nodes of Ranvier in lumbosacral spinal roots of the cat: ultrastructural organization of nodal compartments in fibres of different sizes , 1983, Journal of neurocytology.

[56]  D. Selkoe,et al.  Recognition of Alzheimer paired helical filaments by monoclonal neurofilament antibodies is due to crossreaction with tau protein. , 1987, Proceedings of the National Academy of Sciences of the United States of America.

[57]  J. Julien,et al.  Myosin Va binding to neurofilaments is essential for correct myosin Va distribution and transport and neurofilament density , 2002, The Journal of cell biology.

[58]  M. Oblinger,et al.  Corticospinal neurons exhibit a novel pattern of cytoskeletal gene expression after injury , 1991, Journal of neuroscience research.

[59]  H. Zimmermann,et al.  Membrane proteins of synaptic vesicles and cytoskeletal specializations at the node of Ranvier in electric ray and rat , 1989, Cell and Tissue Research.

[60]  P. Janmey,et al.  Mechanisms of Mitochondria-Neurofilament Interactions , 2003, The Journal of Neuroscience.

[61]  P. Wong,et al.  Neurofilaments are obligate heteropolymers in vivo , 1993, The Journal of cell biology.

[62]  R. Nixon,et al.  Identification of Ser-55 as a major protein kinase A phosphorylation site on the 70-kDa subunit of neurofilaments. Early turnover during axonal transport. , 1991, The Journal of biological chemistry.

[63]  H. Kretzschmar,et al.  Giant axonal neuropathy , 1972, Acta Neuropathologica.

[64]  Kimberly L. Walker,et al.  Loss of Neurofilaments Alters Axonal Growth Dynamics , 2001, The Journal of Neuroscience.

[65]  M. Cobb,et al.  Mitogen-activated protein (MAP) kinase pathways: regulation and physiological functions. , 2001, Endocrine reviews.

[66]  Ping Li,et al.  Overexpression of neurofilament H disrupts normal cell structure and function , 2002, Journal of neuroscience research.

[67]  J. Hoh,et al.  Entropic exclusion by neurofilament sidearms: a mechanism for maintaining interfilament spacing. , 1997, Biochemistry.

[68]  M. Oblinger,et al.  Changes in neurofilament gene expression occur after axotomy of dorsal root ganglion neurons: Anin situ hybridization study , 1987, Metabolic Brain Disease.

[69]  L. Sternberger,et al.  Varying degrees of phosphorylation determine microheterogeneity of the heavy neurofilament polypeptide (Nf-H) , 1987, Journal of Neuroimmunology.

[70]  R. Liem,et al.  The G336S Variant in the Human Neurofilament‐M Gene Does Not Affect Its Assembly or Distribution: Importance of the Functional Analysis of Neurofilament Variants , 2004, Journal of neuropathology and experimental neurology.

[71]  Veeranna,et al.  Activation of mitogen-activated protein kinases (Erk1 and Erk2) cascade results in phosphorylation of NF-M tail domains in transfected NIH 3T3 cells. , 1999, European journal of biochemistry.

[72]  David J. Aidley The ionic basis of nervous conduction , 1998 .

[73]  M. Gurney,et al.  Transgenic mice carrying a human mutant superoxide dismutase transgene develop neuronal cytoskeletal pathology resembling human amyotrophic lateral sclerosis lesions. , 1996, Proceedings of the National Academy of Sciences of the United States of America.

[74]  T. Crawford,et al.  Neurofilament distribution and organization in the myelinated axons of the peripheral nervous system , 1994, Brain Research.

[75]  S. Komai,et al.  Site‐Specific Phosphorylation of Neurofilament‐L Is Mediated by Calcium/Calmodulin‐Dependent Protein Kinase II in the Apical Dendrites During Long‐Term Potentiation , 2000, Journal of neurochemistry.

[76]  D. Rusakov,et al.  Interactions between brain mitochondria and cytoskeleton: Evidence for specialized outer membrane domains involved in the association of cytoskeleton‐associated proteins to mitochondria in situ and in vitro , 1994, Microscopy research and technique.

[77]  A. Asbury,et al.  Giant axonal neuropathy — A unique case with segmental neurofilamentous masses , 2004, Acta Neuropathologica.

[78]  D. Price,et al.  Immunocytochemical studies of neurofilament antigens in the neurofibrillary pathology induced by aluminum , 1985, Brain Research.

[79]  L. Cork,et al.  Increased expression of neurofilament subunit NF-L produces morphological alterations that resemble the pathology of human motor neuron disease , 1993, Cell.

[80]  A. Peterson,et al.  Neurofilaments Are Nonessential to the Pathogenesis of Toxicant-Induced Axonal Degeneration , 2001, The Journal of Neuroscience.

[81]  B. Szaro,et al.  Increased expression of multiple neurofilament mRNAs during regeneration of vertebrate central nervous system axons , 2003, The Journal of comparative neurology.

[82]  Veeranna,et al.  Phosphorylation of the Head Domain of Neurofilament Protein (NF-M) , 2003, Journal of Biological Chemistry.

[83]  M. Nagao,et al.  Neurofilament-associated protein phosphatase 2A: its possible role in preserving neurofilaments in filamentous states. , 1995, Biochemistry.

[84]  R. Liem,et al.  Mutations in the neurofilament light gene linked to Charcot‐Marie‐Tooth disease cause defects in transport , 2005, Journal of neurochemistry.

[85]  N. Hirokawa,et al.  Slow axonal transport: the subunit transport model. , 1997, Trends in cell biology.

[86]  Nick C Fox,et al.  Neurofilament inclusion body disease: a new proteinopathy? , 2003, Brain : a journal of neurology.

[87]  P. Janmey,et al.  Bidirectional translocation of neurofilaments along microtubules mediated in part by dynein/dynactin. , 2000, Molecular biology of the cell.

[88]  D. Sibley,et al.  Neurofilament-M Interacts with the D1 Dopamine Receptor to Regulate Cell Surface Expression and Desensitization , 2002, The Journal of Neuroscience.

[89]  R. Lazzarini,et al.  The structure and organization of the human heavy neurofilament subunit (NF‐H) and the gene encoding it. , 1988, The EMBO journal.

[90]  A. Aguayo,et al.  Temporal changes in beta-tubulin and neurofilament mRNA levels after transection of adult rat retinal ganglion cell axons in the optic nerve , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[91]  F. Hanefeld,et al.  Giant axonal neuropathy: a generalized disorder of intermediate filaments with longitudinal grooves in the hair. , 1994, Neuropediatrics.

[92]  R. McKay,et al.  CNS stem cells express a new class of intermediate filament protein , 1990, Cell.

[93]  Ram K. Sihag,et al.  Phosphorylation of the amino-terminal head domain of the middle molecular mass 145-kDa subunit of neurofilaments. Evidence for regulation by second messenger-dependent protein kinases. , 1990, The Journal of biological chemistry.

[94]  P. Weiss,et al.  Experiments on the mechanism of nerve growth. , 1948, The Journal of experimental zoology.

[95]  P. Janmey,et al.  Mechanical and structural properties of in vitro neurofilament hydrogels , 2007, European Biophysics Journal.

[96]  T. Gotow,et al.  Aggregate formation and phosphorylation of neurofilament-L Pro22 Charcot-Marie-Tooth disease mutants. , 2006, Human molecular genetics.

[97]  E. Fuchs,et al.  An Essential Cytoskeletal Linker Protein Connecting Actin Microfilaments to Intermediate Filaments , 1996, Cell.

[98]  B. Giasson,et al.  Study of Proline-Directed Protein Kinases Involved in Phosphorylation of the Heavy Neurofilament Subunit , 1997, The Journal of Neuroscience.

[99]  M. Mizutani,et al.  Defective expression of neurofilament protein subunits in hereditary hypotrophic axonopathy of quail. , 1992, Laboratory investigation; a journal of technical methods and pathology.

[100]  U. Dräger,et al.  Early posttranslational modifications of the three neurofilament subunits in mouse retinal ganglion cells: neuronal sites and time course in relation to subunit polymerization and axonal transport. , 1989, Brain research. Molecular brain research.

[101]  Anthony Brown,et al.  The polypeptide composition of moving and stationary neurofilaments in cultured sympathetic neurons. , 2007, Cell motility and the cytoskeleton.

[102]  A. Bizzi,et al.  Phosphorylation of neurofilaments is altered in aluminium intoxication , 2004, Acta Neuropathologica.

[103]  J. Julien,et al.  Expression and assembly of a human neurofilament protein in transgenic mice provide a novel neuronal marking system. , 1987, Genes & development.

[104]  R. D. Howland,et al.  Altered phosphorylation of rat neuronal cytoskeletal proteins in acrylamide induced neuropathy , 1986, Brain Research.

[105]  R. King,et al.  Abnormalities of the axonal cytoskeleton in giant axonal neuropathy , 1988, Journal of neurocytology.

[106]  J. Kong,et al.  Overexpression of neurofilament subunit NF-L and NF-H extends survival of a mouse model for amyotrophic lateral sclerosis , 2000, Neuroscience Letters.

[107]  B. I. Roots Neurofilament accumulation induced in synapses by leupeptin. , 1983, Science.

[108]  Michael P. Sheetz,et al.  Identification of a novel force-generating protein, kinesin, involved in microtubule-based motility , 1985, Cell.

