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Biology subjects

Wong, E. W.

Publications and source records attributed to Wong, E. W..

2 recordsLinked to original sources

Paranode stability requires UNC5B expression by oligodendrocytes

In the mature CNS, netrin-1 is expressed by neurons and oligodendrocytes and implicated in the stability of axo-oligodendroglial paranodal junctions. Here we report that the netrin receptor UNC5B is highly expressed by mature oligodendrocytes and enriched at paranodes. We demonstrate that paranodes become disorganized following conditional deletion of UNC5B in oligodendrocytes, with disruption of the interface between glial loops and detachment of loops from the axon. As a result, Caspr1 and Kv1.1 disperse along the axon, internodes fail to lengthen and compact myelin periodicity is reduced. Paranodal and axoglial domain disorganization progressively worsens and a delay in motor learning develops in aged mice lacking oligodendroglial UNC5B. Altered glial loop ultrastructure and reduced levels of claudin-11 and JAM-C tight junction proteins support the conclusion that disruption of autotypic junctions between paranodal loops underlies paranode disorganization. Our findings reveal an essential contribution of oligodendroglial UNC5B at paranodes that is required for the stability of mature myelin.

neuroscience

Pre- and post-synaptic roles for DCC in memory consolidation in the adult mouse hippocampus.

The receptor deleted in colorectal cancer (DCC) and its ligand netrin-1 are essential for axon guidance during development and are expressed by neurons in the mature brain. Netrin-1 recruits GluA1-containing -amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptors (AMPARs) and is critical for long-term potentiation (LTP) at CA3-CA1 hippocampal Schaffer collateral synapses, while conditional DCC deletion from glutamatergic neurons impairs hippocampal-dependent spatial memory and severely disrupts LTP induction. DCC co-fractionates with the detergent-resistant component of the postsynaptic density, yet is enriched in axonal growth cones that differentiate into presynaptic terminals during development. Specific presynaptic and postsynaptic contributions of DCC to the function of mature neural circuits have yet to be identified. Employing hippocampal subregion-specific conditional deletion of DCC, we show that DCC loss from CA1 hippocampal pyramidal neurons results in deficits in spatial memory, increased resting membrane potential, abnormal dendritic spine morphology, and weaker spontaneous excitatory postsynaptic activity. In contrast, deletion of DCC from CA3 neurons did not induce detectable changes in spine morphology or intrinsic electrophysiological properties of CA1 pyramidal neurons, but resulted in impaired performance on the novel object place recognition task as well as compromised excitatory synaptic transmission and long-term potentiation (LTP) at the Schaffer collateral synapse. Together, these findings reveal that DCC makes specific pre- and post-synaptic contributions to hippocampal synaptic plasticity underlying spatial memory.

neuroscience