Enhanced functions of electrical junctions.

Enhanced functions of electrical junctions.
Neuron. 2010 Aug 12;67(3):354-6
Authors: Connors BW, Zolnik TA, Lee SC
Electrical synapses and synchrony are nearly synonymous. In this issue of Neuron, Vervaeke et al. br… . . . → Read More: Enhanced functions of electrical junctions.

Signaling endosomes trigger synapse assembly.

Signaling endosomes trigger synapse assembly.
Neuron. 2010 Aug 12;67(3):352-4
Authors: Newbern JM, Li X, Snider WD
In this issue of Neuron, Sharma et al. report that target-derived NGF exerts long-distance control o… . . . → Read More: Signaling endosomes trigger synapse assembly.

The force be with you: a mechanoreceptor channel in proprioception and touch.

The force be with you: a mechanoreceptor channel in proprioception and touch.
Neuron. 2010 Aug 12;67(3):349-51
Authors: Wilson RI, Corey DP
The TRPN1 ion channel has a role in both hearing and bristle mechanosensati… . . . → Read More: The force be with you: a mechanoreceptor channel in proprioception and touch.

C. elegans TRP family protein TRP-4 is a pore-forming subunit of a native mechanotransduction channel.

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C. elegans TRP family protein TRP-4 is a pore-forming subunit of a native mechanotransduction channel.
Neuron. 2010 Aug 12;67(3):381-91
Authors: Kang L, Gao J, Schafer WR, Xie Z, Xu XZ
Mechanotransdu… . . . → Read More: C. elegans TRP family protein TRP-4 is a pore-forming subunit of a native mechanotransduction channel.

The role of the TRP channel NompC in Drosophila larval and adult locomotion.

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The role of the TRP channel NompC in Drosophila larval and adult locomotion.
Neuron. 2010 Aug 12;67(3):373-80
Authors: Cheng LE, Song W, Looger LL, Jan LY, Jan YN
The generation of coordinated body m… . . . → Read More: The role of the TRP channel NompC in Drosophila larval and adult locomotion.

Searching for engrams.

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Searching for engrams.
Neuron. 2010 Aug 12;67(3):363-71
Authors: Hübener M, Bonhoeffer T
Recent advances in cellular imaging technologies together with novel genetic tools have enabled the observa… . . . → Read More: Searching for engrams.

A custody battle for the mind: evidence for extensive imprinting in the brain.

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A custody battle for the mind: evidence for extensive imprinting in the brain.
Neuron. 2010 Aug 12;67(3):359-62
Authors: Tollkuhn J, Xu X, Shah NM
Relatively few genes (approximately 100) have previo… . . . → Read More: A custody battle for the mind: evidence for extensive imprinting in the brain.

Forward and back: motifs of inhibition in olfactory processing.

Forward and back: motifs of inhibition in olfactory processing.
Neuron. 2010 Aug 12;67(3):357-8
Authors: Bazhenov M, Stopfer M
The remarkable performance of the olfactory system in classifying and categorizing the c… . . . → Read More: Forward and back: motifs of inhibition in olfactory processing.

Long-distance control of synapse assembly by target-derived NGF.

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Long-distance control of synapse assembly by target-derived NGF.
Neuron. 2010 Aug 12;67(3):422-34
Authors: Sharma N, Deppmann CD, Harrington AW, St Hillaire C, Chen ZY, Lee FS, Ginty DD
We report a r… . . . → Read More: Long-distance control of synapse assembly by target-derived NGF.

Neural RNA-binding protein Musashi1 controls midline crossing of precerebellar neurons through posttranscriptional regulation of Robo3/Rig-1 expression.

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Neural RNA-binding protein Musashi1 controls midline crossing of precerebellar neurons through posttranscriptional regulation of Robo3/Rig-1 expression.
Neuron. 2010 Aug 12;67(3):407-21
Authors: Kuwako K, Ka… . . . → Read More: Neural RNA-binding protein Musashi1 controls midline crossing of precerebellar neurons through posttranscriptional regulation of Robo3/Rig-1 expression.

Huntingtin is required for mitotic spindle orientation and mammalian neurogenesis.

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Huntingtin is required for mitotic spindle orientation and mammalian neurogenesis.
Neuron. 2010 Aug 12;67(3):392-406
Authors: Godin JD, Colombo K, Molina-Calavita M, Keryer G, Zala D, Charrin BC, Dietrich P,… . . . → Read More: Huntingtin is required for mitotic spindle orientation and mammalian neurogenesis.

Multiple timescales of memory in lateral habenula and dopamine neurons.

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Multiple timescales of memory in lateral habenula and dopamine neurons.
Neuron. 2010 Aug 12;67(3):499-510
Authors: Bromberg-Martin ES, Matsumoto M, Nakahara H, Hikosaka O
Midbrain dopamine neurons ar… . . . → Read More: Multiple timescales of memory in lateral habenula and dopamine neurons.

A conserved switch in sensory processing prepares developing neocortex for vision.

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A conserved switch in sensory processing prepares developing neocortex for vision.
Neuron. 2010 Aug 12;67(3):480-98
Authors: Colonnese MT, Kaminska A, Minlebaev M, Milh M, Bloem B, Lescure S, Moriette G, Chi… . . . → Read More: A conserved switch in sensory processing prepares developing neocortex for vision.

Selective activation of striatal fast-spiking interneurons during choice execution.

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Selective activation of striatal fast-spiking interneurons during choice execution.
Neuron. 2010 Aug 12;67(3):466-79
Authors: Gage GJ, Stoetzner CR, Wiltschko AB, Berke JD
Basal ganglia circuits are … . . . → Read More: Selective activation of striatal fast-spiking interneurons during choice execution.

From dendrite to soma: dynamic routing of inhibition by complementary interneuron microcircuits in olfactory cortex.

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From dendrite to soma: dynamic routing of inhibition by complementary interneuron microcircuits in olfactory cortex.
Neuron. 2010 Aug 12;67(3):452-65
Authors: Stokes CC, Isaacson JS
Diverse inhibitor… . . . → Read More: From dendrite to soma: dynamic routing of inhibition by complementary interneuron microcircuits in olfactory cortex.

Rapid desynchronization of an electrically coupled interneuron network with sparse excitatory synaptic input.

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Rapid desynchronization of an electrically coupled interneuron network with sparse excitatory synaptic input.
Neuron. 2010 Aug 12;67(3):435-51
Authors: Vervaeke K, Lorincz A, Gleeson P, Farinella M, Nusser Z… . . . → Read More: Rapid desynchronization of an electrically coupled interneuron network with sparse excitatory synaptic input.

When giving is good: ventromedial prefrontal cortex activation for others’ intentions.

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When giving is good: ventromedial prefrontal cortex activation for others’ intentions.
Neuron. 2010 Aug 12;67(3):511-21
Authors: Cooper JC, Kreps TA, Wiebe T, Pirkl T, Knutson B
In social decision-ma… . . . → Read More: When giving is good: ventromedial prefrontal cortex activation for others’ intentions.