[109]  Y. Agid,et al.  A wide variety of mutations in the parkin gene are responsible for autosomal recessive parkinsonism in Europe. French Parkinson's Disease Genetics Study Group and the European Consortium on Genetic Susceptibility in Parkinson's Disease. , 1999, Human molecular genetics.

[110]  R. Friede,et al.  Axonal cytoskeleton at the nodes of Ranvier , 1991, Journal of neurocytology.

[111]  R. Friede,et al.  How is the exact length of an internode determined? , 1981, Journal of the Neurological Sciences.

[112]  M. Polymeropoulos,et al.  A mutation in the human neurofilament M gene in Parkinson's disease that suggests a role for the cytoskeleton in neuronal degeneration , 2002, Neuroscience Letters.

[113]  H. Goebel,et al.  Hereditary motor sensory neuropathy type II with neurofilament accumulaion: New finding or new disorder? , 1985, Annals of neurology.

[114]  D. Fink,et al.  Phosphorylation-dependent neurofilament epitopes are reduced at the node of Ranvier , 1992, Journal of neurocytology.

[115]  M. Spira,et al.  Real Time Imaging of Calcium-Induced Localized Proteolytic Activity after Axotomy and Its Relation to Growth Cone Formation , 1998, Neuron.

[116]  J. Gu,et al.  Integrin α1β1-Mediated Activation of Cyclin-Dependent Kinase 5 Activity Is Involved in Neurite Outgrowth and Human Neurofilament Protein H Lys-Ser-Pro Tail Domain Phosphorylation , 2000, The Journal of Neuroscience.

[117]  H. Pant,et al.  Characterization of neurofilament-associated protein kinase activities from bovine spinal cord , 1990, Cellular and Molecular Neurobiology.

[118]  J. Julien,et al.  Deregulation of Cdk5 in a Mouse Model of ALS Toxicity Alleviated by Perikaryal Neurofilament Inclusions , 2001, Neuron.

[119]  H. Pant,et al.  Myelin‐associated glycoprotein modulates expression and phosphorylation of neuronal cytoskeletal elements and their associated kinases , 2002, Journal of neurochemistry.

[120]  M. Mizutani,et al.  Hereditary hypotrophic axonopathy with neurofilament deficiency in a mutant strain of the Japanese quail , 2004, Acta Neuropathologica.

[121]  A. Hirano,et al.  Fine Structural Observations of Neurofilamentous Changes in Amyotrophic Lateral Sclerosis , 1984, Journal of neuropathology and experimental neurology.

[122]  R. Hayes,et al.  Neurofilament 68 and neurofilament 200 protein levels decrease after traumatic brain injury. , 1994, Journal of neurotrauma.

[123]  W. Schlaepfer,et al.  Experimental alterations of neurofilaments and neurotubules by calcium and other ions. , 1971, Experimental cell research.

[124]  S. Calvieri,et al.  Giant axonal neuropathy. Endocrinological and histological studies , 1985, European Journal of Pediatrics.

[125]  N. Hirokawa,et al.  Molecular architecture of the neurofilament. II. Reassembly process of neurofilament L protein in vitro. , 1990, Journal of molecular biology.

[126]  J. Rossant,et al.  The mouse dystonia musculorum gene is a neural isoform of bullous pemphigoid antigen 1 , 1995, Nature Genetics.

[127]  Sang Ki Park,et al.  A NUDEL-dependent mechanism of neurofilament assembly regulates the integrity of CNS neurons , 2004, Nature Cell Biology.

[128]  J. Trojanowski,et al.  Purification and characterization of Lewy bodies from the brains of patients with diffuse Lewy body disease. , 1996, The American journal of pathology.

[129]  R. Nixon,et al.  Phosphorylation of neurofilament proteins by protein kinase C , 1988, FEBS letters.

[130]  Moses Rodriguez,et al.  MSP, a trypsin‐like serine protease, is abundantly expressed in the human nervous system , 2001, The Journal of comparative neurology.

[131]  S. Haga,et al.  Presence of neurofilament protein in Alzheimer's neurofibrillary tangles (ANT) , 1979, Acta Neuropathologica.

[132]  H. Vogel,et al.  Gigaxonin Interacts with Tubulin Folding Cofactor B and Controls Its Degradation through the Ubiquitin-Proteasome Pathway , 2005, Current Biology.

[133]  G. Malerba,et al.  Charcot-Marie-Tooth disease type 2E, a disorder of the cytoskeleton. , 2007, Brain : a journal of neurology.

[134]  B. Trapp,et al.  The myelin-associated glycoprotein is enriched in multivesicular bodies and periaxonal membranes of actively myelinating oligodendrocytes , 1989, The Journal of cell biology.

[135]  R. Gobbelé,et al.  Mutation analysis of the neurofilament M gene in Parkinson's disease , 2003, Neuroscience Letters.

[136]  L. Descarries,et al.  Abnormal perikaryal accumulation of neurofilament light protein in the brain of mice transgenic for the human protein: Sequence of postnatal development , 1995, Neuroscience.

[137]  R A Crowther,et al.  alpha-Synuclein in filamentous inclusions of Lewy bodies from Parkinson's disease and dementia with lewy bodies. , 1998, Proceedings of the National Academy of Sciences of the United States of America.

[138]  Akira Taniguchi,et al.  Advanced Glycation Endproducts in Neurofilament Conglomeration of Motoneurons in Familial and Sporadic Amyotrophic Lateral Sclerosis , 1998, Molecular medicine.

[139]  R. Liem,et al.  Multiple disease‐linked myotubularin mutations cause NFL assembly defects in cultured cells and disrupt myotubularin dimerization , 2008, Journal of neurochemistry.

[140]  G. Elder,et al.  Schwann cells and oligodendrocytes read distinct signals in establishing myelin sheath thickness , 2001, Journal of neuroscience research.

[141]  O. Ohara,et al.  Neurofilament deficiency in quail caused by nonsense mutation in neurofilament-L gene , 1993, The Journal of cell biology.

[142]  G. Elder,et al.  Human midsized neurofilament subunit induces motor neuron disease in transgenic mice , 2003, Experimental Neurology.

[143]  D. Gajdusek,et al.  The 200- and 150-kDa neurofilament proteins react with IgG autoantibodies from chimpanzees with kuru or Creutzfeldt-Jakob disease; a 62-kDa neurofilament-associated protein reacts with sera from sheep with natural scrapie. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[144]  W. Tetzlaff,et al.  Response of facial and rubrospinal neurons to axotomy: changes in mRNA expression for cytoskeletal proteins and GAP-43 , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[145]  Jonathan D Cooper,et al.  p38α stress-activated protein kinase phosphorylates neurofilaments and is associated with neurofilament pathology in amyotrophic lateral sclerosis , 2004, Molecular and Cellular Neuroscience.

[146]  R. Margolis,et al.  Rapid disassembly of cold-stable microtubules by calmodulin. , 1981, Proceedings of the National Academy of Sciences of the United States of America.

[147]  Bin Zhang,et al.  Requirement of Heavy Neurofilament Subunit in the Development of Axons with Large Calibers , 1998, The Journal of cell biology.

[148]  K. Weber,et al.  Self-assembly in Vitro of the 68,000 molecular weight component of the mammalian neurofilament triplet proteins into intermediate-sized filaments. , 1981, Journal of molecular biology.

[149]  R. Nixon,et al.  Serine‐23 Is a Major Protein Kinase A Phosphorylation Site on the Amino‐Terminal Head Domain of the Middle Molecular Mass Subunit of Neurofilament Proteins , 1999, Journal of neurochemistry.

[150]  T. Gotow,et al.  Macromolecular structure of reassembled neurofilaments as revealed by the quick-freeze deep-etch mica method: difference between NF-M and NF-H subunits in their ability to form cross-bridges. , 1992, European journal of cell biology.

[151]  R. Lasek,et al.  Axotomy-induced alterations in the synthesis and transport of neurofilaments and microtubules in dorsal root ganglion cells , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[152]  P. Mulvihill,et al.  Filaments of Lewy bodies contain insoluble cytoskeletal elements. , 1992, The American journal of pathology.

[153]  Sangmook Lee,et al.  Hypophosphorylated neurofilament subunits undergo axonal transport more rapidly than more extensively phosphorylated subunits in situ. , 2000, Cell motility and the cytoskeleton.

[154]  R. Nixon,et al.  Multiple phosphorylated variants of the high molecular mass subunit of neurofilaments in axons of retinal cell neurons: characterization and evidence for their differential association with stationary and moving neurofilaments , 1988, The Journal of cell biology.

[155]  P. Coulombe,et al.  Intermediate filament scaffolds fulfill mechanical, organizational, and signaling functions in the cytoplasm. , 2007, Genes & development.

[156]  D. Zochodne,et al.  Accelerated diabetic neuropathy in axons without neurofilaments. , 2004, Brain : a journal of neurology.

[157]  J. Hardy,et al.  Mutation analysis of patients with neuronal intermediate filament inclusion disease (NIFID) , 2006, Neurobiology of Aging.

[158]  D. Selkoe,et al.  Recognition of Alzheimer paired helical filaments by monoclonal neurofilament antibodies is due to cross-reaction with tau protein , 1987 .

[159]  L. Descarries,et al.  Severe neuronal losses with age in the parietal cortex and ventrobasal thalamus of mice transgenic for the human NF‐L neurofilament protein , 1999, The Journal of comparative neurology.

