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Staab, A.

Publications and source records attributed to Staab, A..

3 recordsLinked to original sources

Direct interaction of ribosomes with postsynaptic proteins gives rise to a privileged local synaptic translatome

Ribosomes and thousands of mRNAs are localized near synapses to support local protein synthesis. Little is known, however, about how ribosomes are positioned and maintained in dendritic spines- the primary postsynaptic sites of excitatory neurotransmission. Here, using proximity labeling-mass spectrometry, we mapped the interactome of postsynaptic ribosomes, and discovered an unexpected interaction with AMPA receptor complex proteins. Co-immunoprecipitation and crosslinking mass spectrometry using rat cortical synaptosomes showed a direct, mRNA-independent interaction between postsynaptic proteins and intact ribosomes. Immunoprecipitation-ribosome profiling (IP-Ribo-seq) revealed not only the complete synaptic translatome but also that the AMPA receptor-associated subpopulation of synaptic ribosomes preferentially translates mRNAs encoding proteins related to post-synaptic density (PSD) scaffolding and cytoskeletal dynamics. Translation of one of the mRNA targets, Camk2a, was reduced in spines following ER sequestration of endogenous GluA1. Together, these results reveal a role for PSD proteins in positioning ribosomes near the postsynaptic membrane, providing a mechanism to couple synaptic activity with the local production of proteins needed for structural remodeling.

neuroscience↗

Neuronal processes contain the essential components for the late steps of ribosome biogenesis

Neurons rely on spatial and temporal control of protein synthesis to respond rapidly and locally to external stimuli, a process facilitated by the dynamic localization and modification of ribosomes. While previous research has shown that neuronal activity can regulate ribosome localization and modify translation rates, little is known about ribosomal assembly within neuronal processes. Here, we investigated the potential for local ribosome maturation in rat neurons using proteomics, RNA sequencing, and imaging methods. We detected an abundance of ribosome biogenesis factors (RBFs) in distal neuronal compartments, particularly those associated with the late stages of ribosome assembly. Moreover, we detected cytosolic pre-rRNA species in dendrites, alongside the enzymes necessary for their processing, suggesting that local ribosome maturation can occur far from the nucleus. These findings challenge conventional models that confine ribosome biogenesis to nuclear and perinuclear regions and suggest that neurons may fine-tune local protein synthesis by regulating ribosome assembly near synaptic sites. This mechanism may enable rapid modulation of the translational capacity in response to physiological changes, regulating synaptic plasticity and local protein synthesis in neurons. Significance StatementNeurons require precise spatial and temporal regulation of protein synthesis to adapt rapidly to external stimuli, particularly at synapses. Our study challenges the view that new ribosomes can be made exclusively near the nucleus and reveals that ribosome biogenesis factors and pre-rRNA processing enzymes are present in distal neuronal compartments. These findings suggest that ribosome maturation can occur locally in dendrites, enabling rapid, spatially targeted modulation of translational capacity. This mechanism provides a different framework for understanding how neurons regulate synaptic plasticity and adapt to physiological changes. By demonstrating that ribosome assembly may extend beyond the nucleus, this work highlights a previously unrecognized layer of neuronal protein synthesis control, potentially transforming our understanding of how neurons orchestrate local responses to environmental cues.

cell biology↗

Neuronal ribosomes dynamically exchange ribosomal proteins in a context-dependent manner.

Owing to their morphological complexity and dense network connections, neurons modify their proteomes locally, using mRNAs and ribosomes present in the neuropil (tissue enriched for dendrites and axons). Although ribosome biogenesis largely takes place in the nucleus and perinuclear region, neuronal ribosomal protein (RP) mRNAs have been frequently detected remotely, in dendrites and axons. Here, using imaging and ribosome profiling, we directly detected the RP mRNAs and their translation in the neuropil. Combining brief metabolic labeling with mass spectrometry, we found that a group of RPs quickly associated with translating ribosomes in the cytoplasm and that this incorporation is independent of canonical ribosome biogenesis. Moreover, the incorporation probability of some RPs was regulated by location (neurites vs. cell bodies) and changes in the cellular environment (in response to oxidative stress). Our results suggest new mechanisms for the local activation, repair and/or specialization of the translational machinery within neuronal processes, potentially allowing remote neuronal synapses a rapid solution to the relatively slow and energy-demanding requirement of nuclear ribosome biogenesis.

molecular biology↗