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Brueckner, A. M.

Publications and source records attributed to Brueckner, A. M..

3 recordsLinked to original sources

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↗

Light-inducible proximity labelling in vivo captures sex-specific RNA at excitatory synapses

Local RNA regulation is essential for synaptic plasticity, yet the full repertoire of RNA species and associated isoforms within specific synaptic compartments in vivo has yet to be determined. Existing RNA profiling approaches lack the spatial and temporal precision needed to resolve RNA repertoires restricted to cell-type specific synaptic compartments. To overcome this challenge, we developed PSD-95-Halo-seq, a light-induced proximity labelling technique that, when combined with long-read sequencing, selectively captures all post-synaptic full length RNA species in the excitatory post-synaptic compartment. Here, we applied this approach to investigate sex differences in RNA expression within excitatory synapses following exposure to an associative fear learning task in C57/Bl6 mice. We found dramatic sex differences in pseudogene and protein coding RNA expression, which are most abundant in females, with males exhibiting multiple noncoding RNA classes, including lncRNA, snoRNA, and rRNA. Females generally showed more 3' UTR expression, and there was widespread differential exon usage following fear conditioning, including 179 isoforms in males, 69 in females, with no significant gene-level differential expression, indicating that behavioural state modifies sex-specific isoform usage rather than overall transcript abundance. Our discovery that synaptic RNA composition is dynamic, sexually dimorphic, and profoundly shaped by experience, offers new insight into previously inaccessible mechanisms underlying sex differences in fear-related learning and memory. PSD-95-Halo-seq is therefore a powerful method for the precise spatiotemporal identification of compartment-and cell-type-specific RNA. One sentence take-awaySynapse-targeted proximity labelling and Long-Read sequencing demonstrate that excitatory post-synapses encode experience through sex-specific, isoform-level RNA remodeling.

neuroscience↗

Shaft versus spine localization affects the structural plasticity of glutamatergic synapses

In the early stages of development, most excitatory synapses are formed directly on dendritic shafts. As neurons mature, these sites gradually shift from the shaft to dendritic spines. In fully developed excitatory neurons, the majority of glutamatergic postsynaptic sites containing the postsynaptic density (PSD) molecules reside on dendritic spines. However, some glutamatergic synapses remain as shaft synapses, yet their characteristics have remained unexplored. Here, we show that the molecular composition of the shaft PSDs closely resembles that of spine PSDs. Key components such as AMPARs, NMDARs, CaV1.2 channels, and F-actin interacting proteins, SynGAP, as well as cortactin, are present in comparable amounts in both synapse types. The major distinction between shaft and spine PSDs lies in the lower abundance of the scaffold proteins Shanks and Homer in shaft PSDs. Shaft synapses are not merely passive structures but actively participate in synaptic transmission. Their structure and function are modulated by changes in neuronal activity. Long-term live imaging combined with a cLTP protocol revealed that shaft PSDs were potentiated but rarely underwent a transition to spine synapses. In contrast, during LTD, shaft PSDs were eliminated more frequently than their spine counterparts. Together, these findings highlight excitatory shaft synapses as a distinct, and notably less stable, synapse type.

neuroscience↗