[160]  J. Slade,et al.  Novel insertion in the KSP region of the neurofilament heavy gene in amyotrophic lateral sclerosis (ALS) , 1998, Neuroreport.

[161]  T. Shea,et al.  Multiple interactions of aluminum with neurofilament subunits: Regulation by phosphate‐dependent interactions between C‐terminal extensions of the high and middle molecular weight subunits , 1994, Journal of neuroscience research.

[162]  J. Trojanowski,et al.  Clinical and neuropathologic variation in neuronal intermediate filament inclusion disease , 2004, Neurology.

[163]  W. Schlaepfer,et al.  Circulating autoantibodies to the 200,000-dalton protein of neurofilaments in the serum of healthy individuals. , 1985, Science.

[164]  L. Sternberger,et al.  Phosphorylation protects neurofilaments against proteolysis , 1987, Journal of Neuroimmunology.

[165]  H. Wiśniewski,et al.  Purification and characterization of two forms of Ca2+-activated neutral protease from calf brain. , 1983, The Journal of biological chemistry.

[166]  Lei Wang,et al.  Rapid movement of axonal neurofilaments interrupted by prolonged pauses , 2000, Nature Cell Biology.

[167]  J. H. Wang,et al.  Brain proline-directed protein kinase is a neurofilament kinase which displays high sequence homology to p34cdc2. , 1992, The Journal of biological chemistry.

[168]  I. Grundke‐Iqbal,et al.  Regulation between O‐GlcNAcylation and phosphorylation of neurofilament‐M and their dysregulation in Alzheimer disease , 2008, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.

[169]  K. Kaga,et al.  Auditory nerve fiber differences in the normal and neurofilament deficient Japanese quail , 2001, Hearing Research.

[170]  G. Rouleau,et al.  Analysis of the KSP repeat of the neurofilament heavy subunit in familial amyotrophic lateral sclerosis , 1996, Neurology.

[171]  D. Nelson,et al.  The human mid‐size neurofilament subunit: a repeated protein sequence and the relationship of its gene to the intermediate filament gene family. , 1987, The EMBO journal.

[172]  D. Bulman,et al.  Neurofilament M gene in a French-Canadian Population with Parkinson’s Disease , 2005, Canadian Journal of Neurological Sciences / Journal Canadien des Sciences Neurologiques.

[173]  T. Crawford,et al.  Anti-myelin-associated glycoprotein antibodies alter neurofilament spacing. , 2002, Brain : a journal of neurology.

[174]  M. H. Brill,et al.  Conduction velocity and spike configuration in myelinated fibres: computed dependence on internode distance. , 1977, Journal of neurology, neurosurgery, and psychiatry.

[175]  J. Leterrier,et al.  Possible involvement of ubiquitination in neurofilament degradation. , 1995, Biochemical and biophysical research communications.

[176]  Virginia M. Y. Lee,et al.  Mice with disrupted midsized and heavy neurofilament genes lack axonal neurofilaments but have unaltered numbers of axonal microtubules , 1999, Journal of neuroscience research.

[177]  P. Traub,et al.  Intermediate (10 nm) filament proteins and the Ca2+-activated proteinase specific for vimentin and desmin in the cells from fish to man: an example of evolutionary conservation. , 1982, Journal of cell science.

[178]  A. Taniguchi,et al.  Role of SOD-1 and nitric oxide/cyclic GMP cascade on neurofilament aggregation in ALS/MND , 1996, Journal of the Neurological Sciences.

[179]  L. Bruijn,et al.  Sequence variants in human neurofilament proteins: Absence of linkage to familial amyotrophic lateral sclerosis , 1996, Annals of neurology.

[180]  J. Julien,et al.  Formation of Intermediate Filament Protein Aggregates with Disparate Effects in Two Transgenic Mouse Models Lacking the Neurofilament Light Subunit , 2000, The Journal of Neuroscience.

[181]  Scott T. Brady,et al.  Changes in Microtubule Stability and Density in Myelin-Deficient Shiverer Mouse CNS Axons , 2001, The Journal of Neuroscience.

[182]  W. Schlote,et al.  Generalized giant axonal neuropathy , 1977, Acta Neuropathologica.

[183]  P. Traub,et al.  Interactionin vitro of the neurofilament triplet proteins from porcine spinal cord with natural RNA and DNA , 1985, Molecular Biology Reports.

[184]  R. Margolis,et al.  Cloning, expression, and properties of the microtubule-stabilizing protein STOP. , 1996, Proceedings of the National Academy of Sciences of the United States of America.

[185]  R. Berry,et al.  Nitration in neurodegeneration: deciphering the "Hows" "nYs". , 2007, Biochemistry.

[186]  G. Shaw,et al.  An immunofluorescence microscopical study of the neurofilament triplet proteins, vimentin and glial fibrillary acidic protein within the adult rat brain. , 1981, European journal of cell biology.

[187]  J. Julien,et al.  Peripherin‐mediated death of motor neurons rescued by overexpression of neurofilament NF‐H proteins , 2003, Journal of neurochemistry.

[188]  W. Blakemore,et al.  The relationship between internodal length and fibre diameter in the spinal cord of the cat , 1980, Journal of the Neurological Sciences.

[189]  J. Julien,et al.  Disruption of the NF-H Gene Increases Axonal Microtubule Content and Velocity of Neurofilament Transport: Relief of Axonopathy Resulting from the Toxin β,β′-Iminodipropionitrile , 1998, The Journal of cell biology.

[190]  K. Okamoto,et al.  Identification of nitrated proteins in the normal rat brain using a proteomics approach , 2005, Neurological research.

[191]  H. Gainer,et al.  Properties of a calcium-activated protease in squid axoplasm which selectively degrades neurofilament proteins. , 1980, Journal of neurobiology.

[192]  R. Nixon,et al.  Multiple fates of newly synthesized neurofilament proteins: evidence for a stationary neurofilament network distributed nonuniformly along axons of retinal ganglion cell neurons , 1986, The Journal of cell biology.

[193]  R. Goldman,et al.  Alterations in neural intermediate filament organization: functional implications and the induction of pathological changes related to motor neuron disease. , 1996, Journal of cell science.

[194]  C. Angiari,et al.  Giant axon and neurofilament accumulation in Charcot–Marie–Tooth disease type 2E , 2004, Neurology.

[195]  R. Margolis,et al.  Ca(2+)-calmodulin regulated effectors of microtubule stability in bovine brain. , 1992, Biochemistry.

[196]  T. Murachi,et al.  [Calpain and calpastatin]. , 1983, Rinsho byori. The Japanese journal of clinical pathology.

[197]  C. Shaw,et al.  p38alpha stress-activated protein kinase phosphorylates neurofilaments and is associated with neurofilament pathology in amyotrophic lateral sclerosis. , 2004, Molecular and cellular neurosciences.

[198]  M. Sabri,et al.  Acrylamide alters neurofilament protein gene expression in rat brain , 1994, Neurochemical Research.

[199]  T. Shea,et al.  Aluminum inhibits neurofilament protein degradation by multiple cytoskeleton‐associated proteases , 1992, FEBS letters.

[200]  A. Barthelaix,et al.  Stable Tubule Only Polypeptides (STOP) Proteins Co‐Aggregate with Spheroid Neurofilaments in Amyotrophic Lateral Sclerosis , 2003, Journal of neuropathology and experimental neurology.

[201]  D. Cleveland,et al.  Neurofilament and tubulin expression recapitulates the developmental program during axonal regeneration: induction of a specific beta-tubulin isotype. , 1988, Proceedings of the National Academy of Sciences of the United States of America.

[202]  T. Sakaguchi,et al.  Reduced diameter and conduction velocity of myelinated fibers in the sciatic nerve of a neurofilament-deficient mutant quail , 1993, Neuroscience Letters.

[203]  L. Sternberger,et al.  Association of synapsin I with neuronal cytoskeleton. Identification in cytoskeletal preparations in vitro and immunocytochemical localization in brain of synapsin I. , 1986, The Journal of biological chemistry.

[204]  K. Angelides,et al.  Characterization of mammalian neurofilament triplet proteins. Subunit stoichiometry and morphology of native and reconstituted filaments. , 1985, The Journal of biological chemistry.

[205]  D. Price,et al.  Alterations in levels of mRNAs coding for neurofilament protein subunits during regeneration , 1990, Experimental Neurology.

[206]  J. Trojanowski,et al.  Neurofilaments and Orthograde Transport Are Reduced in Ventral Root Axons of Transgenic Mice that Express Human SOD1 with a G93A Mutation , 1997, The Journal of cell biology.

[207]  A. Dahlström,et al.  Intra-axonal transport of transmitters in mammalian neurons. , 1975, Journal of neural transmission.

[208]  P. Janmey,et al.  Mechanical Effects of Neurofilament Cross-bridges , 1996, The Journal of Biological Chemistry.

[209]  S. Harding,et al.  Characterization of two proteolytically derived soluble polypeptides from the neurofilament triplet components NFM and NFH. , 1989, The Biochemical journal.

[210]  J. Hursh CONDUCTION VELOCITY AND DIAMETER OF NERVE FIBERS , 1939 .

[211]  D. Houle,et al.  Different posttranscriptional controls for the human neurofilament light and heavy genes in transgenic mice. , 1993, Brain research. Molecular brain research.

