Related Experiment Video
Updated: Dec 8, 2025

An Automated Method to Perform The In Vitro Micronucleus Assay using Multispectral Imaging Flow Cytometry
Published on: May 13, 2019
Small but strong: Mutational and functional landscapes of micronuclei in cancer genomes
Xihan Guo1,2, Xueqin Dai3,4,5, Xue Wu1
1School of Life Sciences, The Engineering Research Center of Sustainable Development and Utilization of Biomass Energy, Yunnan Normal University, Kunming, Yunnan, China.
Abstract:
Micronuclei, small spatially-separated, nucleus-like structures, are a common feature of human cancer cells. There are considerable heterogeneities in the sources, structures and genetic activities of micronuclei. Accumulating evidence suggests that micronuclei and main nuclei represent separate entities with respect to DNA replication, DNA damage sensing and repairing capacity because micronuclei are not monitored by the same checkpoints nor covered by the same nuclear envelope as the main nuclei. Thus, micronuclei are spatially restricted "mutation factories." Several large-scale DNA sequencing and bioinformatics studies over the last few years have revealed that most micronuclei display a mutational signature of chromothripsis immediately after their generation and the underlying molecular mechanisms have been dissected extensively. Clonal expansion of the micronucleated cells is context-dependent and is associated with chromothripsis and several other mutational signatures including extrachromosomal circular DNA, kataegis and chromoanasynthesis. These results suggest what was once thought to be merely a passive indicator of chromosomal instability is now being recognized as a strong mutator phenotype that may drive intratumoral genetic heterogeneity. Herein, we revisit the actionable determinants that contribute to the bursts of mutagenesis in micronuclei and present the growing number of evidence which suggests that micronuclei have distinct short- and long-term mutational and functional effects to cancer genomes. We also pose challenges for studying the long-term effects of micronucleation in the upcoming years.
Insights
Micronuclei in cancer cells act as "mutation factories," driving genetic diversity. These structures, distinct from the main nucleus, promote extensive DNA damage and mutations, significantly impacting cancer genome evolution.
Area of Science:
- Cancer Biology
- Genetics
- Genomics
Background:
- Micronuclei are common in human cancer cells, exhibiting diverse origins and genetic activities.
- They function independently from the main nucleus regarding DNA replication and repair, acting as
- mutation factories.
Purpose of the Study:
- To review the mechanisms driving mutagenesis within micronuclei.
- To highlight the role of micronuclei in generating intratumoral genetic heterogeneity.
- To discuss the short- and long-term effects of micronucleation on cancer genomes.
Main Methods:
- Analysis of large-scale DNA sequencing data.
- Bioinformatic studies of mutational signatures.
- Review of existing evidence on micronuclei formation and function.
Main Results:
- Micronuclei often display chromothripsis signatures post-formation.
- Clonal expansion of micronucleated cells is linked to chromothripsis, extrachromosomal DNA, kataegis, and chromoanasynthesis.
- Micronuclei are recognized as a mutator phenotype driving genetic heterogeneity.
Conclusions:
- Micronuclei are not just indicators of chromosomal instability but active drivers of cancer genome evolution.
- They possess distinct short- and long-term mutational and functional impacts on cancer.
- Further research is needed to understand the long-term consequences of micronucleation.
Related Concept Videos
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Mismatch Repair
The Nucleolus
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...
Cancers Originate from Somatic Mutations in a Single Cell
Spontaneous and Induced Mutations

