Sm and U2B" proteins redistribute to different nuclear domains in dormant and proliferating onion cells

Ping Cui1, Susana Moreno Díaz de la Espina

  • 1Nuclear Matrix Laboratory, Department of Plant Biology, Centro de Investigaciones Biológicas, CSIC, Velázquez 144, 28006, Madrid, Spain.

Planta
|May 2, 2003
PubMed

Insights

Splicing factors in onion cells dynamically relocate between nuclear domains, including novel micro-speckles in dormant cells, which serve as ribonucleoprotein storage sites. These factors redistribute upon cell activation, revealing insights into nuclear organization and splicing factor dynamics.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Plant Science

Background:

  • The nuclear organization of splicing factors is crucial for gene expression.
  • Understanding the dynamic behavior of spliceosomal proteins is key to deciphering cellular processes.

Purpose of the Study:

  • To investigate the nuclear distribution and dynamics of spliceosomal proteins in Allium cepa meristematic cells.
  • To identify and characterize novel sub-nuclear domains involved in splicing factor storage.

Main Methods:

  • Monoclonal antibodies against spliceosomal proteins (Sm, U2B
  • p105) and confocal microscopy.
  • Electron microscopy with EDTA and bismuth oxynitrate staining.
  • Cellular treatments including dormancy release (water soaking) and RNA synthesis inhibition (DRB).

Main Results:

  • Proliferating cells exhibit spliceosomal proteins in a diffuse nucleoplasmic network and Cajal bodies.
  • Dormant cells display spliceosomal proteins in small Cajal bodies and unique micro-speckles, identified as ribonucleoprotein (RNP) storage sites.
  • Upon release from dormancy, spliceosomal proteins redistribute to the nucleoplasmic network and Cajal bodies.
  • Micro-speckles are not indicative of transcription blocks and represent a novel storage mechanism for RNPs.

Conclusions:

  • Spliceosomal proteins undergo reversible relocation between distinct sub-nuclear domains under physiological conditions.
  • Onion meristematic cells utilize specialized nuclear domains, including micro-speckles, for dynamic regulation of splicing factors.
  • These findings provide new insights into the dynamic nuclear architecture and RNP management in plant cells.

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