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Updated: May 31, 2026

Isolation and Quantification of Axonal mRNAs Using Porous Membrane Inserts and RTddPCR
Published on: February 6, 2026
Fine-Tuned Regulation of mRNA Translation and Transport by STAU2 Condensate Facilitates Neuronal Development and
Shijing Huang1, Yuanyuan Chu2, Ruiqian Zhao1
1Department of Neurosurgery, Huashan Hospital, the Shanghai Key Laboratory of Medical Epigenetics, State Key Laboratory of Brain Function and Disorders, and MOE Frontiers Center for Brain Science, Institutes of Biomedical Sciences, Shanghai Medical College, Fudan University, Shanghai, China.
Abstract:
The double-stranded RNA-binding protein STAU2 plays an essential role in neural development and synaptic plasticity, assembling target mRNAs into ribonucleoprotein (RNP) granules to control their trafficking, localization, and local translation, though the detailed molecular mechanism remains elusive. Here, we show that STAU2 phase separates to form dynamic condensates in dendrites of hippocampal neurons, recruiting specific mRNAs to assemble mobile RNP granules that are transported distally along microtubules. These RNA-loaded STAU2 condensates undergo a liquid-to-gel transition, which stabilizes the encapsulated transcripts while repressing their translation. During neuron development, disrupting STAU2 condensation impairs RNP formation and compromises anterograde mRNA delivery to distal dendrites. Conversely, STAU2 overexpression promotes excessive coacervation, resulting in oversized RNP granules with reduced mobility, ultimately hindering dendritic elongation and promoting excessive branching. We further demonstrate that synaptic activity bidirectionally remodels STAU2 condensates in parallel with changes in local translation of bound mRNAs. Notably, aberrant STAU2 condensates emerge as a potential pathological feature in aggregation-prone neurodegenerative disorders. Collectively, our findings establish that STAU2 condensate safeguards the development of postmitotic neurons by orchestrating the dendritic transport and activity-dependent translation of its target mRNAs.
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