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Updated: Sep 26, 2026

Bimolecular Fluorescence Complementation (BiFC) Assay for Protein-Protein Interaction in Onion Cells Using the Helios Gene Gun
Published on: June 12, 2010
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.
Abstract:
Monoclonal antibodies against the spliceosomal proteins Sm and U2B", and against p105, a protein component of interchromatin granules, were used to investigate the nuclear distribution of the splicing factors in Allium cepa L. meristematic cells. Confocal microscopy showed that in steady-state proliferating cells, the spliceosomal components were distributed into two nuclear domains: (i) a diffuse nucleoplasmic network similar to that formed by interchromatin granules and (ii) numerous Cajal bodies. These domains were the counterpart of the perichromatin fibrils and granules, interchromatin granules and Cajal bodies observed by electron microscopy after EDTA and bismuth oxynitrate stainings. Dormant cells showed a nuclear distribution of the proteins in small Cajal bodies and numerous micro-speckles, correlated with the distribution of ribonucleoproteins (RNPs) observed by electron microscopy. The spliceosomal proteins relocated to the diffuse nucleoplasmic network and Cajal bodies when the cells were released from dormancy by water soaking and they re-started their proliferative activity. Inhibition of RNA synthesis by 5,6-dichloro-1-beta- d-ribofuranosylbenzimidazole (DRB) treatment in proliferating cells demonstrated that the micro-speckles were not the morphological expression of a transcription block. Fractionation and confocal microscopy studies showed a differential association of the splicing factors with the nuclear matrix depending not only on the protein, but also on nuclear activity. Our results suggest a reversible relocation of the spliceosomal proteins between different sub-nuclear domains in physiological conditions. We report here an unusual nuclear domain in dormant nuclei, the micro-speckles, corresponding to storage sites for RNPs, which were rapidly mobilised after water imbibition.
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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