Nuclear speckle proteins form intrinsic and MALAT1-dependent microphases

  • Min Kyung Shinn
  • , Dylan T. Tomares
  • , Vicky Liu
  • , Avnika Pant
  • , Yuanxin Qiu
  • , Andreas Vitalis
  • , You Jin Song
  • , Yuna Ayala
  • , Kiersten M. Ruff
  • , Gregory W. Strout
  • , Matthew D. Lew
  • , Kannanganattu V. Prasanth
  • , Rohit V. Pappu

Research output: Contribution to journalArticlepeer-review

Abstract

Pre-mRNA processing components in nuclear speckles encompass one or more folded RNA recognition motifs (RRMs) and disordered regions with specific sequence grammars. Such proteins include serine/arginine-rich splicing factors (SRSFs) and transactive response DNA binding protein (TDP)-43. The SRSFs and TDP-43 are unique archetypes of block copolymers encoding specific patterns of inter-domain homotypic and heterotypic attractions and repulsions. The interplay of these interactions drives microphase separation and the formation of ordered, size-limited assemblies. Microphases of SRSFs and TDP-43 are 23–45 nm in diameter, each comprising tens of molecules. Sub-micron-scale assemblies of SRSFs in cells are consistent with being clusters of microphases. The speckle-associated regulatory long non-coding RNA (lncRNA) metastasis-associated lung adenocarcinoma transcript 1 ( MALAT1 ) binds specifically and preferentially to SRSF1 microphases, while destabilizing TDP-43 microphases. In protein mixtures, the interactions between microphases drive the formation of micron-scale double-emulsion structures with core-shell organization. Our findings show how interactions involving copolymers featuring folded domains and disordered regions drive the formation of microphases.

Original languageEnglish
Pages (from-to)832-852.e24
JournalCell
Volume189
Issue number3
DOIs
StatePublished - Feb 5 2026

Keywords

  • LLPS
  • RNA binding proteins
  • RRMs
  • TDP-43
  • block copolymers
  • emulsions of microphases
  • intrinsically disordered regions
  • macrophase separation
  • microphase separation
  • nuclear speckles
  • serine/arginine-rich splicing factors

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