Local Acceleration of Neurofilament Transport at Nodes of Ranvier
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作者:
Walker, Cynthia L.
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Ohio State Univ, Dept Neurosci, Columbus, OH 43210 USAOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Walker, Cynthia L.
[1
]
Uchida, Atsuko
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Ohio State Univ, Dept Neurosci, Columbus, OH 43210 USAOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Uchida, Atsuko
[1
]
Li, Yinyun
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Ohio Univ, Quantitat Biol Inst, Athens, OH 45701 USA
Beijing Normal Univ, Sch Syst Sci, Beijing 100875, Peoples R ChinaOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Li, Yinyun
[2
,5
]
Trivedi, Niraj
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Ohio State Univ, Dept Neurosci, Columbus, OH 43210 USA
St Jude Childrens Res Hosp, Dept Dev Neurobiol, 332 N Lauderdale St, Memphis, TN 38105 USAOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Trivedi, Niraj
[1
,6
]
Fenn, J. Daniel
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Ohio State Univ, Dept Neurosci, Columbus, OH 43210 USAOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Fenn, J. Daniel
[1
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Monsma, Paula C.
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Ohio State Univ, Dept Neurosci, Columbus, OH 43210 USAOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Monsma, Paula C.
[1
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Lariviere, Roxanne C.
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Ohio Univ, Dept Phys & Astron, Athens, OH 45701 USA
Laval Univ, CERVO Brain Res Ctr, Dept Psychiat & Neurosci, Quebec City, PQ G1J 2G3, CanadaOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Lariviere, Roxanne C.
[3
,4
]
Julien, Jean-Pierre
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Ohio Univ, Dept Phys & Astron, Athens, OH 45701 USA
Laval Univ, CERVO Brain Res Ctr, Dept Psychiat & Neurosci, Quebec City, PQ G1J 2G3, CanadaOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Julien, Jean-Pierre
[3
,4
]
Jung, Peter
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Ohio Univ, Quantitat Biol Inst, Athens, OH 45701 USAOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Jung, Peter
[2
]
Brown, Anthony
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Ohio State Univ, Dept Neurosci, Columbus, OH 43210 USAOhio State Univ, Dept Neurosci, Columbus, OH 43210 USA
Brown, Anthony
[1
]
机构:
[1] Ohio State Univ, Dept Neurosci, Columbus, OH 43210 USA
[2] Ohio Univ, Quantitat Biol Inst, Athens, OH 45701 USA
Myelinated axons are constricted at nodes of Ranvier. These constrictions are important physiologically because they increase the speed of saltatory nerve conduction, but they also represent potential bottlenecks for the movement of axonally transported cargoes. One type of cargo are neurofilaments, which are abundant space-filling cytoskeletal polymers that function to increase axon caliber. Neurofilaments move bidirectionally along axons, alternating between rapid movements and prolonged pauses. Strikingly, axon constriction at nodes is accompanied by a reduction in neurofilament number that can be as much as 10-fold in the largest axons. To investigate how neurofilaments navigate these constrictions, we developed a transgenic mouse strain that expresses a photoactivatable fluorescent neurofilament protein in neurons. We used the pulse-escape fluorescence photoactivation technique to analyze neurofilament transport in mature myelinated axons of tibial nerves from male and female mice of this strain ex vivo. Fluorescent neurofilaments departed the activated region more rapidly in nodes than in flanking internodes, indicating that neurofilament transport is faster in nodes. By computational modeling, we showed that this nodal acceleration can be explained largely by a local increase in the duty cycle of neurofilament transport (i.e., the proportion of the time that the neurofilaments spend moving). We propose that this transient acceleration functions to maintain a constant neurofilament flux across nodal constrictions, much as the current increases where a river narrows its banks. In this way, neurofilaments are prevented from piling up in the flanking internodes, ensuring a stable neurofilament distribution and uniform axonal morphology across these physiologically important axonal domains.