[212]  Mark J. Bowser,et al.  The TSC1 Tumor Suppressor Hamartin Interacts with Neurofilament-L and Possibly Functions as a Novel Integrator of the Neuronal Cytoskeleton* , 2002, The Journal of Biological Chemistry.

[213]  Veeranna,et al.  Neuronal Cyclin‐Dependent Kinase‐5 Phosphorylation Sites in Neurofilament Protein (NF‐H) Are Dephosphorylated by Protein Phosphatase 2A , 1995, Journal of neurochemistry.

[214]  H. Ishikawa,et al.  MITOSIS AND INTERMEDIATE-SIZED FILAMENTS IN DEVELOPING SKELETAL MUSCLE , 1968, The Journal of cell biology.

[215]  R. Nixon,et al.  Dynamics of neuronal intermediate filaments: a developmental perspective. , 1992, Cell motility and the cytoskeleton.

[216]  J. Julien,et al.  Delayed Maturation of Regenerating Myelinated Axons in Mice Lacking Neurofilaments , 1997, Experimental Neurology.

[217]  M. Oblinger,et al.  A comparison of peripheral and central axotomy effects on neurofilament and tubulin gene expression in rat dorsal root ganglion neurons , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[218]  T. Shea,et al.  Arsenic inhibits neurofilament transport and induces perikaryal accumulation of phosphorylated neurofilaments: Roles of JNK and GSK-3β , 2007, Brain Research.

[219]  R. Liem,et al.  Purification of individual components of the neurofilament triplet: filament assembly from the 70 000-dalton subunit. , 1982, Biochemistry.

[220]  G. Takahashi,et al.  Giant axonal neuropathy: report of two siblings with endocrinological and histological studies. , 1981, Neuropediatrics.

[221]  R. S. Smith,et al.  Myelinated nerve fibers: computed effect of myelin thickness on conduction velocity. , 1970, The American journal of physiology.

[222]  G. Shaw,et al.  Localization of Sites in the Tail Domain of the Middle Molecular Mass Neurofilament Subunit Phosphorylated by a Neurofilament‐Associated Kinase and by Casein Kinase I , 1996, Journal of neurochemistry.

[223]  Veeranna,et al.  α-Internexin Is Structurally and Functionally Associated with the Neurofilament Triplet Proteins in the Mature CNS , 2006, The Journal of Neuroscience.

[224]  J. Julien,et al.  Neurofilament Transport In Vivo Minimally Requires Hetero-Oligomer Formation , 2003, The Journal of Neuroscience.

[225]  G. Perry,et al.  Phosphorylation of Neurofilaments Is Altered in Amyotrophic Lateral Sclerosis , 1988, Journal of neuropathology and experimental neurology.

[226]  L. Autilio‐Gambetti,et al.  Experimental diabetic neuropathy: similar changes of slow axonal transport and axonal size in different animal models , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[227]  M. Lazdunski,et al.  Axonal transport of the voltage-dependent Na+ channel protein identified by its tetrodotoxin binding site in rat sciatic nerves , 1985, Brain Research.

[228]  D. Perl,et al.  Accumulation of Phosphorylated Neurofilaments in Anterior Horn Motoneurons of Amyotrophic Lateral Sclerosis Patients , 1988, Journal of neuropathology and experimental neurology.

[229]  Z. S. Xu,et al.  Identification of serine 473 as a major phosphorylation site in the neurofilament polypeptide NF-L , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[230]  D. Schiffer,et al.  Peripherin immunoreactive structures in amyotrophic lateral sclerosis. , 1993, Laboratory investigation; a journal of technical methods and pathology.

[231]  P. Hollenbeck,et al.  Axonal transport of mitochondria along microtubules and F-actin in living vertebrate neurons , 1995, The Journal of cell biology.

[232]  M. Mizutani,et al.  Acrylamide‐induced Neurotoxicity in the Central Nervous System of Japanese Quails. Comparative Studies of Normal and Neurofilament‐deficient Quails , 1994, Journal of neuropathology and experimental neurology.

[233]  R. Krüger,et al.  Neurofilament L gene is not a genetic factor of sporadic and familial Parkinson’s disease , 2002, Brain Research.

[234]  R. Schmidt,et al.  Axonal cytoskeletal pathology in aged and diabetic human sympathetic autonomic ganglia , 1997, Brain Research.

[235]  Vincent Yau,et al.  Gigaxonin-controlled degradation of MAP1B light chain is critical to neuronal survival , 2005, Nature.

[236]  J. Troncoso,et al.  Metal-catalyzed oxidation of bovine neurofilaments in vitro. , 1995, Free radical biology & medicine.

[237]  J. Julien,et al.  The distribution of phosphorylation sites among identified proteolytic fragments of mammalian neurofilaments. , 1983, The Journal of biological chemistry.

[238]  N. Hirokawa,et al.  Interaction of the tail domain of high molecular weight subunits of neurofilaments with the COOH-terminal region of tubulin and its regulation by tau protein kinase II. , 1993, The Journal of biological chemistry.

[239]  E. Fernández,et al.  Postnatal development of microtubules and neurofilaments in the rat optic nerve: A quantitative study , 1987, The Journal of comparative neurology.

[240]  A. Izmiryan,et al.  Different expression of synemin isoforms in glia and neurons during nervous system development , 2006, Glia.

[241]  J. Gearhart,et al.  Expression of NF-L in both neuronal and nonneuronal cells of transgenic mice: increased neurofilament density in axons without affecting caliber , 1990, The Journal of cell biology.

[242]  R. Lasek,et al.  Axoplasmic transport of labeled proteins in rat ventral motoneurons. , 1968, Experimental neurology.

[243]  D. Cleveland,et al.  Altered axonal architecture by removal of the heavily phosphorylated neurofilament tail domains strongly slows superoxide dismutase 1 mutant-mediated ALS. , 2005, Proceedings of the National Academy of Sciences of the United States of America.

[244]  C. Miller,et al.  Phosphorylation of Neurofilament Heavy‐Chain Side‐Arm Fragments by Cyclin‐Dependent Kinase‐5 and Glycogen Synthase Kinase‐3α in Transfected Cells , 1997, Journal of neurochemistry.

[245]  J. Pollard,et al.  Nerve grafts in the Trembler mouse An electrophysiological and histological study , 1980, Journal of the Neurological Sciences.

[246]  Roland Brandt,et al.  O-Glycosylation of the Tail Domain of Neurofilament Protein M in Human Neurons and in Spinal Cord Tissue of a Rat Model of Amyotrophic Lateral Sclerosis (ALS)* , 2005, Journal of Biological Chemistry.

[247]  S. Meloche,et al.  Inhibition of Growth Factor-induced Protein Synthesis by a Selective MEK Inhibitor in Aortic Smooth Muscle Cells* , 1996, The Journal of Biological Chemistry.

[248]  K. Ishiguro,et al.  Porcine brain neurofilament-H tail domain kinase: its identification as cdk5/p26 complex and comparison with cdc2/cyclin B kinase. , 1995, Cell motility and the cytoskeleton.

[249]  P. Bosco,et al.  Absence of the Mid-sized Neurofilament Subunit Decreases Axonal Calibers, Levels of Light Neurofilament (NF-L), and Neurofilament Content , 1998, The Journal of cell biology.

[250]  R. Liem,et al.  Phosphorylation of the High Molecular Weight Neurofilament Protein (NF-H) by Cdk5 and p35* , 1996, The Journal of Biological Chemistry.

[251]  M. Strong,et al.  Characterization of Neuronal Intermediate Filament Protein Expression in Cervical Spinal Motor Neurons in Sporadic Amyotrophic Lateral Sclerosis (ALS) , 2000, Journal of neuropathology and experimental neurology.

[252]  D A Yphantis,et al.  ATP-induced formation of an associated complex between microtubules and neurofilaments. , 1981, Proceedings of the National Academy of Sciences of the United States of America.

[253]  E. O'ferrall,et al.  Inhibition of Aberrant and Constitutive Phosphorylation of the High‐Molecular‐Mass Neurofilament Subunit by CEP‐1347 (KT7515), an Inhibitor of the Stress‐Activated Protein Kinase Signaling Pathway , 2000, Journal of neurochemistry.

[254]  A. Hays,et al.  Peripherin and Neurofilament Protein Coexist in Spinal Spheroids of Motor Neuron Disease , 1992, Journal of neuropathology and experimental neurology.

[255]  F. Ebner,et al.  Protein serine/threonine phosphatase 1 and 2A associate with and dephosphorylate neurofilaments. , 1997, Brain research. Molecular brain research.

[256]  L. Autilio‐Gambetti,et al.  Experimental diabetic neuropathy: impairment of slow transport with changes in axon cross-sectional area. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[257]  K. G. Young,et al.  Dystonin/Bpag1--a link to what? , 2007, Cell motility and the cytoskeleton.

[258]  C. Marotta,et al.  Posttranslational modification of neurofilament proteins by phosphate during axoplasmic transport in retinal ganglion cell neurons , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[259]  A. Windebank,et al.  Myelination determines the caliber of dorsal root ganglion neurons in culture , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[260]  T. Kadota,et al.  [Neurofilament hypertrophy induced in the rabbit spinal cord after intracisternal injection of aluminum chloride (author's transl)]. , 1978, The Journal of toxicological sciences.

[261]  A. Clark,et al.  Neurofilament and tubulin gene expression in progressive experimental diabetes: failure of synthesis and export by sensory neurons. , 1999, Brain : a journal of neurology.

