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Markus Missler

Publications and source records attributed to Markus Missler.

2 recordsLinked to original sources

Alpha-neurexins couple Ca2+ channels to synaptic vesicle exocytosis.

Synapses are specialized intercellular junctions in which cell adhesion molecules connect the presynaptic machinery for neurotransmitter release to the postsynaptic machinery for receptor signalling. Neurotransmitter release requires the presynaptic co-assembly of Ca2+ channels with the secretory apparatus, but little is known about how synaptic components are organized. Alpha-neurexins, a family of >1,000 presynaptic cell-surface proteins encoded by three genes, link the pre- and postsynaptic compartments of synapses by binding extracellularly to postsynaptic cell adhesion molecules and intracellularly to presynaptic PDZ domain proteins. Using triple-knockout mice, we show that alpha-neurexins are not required for synapse formation, but are essential for Ca2+-triggered neurotransmitter release. Neurotransmitter release is impaired because synaptic Ca2+ channel function is markedly reduced, although the number of cell-surface Ca2+ channels appears normal. These data suggest that alpha-neurexins organize presynaptic terminals by functionally coupling Ca2+ channels to the presynaptic machinery.

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Synaptic cell adhesion goes functional.

A growing number of candidate genes has been implicated in linking the two sides of a synapse but definitive proof of a specific role for many of them is still scarce. Exploiting the vast amount of sequence data, a novel family of homophilic synaptic cell-adhesion molecules (SynCAMs) has now been identified in mice. SynCAMs are evolutionarily related to invertebrate immunoglobulin-like (Ig)-domain proteins and they promote the formation and differentiation of functional synapses in vitro.

Animals↗