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KIF17 dynamics and regulation of NR2B trafficking in hippocampal neurons
Laurent Guillaud1, Mitsutoshi Setou, Nobutaka Hirokawa
1Department of Cell Biology and Anatomy, Graduate School of Medicine, University of Tokyo, Tokyo 113-0033, Japan.
Abstract:
KIF17, a recently characterized member of the kinesin superfamily proteins, has been proposed to bind in vitro to a protein complex containing mLin10 (Mint1/X11) and the NR2B subunit of the NMDA receptors (NMDARs). In the mammalian brain, NMDARs play an important role in synaptic plasticity, learning, and memory. Here we present, for the first time, the dynamic properties of KIF17 and provide evidence of its function in the transport of NR2B in living mammalian neurons. KIF17 vesicles enter and move specifically along dendrites in a processive way, at an average speed of 0.76 microm/sec. These vesicles are effectively associated with extrasynaptic NR2B, and thus they transport and deliver NR2B subunits in dendrites. However, KIF17 does not seem to enter directly into postsynaptic regions. Cellular knockdown or functional blockade of KIF17 significantly impairs NR2B expression and its synaptic localization. Interestingly, the decrease in the number of synaptic NR2B subunits is followed by a parallel increase in the number of NR2A subunits at synapses. In contrast, upregulation of the expression level of NR2B, after treatment with the NMDAR antagonist D(-)-2-amino-5-phosphonopentanoic acid, simultaneously increases the expression level of KIF17. These observations concerning the downregulation or upregulation of KIF17 and NR2B reveal the probable existence of a shared regulation process between the motor and its cargo. Taken together, these results illustrate the complex mechanisms underlying the active transport and regulation of NR2B by the molecular motor KIF17 in living hippocampal neurons.
Insights
Kinesin motor KIF17 transports NR2B subunits in neurons, crucial for synaptic function. Its regulation is linked to NR2B levels, impacting learning and memory.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Kinesin superfamily protein KIF17 interacts with NMDA receptor subunit NR2B.
- NMDA receptors (NMDARs) are vital for synaptic plasticity, learning, and memory in the mammalian brain.
Purpose of the Study:
- To investigate the dynamic properties and function of KIF17 in living mammalian neurons.
- To provide evidence for KIF17's role in transporting NR2B subunits.
Main Methods:
- Live imaging of KIF17 vesicle dynamics in dendrites.
- Cellular knockdown and functional blockade of KIF17.
- Analysis of NR2B and NR2A subunit expression and localization.
- Pharmacological manipulation of NMDAR activity.
Main Results:
- KIF17 vesicles move processively along dendrites at 0.76 microm/sec, transporting extrasynaptic NR2B.
- KIF17 knockdown impairs NR2B expression and synaptic localization, leading to increased NR2A.
- Upregulation of NR2B increases KIF17 expression, suggesting co-regulation.
Conclusions:
- KIF17 is a molecular motor responsible for the active transport and delivery of NR2B subunits in hippocampal neurons.
- KIF17 and NR2B expression appear to be co-regulated, highlighting complex synaptic plasticity mechanisms.