Home LiteratureArticle Details
PMID: 14662746 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

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.

The Journal of cell biology ·Vol. 163 ·No. 5 ·2003-12-08 ·Pages 1021-31

Rao MV, Campbell J, Yuan A, Kumar A, Gotow T, Uchiyama Y, Nixon RA

Abstract

The phosphorylated carboxyl-terminal "tail" domains of the neurofilament (NF) subunits, NF heavy (NF-H) and NF medium (NF-M) subunits, have been proposed to regulate axon radial growth, neurofilament spacing, and neurofilament transport rate, but direct in vivo evidence is lacking. Because deletion of the tail domain of NF-H did not alter these axonal properties (Rao, M.V., M.L. Garcia, Y. Miyazaki, T. Gotow, A. Yuan, S. Mattina, C.M. Ward, N.S. Calcutt, Y. Uchiyama, R.A. Nixon, and D.W. Cleveland. 2002. J. Cell Biol. 158:681-693), we investigated possible functions of the NF-M tail domain by constructing NF-M tail-deleted (NF-MtailDelta) mutant mice using an embryonic stem cell-mediated "gene knockin" approach that preserves normal ratios of the three neurofilament subunits. Mutant NF-MtailDelta mice exhibited severely inhibited radial growth of both motor and sensory axons. Caliber reduction was accompanied by reduced spacing between neurofilaments and loss of long cross-bridges with no change in neurofilament protein content. These observations define distinctive functions of the NF-M tail in regulating axon caliber by modulating the organization of the neurofilament network within axons. Surprisingly, the average rate of axonal transport of neurofilaments was unaltered despite these substantial effects on axon morphology. These results demonstrate that NF-M tail-mediated interactions of neurofilaments, independent of NF transport rate, are critical determinants of the size and cytoskeletal architecture of axons, and are mediated, in part, by the highly phosphorylated tail domain of NF-M.

MeSH Terms
Animals Axonal Transport/physiology Axons/metabolism,ultrastructure Cell Division/physiology Cell Survival Cytoskeleton/metabolism Gene Targeting Mice Mice, Transgenic Microtubules/metabolism Molecular Weight Neurofilament Proteins/chemistry,genetics,metabolism Protein Structure, Tertiary Protein Subunits/chemistry,genetics,metabolism
Chemicals
Neurofilament Proteins Protein Subunits neurofilament protein M
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Rao Mala V
Nathan Kline Institute, NYU School of Medicine, 140 Old Orangeburg Rd., Orangeburg, NY 10962, USA. rao@nki.rfmh.org
Campbell Jabbar
Yuan Aidong
Kumar Asok
Gotow Takahiro
Uchiyama Yasuo
Nixon Ralph A
References (86)
86 references, click to expand
  1. Disruption of type IV intermediate filament network in mice lacking the neurofilament medium and heavy subunits.
    J Neurochem. 1999 Sep;73(3):972-84 PMID: 10461886
  2. Extra neurofilament NF-L subunits rescue motor neuron disease caused by overexpression of the human NF-H gene in mice.
    J Neuropathol Exp Neurol. 1999 Oct;58(10):1099-110 PMID: 10515233
  3. Kinesin-mediated transport of neurofilament protein oligomers in growing axons.
    J Cell Sci. 1999 Nov;112 ( Pt 21):3799-814 PMID: 10523515
  4. Abnormal expression of neurofilament proteins in dysmyelinating axons located in the central nervous system of jimpy mutant mice.
    Eur J Neurosci. 1999 Nov;11(11):3893-903 PMID: 10583478
  5. Microtubule actin cross-linking factor (MACF): a hybrid of dystonin and dystrophin that can interact with the actin and microtubule cytoskeletons.
    J Cell Biol. 1999 Dec 13;147(6):1275-86 PMID: 10601340
  6. C-terminal phosphorylation of the high molecular weight neurofilament subunit correlates with decreased neurofilament axonal transport velocity.
    Brain Res. 2000 Feb 21;856(1-2):12-9 PMID: 10677606
  7. Rapid movement of axonal neurofilaments interrupted by prolonged pauses.
    Nat Cell Biol. 2000 Mar;2(3):137-41 PMID: 10707083
  8. Cdk5 and MAPK are associated with complexes of cytoskeletal proteins in rat brain.
    Brain Res Mol Brain Res. 2000 Mar 29;76(2):229-36 PMID: 10762698
  9. Overexpression of neurofilament subunit M accelerates axonal transport of neurofilaments.
    Brain Res. 2000 Jun 2;866(1-2):326-32 PMID: 10825509
  10. Glutamate slows axonal transport of neurofilaments in transfected neurons.
    J Cell Biol. 2000 Jul 10;150(1):165-76 PMID: 10893265
  11. Neurofilaments are transported rapidly but intermittently in axons: implications for slow axonal transport.
    J Neurosci. 2000 Sep 15;20(18):6849-61 PMID: 10995829
  12. Hypophosphorylated neurofilament subunits undergo axonal transport more rapidly than more extensively phosphorylated subunits in situ.
