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July 22, 2026Advanced Science0 citationsOpen Access

PolyG Fibrils Coalesce Into Nuclear Ribbons That Engage Proteostasis Machinery in Neuronal Intranuclear Inclusion Disease

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HDHui DongYPYongcheng PanZTZhiyao Tang

Key Points

  • This research aims to clarify the structure of polyG fibrils and their role in neuronal intranuclear inclusion disease (NIID).
  • Used a transgenic NIID mouse model to extract polyG assemblies from diseased brain.
  • Characterized the assemblies using cryo-electron tomography (cryo-ET).
  • Employed proximity-dependent labeling and mass spectrometry to analyze proteostasis factor interactions with polyG.
  • PolyG forms branched ~5 nm fibrils that coalesce into densely packed ribbons within neuronal nuclei.
  • Proteostasis factors, including proteasome subunits and chaperones, are enriched at polyG assemblies (p<0.05).
  • Cryo-ET visualizes proteasome-like particles on ribbon surfaces, supporting their engagement with proteostasis machinery.

Abstract

Neuronal intranuclear inclusion disease (NIID) arises from GGC repeat expansions in NOTCH2NLC. These expanded repeats produce polyglycine (polyG) proteins, and the accumulation of these polyG proteins in neuronal nuclei serves as the characteristic pathological hallmark of NIID. However, the native cellular ultrastructure of polyG and its contribution to pathology remain poorly understood. Here, using a transgenic NIID mouse model, we extract polyG assemblies from diseased brain and characterize their architecture by cryo-electron tomography (cryo-ET). We further examine their native organization by tracer-guided in situ cryo-ET in vitrified mouse brain. We find that polyG forms highly branched ∼5 nm fibrils that laterally coalesce into densely packed ribbons, which represent the predominant polyG state within neuronal nuclei in situ. In parallel, proximity-dependent labeling coupled to mass spectrometry reveals selective enrichment of proteostasis factors-including proteasome subunits and molecular chaperones-at polyG assemblies in mouse brain. Consistent with this, cryo-ET visualizes proteasome-like particles decorating ribbon-shaped surfaces and edges in cells. Together, these findings uncover an unexpected ribbon-shaped supramolecular architecture for a low-complexity disease protein and suggest that nuclear polyG ribbons act as scaffolds that engage proteostasis machinery, providing mechanistic insight into NIID.

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Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/6a605d4a4163e025518d76bdhttps://doi.org/10.1002/advs.76630
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Structural Polymorphism of polyG Inclusions Revealed by In Situ Cryo‐Electron Tomography2026
  2. 2A Second Pathogenic Protein, PolyGN2C‐iso2, Reveals a Dual‐Protein Pathology in Neuronal Intranuclear Inclusion Disease2026
  3. 3ASO therapy rescues NOTCH2NLC GGC repeat expansion-induced genomic damage, 3D chromatin structural abnormalities, and senescence2026
  4. 4GGC repeat expansions in <i>NOTCH2NLC</i> cause uN2CpolyG cerebral amyloid angiopathy2024 · 11 citations
  5. 5Type B Fibers: A Novel Ultrastructural Biomarker for Cognitive Impairment in Neuronal Intranuclear Inclusion Disease2025 · 2 citations