Active Genetics & Molecular Biology Infection & Immunity

A small RNA-based immune system guards germ cell genomes

In plain English

AI plain-English summary

Every animal egg and sperm cell carries a built-in immune system that silences rogue genetic parasites before they can scramble the genome. This project investigates the piRNA pathway, a small RNA-based defence mechanism that protects germ cells—eggs and sperm—from mobile genetic elements called transposons. When this system fails, transposons jump around the genome, causing mutations that can lead to infertility or developmental defects. Although the pathway is essential across the animal kingdom, scientists do not fully understand how it works: how the cell identifies which genomic regions to target, how the RNA molecules are processed on the surface of mitochondria, and how they ultimately silence transposons. The researchers will use fruit flies to study these steps with genetics, biochemistry, and live-cell imaging. This is fundamental science. There is no immediate medical or agricultural application. However, understanding how germ cells defend their genomes could eventually inform fertility treatments, explain causes of miscarriage, or reveal how transposons contribute to ageing and cancer. Past work on similar small RNA systems has already led to RNA interference technologies used in gene therapy and crop improvement.

View original technical description
The PIWI-interacting RNA (piRNA) pathway is a small RNA-based innate immune system that guards the germ cell genomes of animals from the potentially deleterious consequences of the unfettered activity of mobile genetic elements. The integrity of this pathway is important for maintaining germ cell function and reproductive fitness throughout the animal kingdom. We propose to use Drosophila as a model system to deepen our mechanistic understanding of piRNA biology, drawing upon genetics, biochemistry, molecular and structural biology, high resolution and live-cell imaging, and computational and evolutionary biology. We seek to understand how piRNA clusters are defined and expressed, how their long non-coding RNA products are fated for biogenesis, how they are processed on the surface of mitochondria, and how the resultant piRNAs elicit co-transcriptional silencing, as well as the timelines and dynamics of the underlying processes. Finally, we will draw upon the expertise built in other areas of focus within our group to study the spatial and temporal interactions between transposons and host defence, as the relationship between mobile elements and their host are likely much more nuanced than can be reveal by bulk analyses which collapse multiple developmental stages into a single averaged measurement.

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Researchers

Benjamin Nicholson (EPMC Awardee)Gregory Hannon (EPMC Awardee)Susanne Bornelöv (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

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Genome integrity and DNA damage response in Drosophila germline development
RNAi, cancer, non-coding RNAs
Wolbachia as a defence against RNA viruses in insects.
Dynamics and functions of small interfering RNAs in germline cells

Original classification

Discovery Award

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