[262]  J. Zidar,et al.  A novel NF-L mutation Pro22Ser is associated with CMT2 in a large Slovenian family , 2002, Neurogenetics.

[263]  T. Tanaka,et al.  Molecular cloning of a novel trypsin-like serine protease (neurosin) preferentially expressed in brain. , 1997, Biochimica et biophysica acta.

[264]  A. Matus,et al.  Distribution of calpains I and II in rat brain , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[265]  N. Hirokawa,et al.  Structure of the peripheral domains of neurofilaments revealed by low angle rotary shadowing. , 1988, Journal of molecular biology.

[266]  R. Crowther,et al.  α-Synuclein in filamentous inclusions of Lewy bodies from Parkinson’s disease and dementia with Lewy bodies , 1998 .

[267]  J. Julien,et al.  Altered Ionic Conductances in Axons of Transgenic Mouse Expressing the Human Neurofilament Heavy Gene: A Mouse Model of Amyotrophic Lateral Sclerosis , 2000, Experimental Neurology.

[268]  M. Donaghy,et al.  Nonenzymatic glycation of peripheral and central nervous system proteins in experimental diabetes mellitus , 1997, Muscle & nerve.

[269]  L. Pradel,et al.  Interaction domains of neurofilament light chain and brain spectrin. , 1991, The Biochemical journal.

[270]  I. Grundke‐Iqbal,et al.  Phosphatase Activity Toward Abnormally Phosphorylated τ: Decrease in Alzheimer Disease Brain , 1995, Journal of neurochemistry.

[271]  P. Wong,et al.  Pathogenesis of two axonopathies does not require axonal neurofilaments , 1998, Nature.

[272]  H. S. Gasser,et al.  AXON DIAMETERS IN RELATION TO THE SPIKE DIMENSIONS AND THE CONDUCTION VELOCITY IN MAMMALIAN A FIBERS , 1939 .

[273]  H. Gainer,et al.  Calcium‐Activated Proteolysis of Neurofilament Proteins in the Squid Giant Neuron , 1986, Journal of neurochemistry.

[274]  K. Fried,et al.  Myelin sheath thickness and internodal length of nerve fibres in the developing feline inferior alveolar nerve , 1982, Journal of the Neurological Sciences.

[275]  N. Hirokawa,et al.  Visualization of Slow Axonal Transport in Vivo , 1996, Science.

[276]  R. Margolis,et al.  Recycling of cold-stable microtubules: evidence that cold stability is due to substoichiometric polymer blocks. , 1982, Biochemistry.

[277]  R. Margolis,et al.  Purification and assay of a 145-kDa protein (STOP145) with microtubule-stabilizing and motility behavior. , 1986, Proceedings of the National Academy of Sciences of the United States of America.

[278]  I. Grundke‐Iqbal,et al.  Inhibition of protein phosphatase 2A induces phosphorylation and accumulation of neurofilaments in metabolically active rat brain slices , 2003, Neuroscience Letters.

[279]  Jean-Pierre Julien,et al.  Electrophysiological properties of axons in mice lacking neurofilament subunit genes: disparity between conduction velocity and axon diameter in absence of NF-H , 2000, Brain Research.

[280]  V. Meininger,et al.  Variants of the heavy neurofilament subunit are associated with the development of amyotrophic lateral sclerosis. , 1994, Human molecular genetics.

[281]  B. Trapp,et al.  The neuroprotective factor Wlds does not attenuate mutant SOD1-mediated motor neuron disease , 2007, NeuroMolecular Medicine.

[282]  T B Shea,et al.  Kinesin-mediated transport of neurofilament protein oligomers in growing axons. , 1999, Journal of cell science.

[283]  L. Goldman,et al.  Computation of impulse conduction in myelinated fibers; theoretical basis of the velocity-diameter relation. , 1968, Biophysical journal.

[284]  R. Pfeiffer,et al.  Stable interaction between G-actin and neurofilament light subunit in dopaminergic neurons , 1997, Neurochemistry International.

[285]  R. Huganir,et al.  Splice Variant-Specific Interaction of the NMDA Receptor Subunit NR1 with Neuronal Intermediate Filaments , 1998, The Journal of Neuroscience.

[286]  P. Janmey,et al.  The interaction of neurofilaments with the microtubule motor cytoplasmic dynein. , 2004, Molecular biology of the cell.

[287]  R. Lasek,et al.  Cytotypic differences in the protein composition of the axonally transported cytoskeleton in mammalian neurons , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[288]  R. Nixon,et al.  In vivo phosphorylation of distinct domains of the 70-kilodalton neurofilament subunit involves different protein kinases. , 1989, The Journal of biological chemistry.

[289]  J. Lupski,et al.  Mutations in the neurofilament light chain gene (NEFL) cause early onset severe Charcot-Marie-Tooth disease. , 2003, Brain : a journal of neurology.

[290]  E. Hogan,et al.  Increased calpain content and progressive degradation of neurofilament protein in spinal cord injury , 1997, Brain Research.

[291]  R. S. Smith,et al.  Conduction velocity in myelinated nerve fibres of Xenopus laevis , 1970, The Journal of physiology.

[292]  R. Nixon,et al.  Deleting the phosphorylated tail domain of the neurofilament heavy subunit does not alter neurofilament transport rate in vivo , 2006, Neuroscience Letters.

[293]  V. Lee,et al.  Individual neurofilament subunits reassembled in vitro exhibit unique biochemical, morphological and immunological properties , 1991, Brain Research.

[294]  D. Cleveland,et al.  A mutant neurofilament subunit causes massive, selective motor neuron death: Implications for the pathogenesis of human motor neuron disease , 1994, Neuron.

[295]  G. Rubin,et al.  Generation and initial analysis of more than 15,000 full-length human and mouse cDNA sequences , 2002, Proceedings of the National Academy of Sciences of the United States of America.

[296]  R. Nixon,et al.  Differential turnover of phosphate groups on neurofilament subunits in mammalian neurons in vivo. , 1986, The Journal of biological chemistry.

[297]  R. Lazzarini,et al.  mRNA levels of all three neurofilament proteins decline following nerve transection. , 1988, Brain research.

[298]  A. Lajtha,et al.  The breakdown of the individual neurofilament proteins by cathepsin D , 1987, Neurochemical Research.

[299]  M. Selzer,et al.  Recovery of Neurofilament Expression Selectively in Regenerating Reticulospinal Neurons , 1997, The Journal of Neuroscience.

[300]  H. Tanii,et al.  Neurofilament degradation in the nervous system of rats intoxicated with acrylamide, related compounds or 2,5-hexanedione , 1988, Archives of Toxicology.

[301]  S. Shimohama,et al.  m-Calpain (calcium-activated neutral proteinase) in Alzheimer's disease brains , 1998, Neuroscience Letters.

[302]  R. Lasek Bidirectional Transport of Radioactively Labelled Axoplasmic Components , 1967, Nature.

[303]  R. Perrot,et al.  Neurofilament high molecular weight–green fluorescent protein fusion is normally expressed in neurons and transported in axons: A neuronal marker to investigate the biology of neurofilaments , 2006, Neuroscience.

[304]  Xinran Liu,et al.  Abnormal neurofilament transport caused by targeted disruption of neuronal kinesin heavy chain KIF5A , 2003, The Journal of cell biology.

[305]  Y. Wada,et al.  Casein kinase II is responsible for phosphorylation of NF‐L at Ser‐473 , 1999, FEBS letters.

[306]  P. Hoffman,et al.  Altered Gene Expression after Optic Nerve Transection: Reduced Neurofilament Expression as a General Response to Axonal Injury , 1993, Experimental Neurology.

[307]  R. Lasek,et al.  Axonal transport of the cytoplasmic matrix , 1984, The Journal of cell biology.

[308]  H. Zimmermann Accumulation of synaptic vesicle proteins and cytoskeletal specializations at the peripheral node of Ranvier , 1996, Microscopy research and technique.

[309]  V. Tung,et al.  Overexpression of neurofilament subunit M accelerates axonal transport of neurofilaments , 2000, Brain Research.

[310]  H. Pant,et al.  cdc2-like kinase from rat spinal cord specifically phosphorylates KSPXK motifs in neurofilament proteins: isolation and characterization. , 1993, Proceedings of the National Academy of Sciences of the United States of America.

[311]  I. Grundke‐Iqbal,et al.  Phosphoprotein Phosphatase Activities in Alzheimer Disease Brain , 1993, Journal of neurochemistry.

[312]  H. Persson,et al.  Myelinated nerve fibres in the CNS , 1993, Progress in Neurobiology.

[313]  A. Taniguchi,et al.  Serpin=serine protease-like complexes within neurofilament conglomerates of motoneurons in amyotrophic lateral sclerosis , 1998, Journal of the Neurological Sciences.

[314]  D. Howland,et al.  Disruption of Dynein/Dynactin Inhibits Axonal Transport in Motor Neurons Causing Late-Onset Progressive Degeneration , 2002, Neuron.

[315]  C. Gravel,et al.  Extra neurofilament NF-L subunits rescue motor neuron disease caused by overexpression of the human NF-H gene in mice. , 1999, Journal of neuropathology and experimental neurology.

[316]  A. Peterson,et al.  The amount of neurofilaments aggregated in the cell body is controlled by their increased sensitivity to trypsin-like proteases , 2004, Journal of Cell Science.

