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March 27, 2026Nature Communications2 citationsOpen Access

RanBP2-dependent annulate lamellae drive nuclear pore assembly and nuclear expansion

JLJunyan LinAAArantxa Agote-AranYLYongrong Liao

Key Points

  • The research aims to elucidate the role of annulate lamellae in nuclear pore assembly and their biogenesis in somatic cells.
  • Identified the presence of annulate lamellae in somatic mammalian cells.
  • Assessed the integration of pre-assembled AL-NPCs into the nuclear envelope.
  • Evaluated the role of RanBP2 in the biogenesis of annulate lamellae and their function in nuclear pore assembly.
  • Investigated the effects of pathological stimuli on annulate lamellae transfer to the nuclear envelope.
  • One-third of newly formed nuclear pores arise from the integration of AL-NPCs into the nuclear envelope.
  • AL-driven nuclear pore assembly serves as an alternative pathway to canonical methods.
  • RanBP2 is crucial for the oligomerization of AL-NPC scaffolds, impacting their function.
  • The transfer of annulate lamellae to the nuclear envelope is disrupted under pathological conditions.

Abstract

Abstract Nuclear pore complexes (NPCs) enable nucleocytoplasmic transport. While NPCs primarily localize to the nuclear envelope (NE), they also appear in cytoplasmic endoplasmic reticulum (ER) membranes called annulate lamellae (AL). Though discovered in the mid-20th century, AL’s function and biogenesis remain unclear. Previously considered exclusive to embryonic and malignant cells, we find AL in somatic mammalian cells. Under normal conditions, AL store pre-assembled AL-NPCs that integrate into the NE, producing approximately one-third of newly formed nuclear pores and supporting nuclear expansion during G1. Upon pathological stimuli, AL transfer to the NE is impaired, leading to their cytoplasmic accumulation. RanBP2 (Nup358) is essential for AL biogenesis, with its phenylalanine-glycine repeats promoting AL-NPC scaffold oligomerization. ER-associated Climp63 (CKAP4) directs AL-NPCs to ER sheets and the NE. This AL-driven nuclear pore formation is complementary to the canonical routes, constituting a distinct NPC assembly pathway. Our work uncovers the biogenesis mechanism of AL and the nuclear function of this key cellular organelle.

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/69c6206115a0a509bde18e9fhttps://doi.org/10.1038/s41467-026-71101-y
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