    Cell Motil Cytoskeleton. 2000 Oct;47(2):120-9 PMID: 11013392
  13. Bidirectional translocation of neurofilaments along microtubules mediated in part by dynein/dynactin.
    Mol Biol Cell. 2000 Oct;11(10):3495-508 PMID: 11029051
  14. The C-terminal tail domain of neurofilament protein-H (NF-H) forms the crossbridges and regulates neurofilament bundle formation.
    J Cell Sci. 2000 Nov;113 Pt 21:3861-9 PMID: 11034913
  15. Fast transport of neurofilament protein along microtubules in squid axoplasm.
    J Cell Sci. 2000 Nov;113 ( Pt 22):3939-46 PMID: 11058081
  16. The gene encoding gigaxonin, a new member of the cytoskeletal BTB/kelch repeat family, is mutated in giant axonal neuropathy.
    Nat Genet. 2000 Nov;26(3):370-4 PMID: 11062483
  17. Local control of neurofilament accumulation during radial growth of myelinating axons in vivo. Selective role of site-specific phosphorylation.
    J Cell Biol. 2000 Nov 27;151(5):1013-24 PMID: 11086003
  18. Neurofilament protein synthesis and phosphorylation.
    J Neurocytol. 2000 Nov-Dec;29(11-12):843-72 PMID: 11466475
  19. Slow axonal transport: fast motors in the slow lane.
    Curr Opin Cell Biol. 2002 Feb;14(1):58-62 PMID: 11792545
  20. 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.
    J Cell Biol. 2002 Aug 19;158(4):681-93 PMID: 12186852
  21. Myosin Va binding to neurofilaments is essential for correct myosin Va distribution and transport and neurofilament density.
    J Cell Biol. 2002 Oct 28;159(2):279-90 PMID: 12403814
  22. Abnormal neurofilament transport caused by targeted disruption of neuronal kinesin heavy chain KIF5A.
    J Cell Biol. 2003 Apr 14;161(1):55-66 PMID: 12682084
  23. Defective neurofilament transport in mouse models of amyotrophic lateral sclerosis: a review.
    Neurochem Res. 2003 Jul;28(7):1041-7 PMID: 12737529
  24. Neurofilament heavy chain side arm phosphorylation regulates axonal transport of neurofilaments.
    J Cell Biol. 2003 May 12;161(3):489-95 PMID: 12743103
  25. Live-cell imaging of slow axonal transport in cultured neurons.
    Methods Cell Biol. 2003;71:305-23 PMID: 12884696
  26. Local modulation of neurofilament phosphorylation, axonal caliber, and slow axonal transport by myelinating Schwann cells.
    Cell. 1992 Feb 7;68(3):451-63 PMID: 1371237
  27. 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.
    Eur J Cell Biol. 1992 Aug;58(2):331-45 PMID: 1425770
  28. Slow axonal transport: the polymer transport model.
    Trends Cell Biol. 1997 Oct;7(10):380-4 PMID: 17708985
  29. Slow axonal transport: the subunit transport model.
    Trends Cell Biol. 1997 Oct;7(10):384-8 PMID: 17708986
  30. Involvement of neurofilaments in the radial growth of axons.
    J Cell Sci Suppl. 1991;15:85-95 PMID: 1824110
  31. Phosphorylation of neurofilament H subunit at the tail domain by CDC2 kinase dissociates the association to microtubules.
    J Biol Chem. 1991 Nov 15;266(32):21798-803 PMID: 1939202
  32. Expression of NF-L in both neuronal and nonneuronal cells of transgenic mice: increased neurofilament density in axons without affecting caliber.
    J Cell Biol. 1990 Oct;111(4):1543-57 PMID: 2120242
  33. Assembly properties of dominant and recessive mutations in the small mouse neurofilament (NF-L) subunit.
    J Cell Biol. 1990 Nov;111(5 Pt 1):2005-19 PMID: 2121744
  34. Dephosphorylation-induced interactions of neurofilaments with microtubules.
    J Biol Chem. 1990 Dec 15;265(35):21852-8 PMID: 2254337
  35. Varying degrees of phosphorylation determine microheterogeneity of the heavy neurofilament polypeptide (Nf-H).
    J Neuroimmunol. 1987 Mar;14(2):135-48 PMID: 2434525
  36. Cytotypic differences in the protein composition of the axonally transported cytoskeleton in mammalian neurons.
    J Neurosci. 1987 Feb;7(2):453-62 PMID: 2434629
  37. Posttranslational modification of neurofilament proteins by phosphate during axoplasmic transport in retinal ganglion cell neurons.