[317]  Y. Wada,et al.  Domain- and site-specific phosphorylation of bovine NF-L by Rho-associated kinase. , 1998, Biochemical and biophysical research communications.

[318]  E. Wheeler,et al.  Aluminum inhibits neurofilament assembly, cytoskeletal incorporation, and axonal transport. Dynamic nature of aluminum-induced perikaryal neurofilament accumulations as revealed by subunit turnover. , 1997, Molecular and chemical neuropathology.

[319]  A. Fourest-Lieuvin,et al.  STOP Proteins are Responsible for the High Degree of Microtubule Stabilization Observed in Neuronal Cells , 1998, The Journal of cell biology.

[320]  Jean-Pierre Julien,et al.  Neurofilaments in health and disease. , 1998, Progress in nucleic acid research and molecular biology.

[321]  C. Marotta,et al.  Limited proteolytic modification of a neurofilament protein involves a proteinase activated by endogenous levels of calcium , 1983, Brain Research.

[322]  N. Hirokawa,et al.  Dynamics of the neuronal intermediate filaments , 1993, The Journal of cell biology.

[323]  P. Wong,et al.  The rod domain of NF-L determines neurofilament architecture, whereas the end domains specify filament assembly and network formation , 1993, The Journal of cell biology.

[324]  R. Ribchester,et al.  Restricted growth of Schwann cells lacking Cajal bands slows conduction in myelinated nerves , 2004, Nature.

[325]  V. Bennett,et al.  Nearest neighbor analysis for brain synapsin I. Evidence from in vitro reassociation assays for association with membrane protein(s) and the Mr = 68,000 neurofilament subunit. , 1987, The Journal of biological chemistry.

[326]  J. Priestley,et al.  Aberrant neurofilament phosphorylation in sensory neurons of rats with diabetic neuropathy. , 1999, Diabetes.

[327]  I. Grundke‐Iqbal,et al.  Hyperphosphorylation and accumulation of neurofilament proteins in Alzheimer disease brain and in okadaic acid‐treated SY5Y cells , 2001, FEBS letters.

[328]  B. Helfand,et al.  Fast transport of neurofilament protein along microtubules in squid axoplasm. , 2000, Journal of cell science.

[329]  E. Fuchs,et al.  Gene targeting of BPAG1: Abnormalities in mechanical strength and cell migration in stratified epithelia and neurologic degeneration , 1995, Cell.

[330]  Sangmook Lee,et al.  The high and middle molecular weight neurofilament subunits regulate the association of neurofilaments with kinesin: inhibition by phosphorylation of the high molecular weight subunit. , 2005, Brain research. Molecular brain research.

[331]  Peter Jung,et al.  Neurofilaments Switch between Distinct Mobile and Stationary States during Their Transport along Axons , 2007, The Journal of Neuroscience.

[332]  P. Wong,et al.  Assembly properties of dominant and recessive mutations in the small mouse neurofilament (NF-L) subunit , 1990, The Journal of cell biology.

[333]  W. Rushton A theory of the effects of fibre size in medullated nerve , 1951, The Journal of physiology.

[334]  J. Julien,et al.  Reduction of axonal caliber does not alleviate motor neuron disease caused by mutant superoxide dismutase 1. , 2000, Proceedings of the National Academy of Sciences of the United States of America.

[335]  N. Hirokawa,et al.  Kinesin and dynein superfamily proteins and the mechanism of organelle transport. , 1998, Science.

[336]  J W Griffin,et al.  Changes in neurofilament transport coincide temporally with alterations in the caliber of axons in regenerating motor fibers , 1985, The Journal of cell biology.

[337]  G. Bennett,et al.  Identification of Ser‐Pro and Thr‐Pro Phosphorylation Sites in Chicken Neurofilament‐M Tail Domain , 1997, Journal of neurochemistry.

[338]  S. Chin,et al.  Effects of truncated neurofilament proteins on the endogenous intermediate filaments in transfected fibroblasts. , 1991, Journal of cell science.

[339]  L. Sternberger,et al.  Aberrant neurofilament phosphorylation in Alzheimer disease , 1987 .

[340]  K. Tanaka,et al.  Intracellular Ca2+-dependent protease (calpain) and its high-molecular-weight endogenous inhibitor (calpastatin). , 1980, Advances in enzyme regulation.

[341]  G. Elder,et al.  Age-Related Atrophy of Motor Axons in Mice Deficient in the Mid-Sized Neurofilament Subunit , 1999, The Journal of cell biology.

[342]  U Aebi,et al.  Exploring the mechanical behavior of single intermediate filaments. , 2005, Journal of molecular biology.

[343]  H. Vogel,et al.  Gene targeting of GAN in mouse causes a toxic accumulation of microtubule-associated protein 8 and impaired retrograde axonal transport. , 2006, Human molecular genetics.

[344]  G. Hart,et al.  Cytoplasmic O-GlcNAc Modification of the Head Domain and the KSP Repeat Motif of the Neurofilament Protein Neurofilament-H* , 1996, The Journal of Biological Chemistry.

[345]  L. Otvos,et al.  Identification of the major multiphosphorylation site in mammalian neurofilaments. , 1988, Proceedings of the National Academy of Sciences of the United States of America.

[346]  P. Traub,et al.  Interaction in vitro of Non-Epithelial Intermediate Filament Proteins with Histones , 1987, Zeitschrift für Naturforschung C - A Journal of Biosciences.

[347]  M. Swash,et al.  Cytoskeletal abnormalities in motor neuron disease. An immunocytochemical study. , 1989, Brain : a journal of neurology.

[348]  M. Willard,et al.  Modulations of neurofilament axonal transport during the development of rabbit retinal ganglion cells , 1983, Cell.

[349]  R. Nixon,et al.  Phosphorylation on carboxyl terminus domains of neurofilament proteins in retinal ganglion cell neurons in vivo: influences on regional neurofilament accumulation, interneurofilament spacing, and axon caliber , 1994, The Journal of cell biology.

[350]  B. Grafstein,et al.  Intracellular transport in neurons. , 1980, Physiological reviews.

[351]  Scott T. Brady,et al.  Local modulation of neurofilament phosphorylation, axonal caliber, and slow axonal transport by myelinating Schwann cells , 1992, Cell.

[352]  A. Bizzi,et al.  Aluminum effect on slow axonal transport: a novel impairment of neurofilament transport , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[353]  R. Liem,et al.  Effects of Charcot-Marie-Tooth-linked mutations of the neurofilament light subunit on intermediate filament formation , 2002, Journal of Cell Science.

[354]  S. Carpenter Proximal axonal enlargement in motor neuron disease , 1968, Neurology.

[355]  Jia-Jia Liu,et al.  Microtubule-associated protein 1B , 2002, The Journal of cell biology.

[356]  M. Kaplan,et al.  Alpha-internexin, a novel neuronal intermediate filament protein, precedes the low molecular weight neurofilament protein (NF-L) in the developing rat brain , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[357]  E. Gardner,et al.  Formation of 10‐nanometer filaments from the 150k‐dalton neurofilament protein in vitro , 1984, Journal of neuroscience research.

[358]  M. Koenig,et al.  The gene encoding gigaxonin, a new member of the cytoskeletal BTB/kelch repeat family, is mutated in giant axonal neuropathy , 2000, Nature Genetics.

[359]  Elior Peles,et al.  Contactin Orchestrates Assembly of the Septate-like Junctions at the Paranode in Myelinated Peripheral Nerve , 2001, Neuron.

[360]  Veeranna,et al.  Calcium influx and membrane depolarization induce phosphorylation of neurofilament (NF-M) KSP repeats in PC12 cells. , 1999, Brain research. Molecular brain research.

[361]  R. Nixon,et al.  Aluminum Inhibits Calpain‐Mediated Proteolysis and Induces Human Neurofilament Proteins to Form ProteaseResistant High Molecular Weight Complexes , 1990, Journal of neurochemistry.

[362]  J. Trojanowski,et al.  Overexpression of the human NFM subunit in transgenic mice modifies the level of endogenous NFL and the phosphorylation state of NFH subunits , 1995, The Journal of cell biology.

[363]  S. Murayama,et al.  Immunocytochemical and ultrastructural studies of upper motor neurons in amyotrophic lateral sclerosis , 1992, Acta Neuropathologica.

[364]  B. Szaro,et al.  The optic tract and tectal ablation influence the composition of neurofilaments in regenerating optic axons of Xenopus laevis , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[365]  J. Metuzals,et al.  ELECTRON MICROSCOPE AND EXPERIMENTAL INVESTIGATIONS OF THE NEUROFILAMENTOUS NETWORK IN DEITERS' NEURONS , 1974, The Journal of cell biology.

[366]  P. Janmey,et al.  Domain unfolding in neurofilament sidearms: effects of phosphorylation and ATP , 2002, FEBS letters.

[367]  P. Wong,et al.  Characterization of dominant and recessive assembly-defective mutations in mouse neurofilament NF-M , 1990, The Journal of cell biology.

[368]  R. Williams,et al.  Phosphate content of mammalian neurofilaments. , 1982, The Journal of biological chemistry.

[369]  N. Hirokawa,et al.  Cross-linker system between neurofilaments, microtubules and membranous organelles in frog axons revealed by the quick-freeze, deep-etching method , 1982, The Journal of cell biology.

