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Aicher, S.

Publications and source records attributed to Aicher, S..

2 recordsLinked to original sources

Analysis of Rod/Cone Gap Junctions from the Reconstruction of Mouse Photoreceptor Terminals

Using serial blockface-scanning electron microscopy (SBF-SEM) and focused ion beam-scanning electron microscopy (FIB-SEM), combined with confocal microscopy for the gap junction protein Cx36, we reconstructed mouse photoreceptor terminals and located the gap junctions between them. An exuberant spray of fine telodendria extends from each cone pedicle (including blue cones) to contact 40-50 nearby rod spherules where Cx36 clusters were located, close to the mouth of the synaptic opening. There were approximately 50 Cx36 clusters per cone pedicle and 2-3 per rod spherule. We were unable to detect rod/rod or cone/cone coupling. Thus, rod/cone coupling accounts for nearly all gap junctions between photoreceptors. Our calculations suggest a mean of 82 Cx36 channels between a rod/cone pair of which 25% are open at rest. Rod/cone gap junctions are modulated by dopamine. Comparing our morphological calculations of maximum coupling to previous physiological results suggests that dopamine antagonists can drive rod/cone gap junctions to a surprisingly high open probability, approaching 100%.

neuroscience↗

Glial TGFβ activity promotes axon survival in peripheral nerves

Axons can represent the majority of the volume of a neuron and are energetically very demanding. Specialized glia ensheathe axons and are believed to support axon function and maintenance throughout life, but molecular details of glia-neuron support mechanisms remain poorly defined. Here we identify a collection of secreted and transmembrane genes that are required in glia for long-term axon survival in vivo. We show that key components of the TGF{beta} superfamily are required cell-autonomously in glia for peripheral nerve maintenance, although their loss does not disrupt glial morphology. We observe age-dependent neurodegeneration in the absence of glial TGF{beta} signaling that can be rescued by genetic blockade of Wallerian degeneration. Our data argue that glial TGF{beta} signaling normally acts to promote axon survival and suppress neurodegeneration. Significance StatementAxon maintenance is critical to preserving the functional integrity of the nervous system across animal lifespan. Glia contribute to axon maintenance, but their precise roles remain to be fully characterized. We identify glial genes that regulate axon support and provide new molecular insight into the means by which glia promote axon survival, which may help explain why neurodegeneration occurs when glia are lost in disease. We show that TGF{beta} signaling in mature glia is essential for long-term maintenance of axons, and that loss of TGF{beta} signaling activates an axon death signaling pathway.

neuroscience↗