    J Neurosci. 1987 Apr;7(4):1145-58 PMID: 2437257
  38. Identification of the major multiphosphorylation site in mammalian neurofilaments.
    Proc Natl Acad Sci U S A. 1988 Mar;85(6):1998-2002 PMID: 2450354
  39. Posttranslational modification of neurofilament polypeptides in rabbit retina.
    J Neurobiol. 1987 Mar;18(2):167-96 PMID: 3106568
  40. Location and sequence characterization of the major phosphorylation sites of the high molecular mass neurofilament proteins M and H.
    FEBS Lett. 1987 Sep 14;221(2):403-7 PMID: 3114005
  41. 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.
    J Cell Biol. 1988 Dec;107(6 Pt 2):2689-701 PMID: 3144556
  42. Neurofilament gene expression: a major determinant of axonal caliber.
    Proc Natl Acad Sci U S A. 1987 May;84(10):3472-6 PMID: 3472217
  43. The structure, biochemical properties, and immunogenicity of neurofilament peripheral regions are determined by phosphorylation state.
    J Biol Chem. 1985 Aug 15;260(17):9805-17 PMID: 3926771
  44. The slow component of axonal transport. Identification of major structural polypeptides of the axon and their generality among mammalian neurons.
    J Cell Biol. 1975 Aug;66(2):351-66 PMID: 49355
  45. Axon caliber related to neurofilaments and microtubules in sciatic nerve fibers of rats and mice.
    Anat Rec. 1970 Aug;167(4):379-87 PMID: 5454590
  46. Slow components of axonal transport: two cytoskeletal networks.
    J Cell Biol. 1980 Aug;86(2):616-23 PMID: 6156946
  47. Protein degradation in the mouse visual system. I. Degradation of axonally transported and retinal proteins.
    Brain Res. 1980 Oct 27;200(1):69-83 PMID: 6158362
  48. Posttranslational modification of a neurofilament protein during axoplasmic transport: implications for regional specialization of CNS axons.
    J Cell Biol. 1982 Jul;94(1):150-8 PMID: 6181078
  49. Determinants of conduction velocity in myelinated nerve fibers.
    Muscle Nerve. 1980 Mar-Apr;3(2):141-50 PMID: 6245357
  50. The distribution of phosphorylation sites among identified proteolytic fragments of mammalian neurofilaments.
    J Biol Chem. 1983 Mar 25;258(6):4019-25 PMID: 6339492
  51. Organization of mammalian neurofilament polypeptides within the neuronal cytoskeleton.
    J Cell Biol. 1984 Apr;98(4):1523-36 PMID: 6425303
  52. Monoclonal antibodies distinguish phosphorylated and nonphosphorylated forms of neurofilaments in situ.
    Proc Natl Acad Sci U S A. 1983 Oct;80(19):6126-30 PMID: 6577472
  53. Antibody decoration of neurofilaments.
    J Cell Biol. 1981 May;89(2):198-205 PMID: 6788775
  54. Multiple phosphorylation sites in mammalian neurofilament polypeptides.
    J Biol Chem. 1982 Sep 10;257(17):10467-70 PMID: 7202005
  55. Phosphate content of mammalian neurofilaments.
    J Biol Chem. 1982 Sep 10;257(17):9902-5 PMID: 7202006
  56. 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.
    J Cell Biol. 1994 Aug;126(4):1031-46 PMID: 7519617
  57. Defective axonal transport in a transgenic mouse model of amyotrophic lateral sclerosis.
    Nature. 1995 May 4;375(6526):61-4 PMID: 7536898
  58. Increasing neurofilament subunit NF-M expression reduces axonal NF-H, inhibits radial growth, and results in neurofilamentous accumulation in motor neurons.
    J Cell Biol. 1995 Sep;130(6):1413-22 PMID: 7559762
  59. Two distinct functions of the carboxyl-terminal tail domain of NF-M upon neurofilament assembly: cross-bridge formation and longitudinal elongation of filaments.
    J Cell Biol. 1995 Apr;129(2):411-29 PMID: 7721944
  60. Overexpression of the human NFM subunit in transgenic mice modifies the level of endogenous NFL and the phosphorylation state of NFH subunits.
    J Cell Biol. 1995 Jun;129(6):1629-40 PMID: 7790359
  61. Regional modulation of neurofilament organization by myelination in normal axons.
    J Neurosci. 1994 Nov;14(11 Pt 1):6392-401 PMID: 7965044
  62. Distribution of plectin, an intermediate filament-associated protein, in the adult rat central nervous system.
    J Neurosci Res. 1994 Mar 1;37(4):515-28 PMID: 8021973
  63. Neurofilament-deficient axons and perikaryal aggregates in viable transgenic mice expressing a neurofilament-beta-galactosidase fusion protein.
    Neuron. 1994 Feb;12(2):389-405 PMID: 8110465
  64. 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.