[370]  P. Eagles,et al.  The location of phosphorylation sites and Ca2+-dependent proteolytic cleavage sites on the major neurofilament polypeptides from Myxicola infundibulum. , 1981, The Biochemical journal.

[371]  D. Borchelt,et al.  Axonal Transport of Mutant Superoxide Dismutase 1 and Focal Axonal Abnormalities in the Proximal Axons of Transgenic Mice , 1998, Neurobiology of Disease.

[372]  Anthony Brown,et al.  Neurofilament Polymer Transport in Axons , 2005, The Journal of Neuroscience.

[373]  M. Inagaki,et al.  Role of phosphorylation on the structural dynamics and function of types III and IV intermediate filaments. , 2007, Experimental cell research.

[374]  D. Price,et al.  Neurofilament Antigens in Acrylamide Neuropathy , 1987, Journal of neuropathology and experimental neurology.

[375]  D. Purich,et al.  GTP regeneration influences interactions of microtubules, neurofilaments, and microtubule-associated proteins in vitro. , 1987, The Journal of biological chemistry.

[376]  Scott T. Brady,et al.  Neurofilaments Are Transported Rapidly But Intermittently in Axons: Implications for Slow Axonal Transport , 2000, The Journal of Neuroscience.

[377]  L. Autilio‐Gambetti,et al.  Reorganization of axoplasmic organelles following beta, beta'- iminodipropionitrile administration , 1981, The Journal of cell biology.

[378]  J. Julien,et al.  Progressive neuronopathy in transgenic mice expressing the human neurofilament heavy gene: A mouse model of amyotrophic lateral sclerosis , 1993, Cell.

[379]  A. Peterson,et al.  Neurofilament-deficient axons and perikaryal aggregates in viable transgenic mice expressing a neurofilament-β-galactosidase fusion protein , 1994, Neuron.

[380]  Veeranna,et al.  Mitogen-Activated Protein Kinases (Erk1,2) Phosphorylate Lys-Ser-Pro (KSP) Repeats in Neurofilament Proteins NF-H and NF-M , 1998, The Journal of Neuroscience.

[381]  R. Lazzarini,et al.  Age-associated and cell-type-specific neurofibrillary pathology in transgenic mice expressing the human midsized neurofilament subunit , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[382]  D. Dickson,et al.  Frontotemporal and motor neurone degeneration with neurofilament inclusion bodies: additional evidence for overlap between FTD and ALS , 2003, Neuropathology and applied neurobiology.

[383]  R. Oshima Intermediate filaments: a historical perspective. , 2007, Experimental cell research.

[384]  T. Crawford,et al.  Neurofilament-dependent Radial Growth of Motor Axons and Axonal Organization of Neurofilaments Does Not Require the Neurofilament Heavy Subunit (NF-H) or Its Phosphorylation , 1998, The Journal of cell biology.

[385]  G. Kreutzberg,et al.  Changes in cytoskeletal proteins in the rat facial nucleus following axotomy , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[386]  J Q Trojanowski,et al.  Selective Degeneration of Purkinje Cells with Lewy Body-Like Inclusions in Aged NFHLACZ Transgenic Mice , 1997, The Journal of Neuroscience.

[387]  Y. Ono,et al.  PKN Associates and Phosphorylates the Head-Rod Domain of Neurofilament Protein (*) , 1996, The Journal of Biological Chemistry.

[388]  F. Romijn,et al.  Arsenic-induced toxicity: effect on protein composition in sciatic nerve , 2006, Human & experimental toxicology.

[389]  R. Liem,et al.  Assembly of type IV neuronal intermediate filaments in nonneuronal cells in the absence of preexisting cytoplasmic intermediate filaments , 1993, The Journal of cell biology.

[390]  C. Miller,et al.  Neuropathological Abnormalities in Transgenic Mice Harbouring a Phosphorylation Mutant Neurofilament Transgene , 1998, Journal of neurochemistry.

[391]  J. Julien,et al.  Late Onset Death of Motor Neurons in Mice Overexpressing Wild-Type Peripherin , 1999, The Journal of cell biology.

[392]  C. van Broeckhoven,et al.  Further evidence that neurofilament light chain gene mutations can cause Charcot‐Marie‐Tooth disease type 2E , 2001, Annals of neurology.

[393]  H. Sakai,et al.  Participation of 200K or 150K subunit of neurofilament in construction of the filament core with 70K subunit and promotion of tubulin polymerization by incorporated 200K subunit. , 1984, Journal of biochemistry.

[394]  T. Crawford,et al.  Subunit composition of neurofilaments specifies axonal diameter , 1996, The Journal of cell biology.

[395]  L. Tsai,et al.  Differential Cellular Phosphorylation of Neurofilament Heavy Side‐Arms by Glycogen Synthase Kinase‐3 and Cyclin‐Dependent Kinase‐5 , 1996, Journal of neurochemistry.

[396]  R. Perrot,et al.  Axonal Neurofilaments Control Multiple Fiber Properties But Do Not Influence Structure or Spacing of Nodes of Ranvier , 2007, The Journal of Neuroscience.

[397]  D. Price,et al.  Slow axonal transport of neurofilament proteins: impairment of beta,beta'-iminodipropionitrile administration. , 1978, Science.

[398]  A. F. Soleng,et al.  A thorny question: how does activity maintain dendritic spines? , 1999, Nature Neuroscience.

[399]  A. Aguayo,et al.  Abnormal myelination in transplanted Trembler mouse Schwann cells , 1977, Nature.

[400]  Jean-Pierre Julien,et al.  Conditional NF-L Transgene Expression in Mice for In Vivo Analysis of Turnover and Transport Rate of Neurofilaments , 2007, The Journal of Neuroscience.

[401]  N. Calcutt,et al.  Gene replacement in mice reveals that the heavily phosphorylated tail of neurofilament heavy subunit does not affect axonal caliber or the transit of cargoes in slow axonal transport , 2002, The Journal of cell biology.

[402]  Z. Sahenk Abnormal Schwann cell-axon interactions in CMT neuropathies. The effects of mutant Schwann cells on the axonal cytoskeleton and regeneration-associated myelination. , 1999, Annals of the New York Academy of Sciences.

[403]  S. Yagihashi,et al.  Reduced myelinated fiber size correlates with loss of axonal neurofilaments in peripheral nerve of chronically streptozotocin diabetic rats. , 1990, The American journal of pathology.

[404]  D. Dickson,et al.  Screening for neurofilament inclusion disease using α-internexin immunohistochemistry , 2005, Neurology.

[405]  C. Shaw,et al.  Phosphorylation of neurofilament heavy chain side-arms by stress activated protein kinase-1b/Jun N-terminal kinase-3. , 2000, Journal of cell science.

[406]  J. Vandekerckhove,et al.  Location and sequence characterization of the major phosphorylation sites of the high molecular mass neurofilament proteins M and H , 1987, FEBS letters.

[407]  C. Shaw,et al.  Neurofilament heavy chain side arm phosphorylation regulates axonal transport of neurofilaments , 2003, The Journal of cell biology.

[408]  Reaction of Lewy bodies with antibodies to phosphorylated and non-phosphorylated neurofilaments , 1986, Neuroscience Letters.

[409]  R. Margolis,et al.  Nonneuronal isoforms of STOP protein are responsible for microtubule cold stability in mammalian fibroblasts. , 1998, Proceedings of the National Academy of Sciences of the United States of America.

[410]  J. Goldman,et al.  Lewy bodies of Parkinson's disease contain neurofilament antigens. , 1983, Science.

[411]  K. Konvička,et al.  Neurofilament (NF) Assembly; Divergent Characteristics of Human and Rodent NF-L Subunits* , 1998, The Journal of Biological Chemistry.

[412]  R. Liem,et al.  Promotion of Microtubule Assembly by Neurofilament‐Associated Microtubule‐Associated Proteins , 1984, Journal of neurochemistry.

[413]  R. Friede,et al.  Axon caliber related to neurofilaments and microtubules in sciatic nerve fibers of rats and mice , 1970, The Anatomical record.

[414]  B. Giasson,et al.  Aberrant Stress-induced Phosphorylation of Perikaryal Neurofilaments* , 1996, The Journal of Biological Chemistry.

[415]  T. Crawford,et al.  Increasing neurofilament subunit NF-M expression reduces axonal NF-H, inhibits radial growth, and results in neurofilamentous accumulation in motor neurons , 1995, The Journal of cell biology.

[416]  R. Lasek,et al.  Slow components of axonal transport: two cytoskeletal networks , 1980, The Journal of cell biology.

[417]  D. Figlewicz,et al.  Glutamate Potentiates the Toxicity of Mutant Cu/Zn-Superoxide Dismutase in Motor Neurons by Postsynaptic Calcium-Dependent Mechanisms , 1998, The Journal of Neuroscience.

[418]  R. Liem,et al.  A novel duplication/insertion mutation of NEFL in a patient with Charcot‐Marie‐Tooth disease , 2006, American journal of medical genetics. Part A.

[419]  P. Hollenbeck The pattern and mechanism of mitochondrial transport in axons. , 1996, Frontiers in bioscience : a journal and virtual library.

[420]  J. Julien,et al.  Multiple phosphorylation sites in mammalian neurofilament polypeptides. , 1982, The Journal of biological chemistry.

[421]  C. Theiss,et al.  Impairment of anterograde and retrograde neurofilament transport after anti-kinesin and anti-dynein antibody microinjection in chicken dorsal root ganglia. , 2005, European journal of cell biology.

