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Using Mouse Oocytes to Assess Human Gene Function During Meiosis I
Published on: April 10, 2018
Meiotic drive in house mice: mechanisms, consequences, and insights for human biology
Uma P Arora1,2, Beth L Dumont3,4
1The Jackson Laboratory, 600 Main Street, Bar Harbor, ME, 04609, USA.
Abstract:
Meiotic drive occurs when one allele at a heterozygous site cheats its way into a disproportionate share of functional gametes, violating Mendel's law of equal segregation. This genetic conflict typically imposes a fitness cost to individuals, often by disrupting the process of gametogenesis. The evolutionary impact of meiotic drive is substantial, and the phenomenon has been associated with infertility and reproductive isolation in a wide range of organisms. However, cases of meiotic drive in humans remain elusive, a finding that likely reflects the inherent challenges of detecting drive in our species rather than unique features of human genome biology. Here, we make the case that house mice (Mus musculus) present a powerful model system to investigate the mechanisms and consequences of meiotic drive and facilitate translational inferences about the scope and potential mechanisms of drive in humans. We first detail how different house mouse resources have been harnessed to identify cases of meiotic drive and the underlying mechanisms utilized to override Mendel's rules of inheritance. We then summarize the current state of knowledge of meiotic drive in the mouse genome. We profile known mechanisms leading to transmission bias at several established drive elements. We discuss how a detailed understanding of meiotic drive in mice can steer the search for drive elements in our own species. Lastly, we conclude with a prospective look into how new technologies and molecular tools can help resolve lingering mysteries about the prevalence and mechanisms of selfish DNA transmission in mammals.
Insights
Meiotic drive, where alleles unfairly distribute into gametes, impacts evolution and reproduction. House mice offer a powerful model to study drive mechanisms and their potential relevance to human genetics.
Area of Science:
- Genetics
- Evolutionary Biology
- Reproductive Biology
Background:
- Meiotic drive violates Mendel's law of equal segregation, leading to unequal allele transmission in gametes.
- This genetic conflict can cause fitness costs and is linked to infertility and reproductive isolation across species.
- Detecting meiotic drive in humans is challenging, but understanding it in model organisms is crucial.
Purpose of the Study:
- To establish the house mouse (Mus musculus) as a powerful model for investigating meiotic drive mechanisms.
- To facilitate translational inferences about the scope and potential mechanisms of meiotic drive in humans.
- To detail how mouse resources can identify meiotic drive and its underlying genetic mechanisms.
Main Methods:
- Utilizing diverse house mouse resources to identify meiotic drive cases.
- Analyzing established drive elements to understand transmission bias mechanisms.
- Reviewing current knowledge of meiotic drive within the mouse genome.
Main Results:
- House mice possess identifiable meiotic drive elements with known mechanisms overriding Mendelian inheritance.
- Established drive elements demonstrate specific molecular strategies for transmission bias.
- Understanding mouse meiotic drive provides a roadmap for human studies.
Conclusions:
- House mice are a valuable model for studying meiotic drive and its evolutionary consequences.
- Insights from mouse meiotic drive can guide the search for similar phenomena in humans.
- New technologies can further elucidate selfish genetic element transmission in mammals.
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