    J Biol Chem. 1993 Oct 25;268(30):22695-702 PMID: 8226779
  65. Assembly of type IV neuronal intermediate filaments in nonneuronal cells in the absence of preexisting cytoplasmic intermediate filaments.
    J Cell Biol. 1993 Sep;122(6):1323-35 PMID: 8376465
  66. Neurofilaments are obligate heteropolymers in vivo.
    J Cell Biol. 1993 Sep;122(6):1337-50 PMID: 8376466
  67. Increased expression of neurofilament subunit NF-L produces morphological alterations that resemble the pathology of human motor neuron disease.
    Cell. 1993 Apr 9;73(1):23-33 PMID: 8462100
  68. Neurofilament deficiency in quail caused by nonsense mutation in neurofilament-L gene.
    J Cell Biol. 1993 Apr;121(2):387-95 PMID: 8468353
  69. Reduced diameter and conduction velocity of myelinated fibers in the sciatic nerve of a neurofilament-deficient mutant quail.
    Neurosci Lett. 1993 Apr 16;153(1):65-8 PMID: 8510825
  70. Subunit composition of neurofilaments specifies axonal diameter.
    J Cell Biol. 1996 Jun;133(5):1061-9 PMID: 8655579
  71. Visualization of slow axonal transport in vivo.
    Science. 1996 Aug 9;273(5276):784-8 PMID: 8670416
  72. Neurofilament phosphorylation.
    Biochem Cell Biol. 1995 Sep-Oct;73(9-10):575-92 PMID: 8714676
  73. An essential cytoskeletal linker protein connecting actin microfilaments to intermediate filaments.
    Cell. 1996 Aug 23;86(4):655-65 PMID: 8752219
  74. Oligodendroglia regulate the regional expansion of axon caliber and local accumulation of neurofilaments during development independently of myelin formation.
    J Neurosci. 1996 Aug 15;16(16):5095-105 PMID: 8756439
  75. Neurofilament subunit NF-H modulates axonal diameter by selectively slowing neurofilament transport.
    J Cell Biol. 1996 Nov;135(3):711-24 PMID: 8909545
  76. Plectin sidearms mediate interaction of intermediate filaments with microtubules and other components of the cytoskeleton.
    J Cell Biol. 1996 Nov;135(4):991-1007 PMID: 8922382
  77. Subcellular localization of myosin V in nerve growth cones and outgrowth from dilute-lethal neurons.
    J Cell Sci. 1997 Feb;110 ( Pt 4):439-49 PMID: 9067596
  78. Protein serine/threonine phosphatase 1 and 2A associate with and dephosphorylate neurofilaments.
    Brain Res Mol Brain Res. 1997 Oct 3;49(1-2):15-28 PMID: 9387859
  79. Delayed maturation of regenerating myelinated axons in mice lacking neurofilaments.
    Exp Neurol. 1997 Nov;148(1):299-316 PMID: 9398473
  80. Myelin-associated glycoprotein is a myelin signal that modulates the caliber of myelinated axons.
    J Neurosci. 1998 Mar 15;18(6):1953-62 PMID: 9482781
  81. Absence of the mid-sized neurofilament subunit decreases axonal calibers, levels of light neurofilament (NF-L), and neurofilament content.
    J Cell Biol. 1998 May 4;141(3):727-39 PMID: 9566972
  82. Dystonin is essential for maintaining neuronal cytoskeleton organization.
    Mol Cell Neurosci. 1998 Apr;10(5-6):243-57 PMID: 9604204
  83. Neurofilament-dependent radial growth of motor axons and axonal organization of neurofilaments does not require the neurofilament heavy subunit (NF-H) or its phosphorylation.
    J Cell Biol. 1998 Oct 5;143(1):171-81 PMID: 9763429
  84. Disruption of the NF-H gene increases axonal microtubule content and velocity of neurofilament transport: relief of axonopathy resulting from the toxin beta,beta'-iminodipropionitrile.
    J Cell Biol. 1998 Oct 5;143(1):183-93 PMID: 9763430
  85. Requirement of heavy neurofilament subunit in the development of axons with large calibers.
    J Cell Biol. 1998 Oct 5;143(1):195-205 PMID: 9763431
  86. Dynamic behavior and organization of cytoskeletal proteins in neurons: reconciling old and new findings.
    Bioessays. 1998 Oct;20(10):798-807 PMID: 9819567
Article Info
Journal
The Journal of cell biology
Abbr.
J Cell Biol
ISSN
0021-9525
Published
2003-12-08
Pages
1021-31
Language
English
Region
United States
NLM ID
0375356
PMCID
PMC2173612
Subset
IM
Grants
NINDS NIH HHS · R01 NS027036 · United States
NIA NIH HHS · AG0564 · United States
NINDS NIH HHS · R01 NS 27036 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com