[422]  G. Shaw,et al.  Differential expression of neurofilament triplet proteins in brain development , 1982, Nature.

[423]  P. Brown,et al.  Serum antibodies to neurofilament antigens in patients with neurological and other diseases and in healthy controls , 1983, Journal of Neuroimmunology.

[424]  N. Hirokawa,et al.  Gene Targeting Studies Begin to Reveal the Function of Neurofilament Proteins , 1998, The Journal of cell biology.

[425]  J. Eyer,et al.  Properties of highly viscous gels formed by neurofilaments in vitro. A possible consequence of a specific inter-filament cross-bridging. , 1987, The Biochemical journal.

[426]  Q. Zhu,et al.  Protective effect of neurofilament heavy gene overexpression in motor neuron disease induced by mutant superoxide dismutase. , 1998, Proceedings of the National Academy of Sciences of the United States of America.

[427]  P. Baas,et al.  Slow axonal transport: the polymer transport model. , 1997, Trends in cell biology.

[428]  J. Pachter,et al.  The differential appearance of neurofilament triplet polypeptides in the developing rat optic nerve. , 1984, Developmental biology.

[429]  J. R. Morris,et al.  Stable polymers of the axonal cytoskeleton: the axoplasmic ghost , 1982, The Journal of cell biology.

[430]  W. G. Mclean,et al.  Effect of a Single Dose of β,β′‐Iminodipropionitrile In Vivo on the Properties of Neurofilaments In Vitro: Comparison with the Effect of Iminodipropionitrile Added Directly to Neurofilaments In Vitro , 1989, Journal of neurochemistry.

[431]  Soo‐Young Choi,et al.  Oxidative modification of neurofilament-L by the Cu,Zn-superoxide dismutase and hydrogen peroxide system. , 2004, Biochimie.

[432]  T. Crawford,et al.  Neurofilament subunit NF-H modulates axonal diameter by selectively slowing neurofilament transport , 1996, The Journal of cell biology.

[433]  O. Evgrafov,et al.  A new variant of Charcot-Marie-Tooth disease type 2 is probably the result of a mutation in the neurofilament-light gene. , 2000, American journal of human genetics.

[434]  G. Hart,et al.  Dynamic interplay between O-GlcNAc and O-phosphate: the sweet side of protein regulation. , 2003, Current opinion in structural biology.

[435]  F. Gros,et al.  Peripherin, a new member of the intermediate filament protein family. , 1983, Developmental neuroscience.

[436]  Ian G. McKeith,et al.  Patients with a novel neurofilamentopathy: dementia with neurofilament inclusions , 2003, Neuroscience Letters.

[437]  D. Price,et al.  Slow axonal transport in acrylamide neuropathy: different abnormalities produced by single-dose and continuous administration , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[438]  Fei Liu,et al.  Contributions of protein phosphatases PP1, PP2A, PP2B and PP5 to the regulation of tau phosphorylation , 2005, The European journal of neuroscience.

[439]  S. Carpenter,et al.  Neurofibrillary axonal swellings and amyotrophic lateral sclerosis , 1984, Journal of the Neurological Sciences.

[440]  P. Eagles,et al.  The proteolytic digestion of ox neurofilaments with trypsin and alpha-chymotrypsin. , 1983, The Biochemical journal.

[441]  J. Griffin,et al.  Phosphorylation‐Dependent Immunoreactivity of Neurofilaments and the Rate of Slow Axonal Transport in the Central and Peripheral Axons of the Rat Dorsal Root Ganglion , 1994, Journal of neurochemistry.

[442]  G. Elder,et al.  Enhancer trapping by a human mid-sized neurofilament transgene reveals unexpected patterns of neuronal enhancer activity. , 1994, Brain research. Molecular brain research.

[443]  S. Chou,et al.  Electron microscopy of focal neuroaxonal lesions produced by β-β′-iminodipropionitrile (IDPN) in rats , 1965, Acta Neuropathologica.

[444]  P. Gallant,et al.  Principal neurofilament-associated protein kinase in squid axoplasm is related to casein kinase I. , 1991, The Journal of biological chemistry.

[445]  T B Shea,et al.  Phospho-dependent association of neurofilament proteins with kinesin in situ. , 2000, Cell motility and the cytoskeleton.

[446]  Hugo J. Bellen,et al.  Axon-Glia Interactions and the Domain Organization of Myelinated Axons Requires Neurexin IV/Caspr/Paranodin , 2001, Neuron.

[447]  Robert Lalonde,et al.  Mice with the deleted neurofilament of low molecular weight (Nefl) gene: 2. Effects on motor functions and spatial orientation , 2005, Journal of neuroscience research.

[448]  M. Takeda,et al.  Neurofilament degradation by bovine brain cathepsin D , 1988, Neuroscience Letters.

[449]  P. Sonderegger,et al.  Neurotrypsin, a Novel Multidomain Serine Protease Expressed in the Nervous System , 1997, Molecular and Cellular Neuroscience.

[450]  L. Pradel,et al.  Binding of brain spectrin to the 70-kDa neurofilament subunit protein. , 1987, European journal of biochemistry.

[451]  Lei Wang,et al.  Stochastic simulation of neurofilament transport in axons: the "stop-and-go" hypothesis. , 2005, Molecular biology of the cell.

[452]  H. Pant,et al.  CDK‐5‐Mediated Neurofilament Phosphorylation in SHSY5Y Human Neuroblastoma Cells , 1999, Journal of neurochemistry.

[453]  B. Droz,et al.  Migration of Proteins along the Axons of the Sciatic Nerve , 1962, Science.

[454]  R. Liem,et al.  Analysis of the roles of the head domains of type IV rat neuronal intermediate filament proteins in filament assembly using domain-swapped chimeric proteins. , 1999, Journal of cell science.

[455]  J. Trojanowski,et al.  alpha-internexin is present in the pathological inclusions of neuronal intermediate filament inclusion disease. , 2004, The American journal of pathology.

[456]  C. Marotta,et al.  Degradation of Neurofilament Proteins by Purified Human Brain Cathepsin D , 1984, Journal of neurochemistry.

[457]  R. Liem,et al.  Microtubule-associated proteins bind specifically to the 70-kDa neurofilament protein. , 1985, The Journal of biological chemistry.

[458]  J. Julien,et al.  Interactions between peripherin and neurofilaments in cultured cells: disruption of peripherin assembly by the NF-M and NF-H subunits. , 1999, Biochemistry and cell biology = Biochimie et biologie cellulaire.

[459]  Bonifati,et al.  Association between early-onset Parkinson's disease and mutations in the parkin gene. , 2000, The New England journal of medicine.

[460]  Veeranna,et al.  Neurofilament phosphorylation. , 1995, Biochemistry and cell biology = Biochimie et biologie cellulaire.

[461]  J. Trojanowski,et al.  Relative abundance of tau and neurofilament epitopes in hippocampal neurofibrillary tangles. , 1990, The American journal of pathology.

[462]  N. Hirokawa,et al.  Effects of phosphorylation of the neurofilament L protein on filamentous structures. , 1990, Cell regulation.

[463]  S. Barnes,et al.  Superoxide Dismutase Catalyzes Nitration of Tyrosines by Peroxynitrite in the Rod and Head Domains of Neurofilament‐L , 1997, Journal of neurochemistry.

[464]  J. Trojanowski,et al.  Two-stage expression of neurofilament polypeptides during rat neurogenesis with early establishment of adult phosphorylation patterns , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[465]  D. Selkoe,et al.  Alzheimer's disease: insolubility of partially purified paired helical filaments in sodium dodecyl sulfate and urea. , 1982, Science.

[466]  G. Sobue,et al.  Identification of novel sequence variants in the neurofilament‐light gene in a Japanese population: analysis of Charcot‐Marie‐Tooth disease patients and normal individuals , 2002, Journal of the peripheral nervous system : JPNS.

[467]  P. Averback Unusual particles in motor neuron disease. , 1981, Archives of Pathology & Laboratory Medicine.

[468]  Stefan Fischer,et al.  Neurofilament architecture combines structural principles of intermediate filaments with carboxy‐terminal extensions increasing in size between triplet proteins. , 1983, The EMBO journal.

[469]  H. Skre,et al.  Genetic and clinical aspects of Charcot‐Marie‐Tooth's disease , 1974, Clinical genetics.

[470]  J. Trojanowski,et al.  Neurofilament reassembly in vitro: biochemical, morphological and immuno-electron microscopic studies employing monoclonal antibodies to defined epitopes , 1991, Brain Research.

[471]  M. Strong,et al.  Post-transcriptional control of neurofilaments in development and disease. , 2007, Experimental cell research.

[472]  R. Lasek,et al.  Axonal transport of the cytoskeleton in regenerating motor neurons: constancy and change , 1980, Brain Research.

[473]  J. Morrison,et al.  Quantitative immunocytochemical analysis of the spinal cord in G86R superoxide dismutase transgenic mice: Neurochemical correlates of selective vulnerability , 1996, The Journal of comparative neurology.

[474]  J. Julien,et al.  Apoptotic death of neurons exhibiting peripherin aggregates is mediated by the proinflammatory cytokine tumor necrosis factor-α , 2001, The Journal of cell biology.

[475]  K. Angelides,et al.  Assembly and exchange of intermediate filament proteins of neurons: neurofilaments are dynamic structures , 1989, The Journal of cell biology.