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Hecht-Bucher, M.

Publications and source records attributed to Hecht-Bucher, M..

2 recordsLinked to original sources

The Shewanella oneidensis Fic enzyme SoFic targets the switch-Iregion of EF-Tu for AMPylation

Fic enzymes mediate diverse post-translational modifications, including adenosine monophosphate (AMP) transfer and removal, referred to as AMPylation and deAMPylation, respectively. We identified the prokaryotic translation elongation factor Tu (EF-Tu) as an AMPylation target of the Fic enzyme SoFic. SoFic can constitutively reverse EF-Tu modification via deAMPylation whereas AMPylation depends on SoFic homodimerization. The complex crystal structure between SoFic and EF-Tu confirms a conserved target binding mode across evolutionary distant Fic enzymes. AMPylation disrupts EF-Tus regulatory switch-I region, causing translational inhibition. SoFic furthermore binds to its promotor DNA, suggesting a dual function as transcriptional and translational regulator in bacterial cells. Together, our structural and biochemical data provide valuable insights into the functional and regulatory diversity of Fic enzymes.

biochemistry↗

SHANK3-CAMSAP2 interaction links synapses to dendritic microtubule organisation in PV neurons

The microtubule cytoskeleton plays an essential role in establishing and maintaining neuronal polarity. In neurons, microtubules are initially generated at the centrosome which gradually loses this role in development. In mature neurons, microtubules are stabilised by the microtubule minus end-binding protein CAMSAP2. How and where microtubule minus ends are anchored within dendrites of mammalian neurons remains an open question. Here, we show that microtubules are directly attached to the postsynaptic density of excitatory synapses through an interaction of CAMSAP2 with the scaffolding protein SHANK3. This process is particularly relevant in parvalbumin-positive GABAergic neurons, in which excitatory synapses are predominantly located directly on the dendritic shaft in direct proximity to microtubules. Notably, this association is strongly enhanced by the Autism Spectrum Disorder (ASD)-associated SHANK3L68P mutation, leading to an increase of synaptic levels of CAMSAP2. This promotes an increased microtubule association with the synapse and alters microtubule dynamics. Downregulation of CAMSAP2 in SHANK3L68P parvalbumin neurons tips the balance between site-specific microtubule stabilisation and dynamics, reshaping dendritic architecture, connecting SHANK3-CAMSAP2 dependent microtubule regulation to synaptic ASD pathology. TeaserInteraction between synapses and microtubules is enhanced in parvalbumin neurons bearing the ASD-associated SHANK3 L68P mutation.

neuroscience↗