Related Experiment Video
Updated: Jun 13, 2025

Monitoring Protein-RNA Interaction Dynamics In Vivo at High Temporal Resolution Using χCRAC
Published on: May 9, 2020
RCC1 depletion drives protein transport defects and rupture in micronuclei
Molly G Zych1,2, Maya Contreras2, Manasvita Vashisth3,4
1Molecular and Cellular Biology PhD Program, University of Washington, Seattle, WA, USA.
Abstract:
Micronuclei (MN) are a commonly used marker of chromosome instability that form when missegregated chromatin recruits its own nuclear envelope (NE) after mitosis. MN frequently rupture, which results in genome instability, upregulation of metastatic genes, and increased immune signaling. MN rupture is linked to NE defects, but the cause of these defects is poorly understood. Previous work from our lab found that chromosome identity correlates with rupture timing for small MN, i.e. MN containing a short chromosome, with more euchromatic chromosomes forming more stable MN with fewer nuclear lamina gaps. Here we demonstrate that histone methylation promotes rupture and nuclear lamina defects in small MN. This correlates with increased MN size, and we go on to find that all MN have a constitutive nuclear export defect that drives MN growth and nuclear lamina gap expansion, making the MN susceptible to rupture. We demonstrate that these export defects arise from decreased RCC1 levels in MN and that additional loss of RCC1 caused by low histone methylation in small euchromatic MN results in additional import defects that suppress nuclear lamina gaps and MN rupture. Through analysis of mutational signatures associated with early and late rupturing chromosomes in the Pan-Cancer Analysis of Whole Genomes (PCAWG) dataset, we identify an enrichment of APOBEC and DNA polymerase E hypermutation signatures in chromothripsis events on early and mid rupturing chromosomes, respectively, suggesting that MN rupture timing could determine the landscape of structural variation in chromothripsis. Our study defines a new model of MN rupture where increased MN growth, caused by defects in protein export, drives gaps in nuclear lamina organization that make the MN susceptible to membrane rupture with long-lasting effects on genome architecture.
Insights
Micronuclei (MN) rupture due to nuclear envelope defects, driven by protein export issues. Histone methylation and reduced RCC1 levels contribute to MN instability and genome alteration, impacting cancer evolution.
Area of Science:
- Cell Biology
- Genetics
- Cancer Research
Background:
- Micronuclei (MN) are key indicators of chromosome instability.
- MN rupture leads to genome instability, metastasis, and immune response.
- The causes of nuclear envelope (NE) defects in MN remain unclear.
Purpose of the Study:
- Investigate the mechanisms underlying MN rupture and NE defects.
- Determine the role of histone methylation and protein transport in MN stability.
- Correlate MN rupture timing with cancer mutational signatures.
Main Methods:
- Analysis of histone methylation in small MN.
- Assessment of protein export and import defects in MN.
- Examination of RCC1 levels in MN.
- Analysis of the Pan-Cancer Analysis of Whole Genomes (PCAWG) dataset for mutational signatures.
Main Results:
- Histone methylation promotes rupture and NE defects in small MN.
- All MN exhibit constitutive nuclear export defects, driving growth and NE gaps.
- Decreased RCC1 levels cause export defects; further loss in euchromatic MN causes import defects, suppressing rupture.
- Analysis of PCAWG data reveals APOBEC and DNA polymerase E signatures linked to early and mid-rupturing chromosomes in chromothripsis.
Conclusions:
- A novel model of MN rupture is proposed, driven by protein export defects and subsequent NE gaps.
- MN growth and rupture susceptibility are influenced by protein transport dynamics.
- MN rupture timing may dictate the patterns of structural variation in chromothripsis, with implications for cancer development.
More Related Videos
Related Concept Videos
Nucleotide Excision Repair
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
DNA Damage can Stall the Cell Cycle
The Ras Gene
Ras is a...
Destabilization of Microtubules

