Active Genetics & Molecular Biology Infection & Immunity

An epigenetic switch: how to make a parasite

In plain English

AI plain-English summary

Parasitic roundworms flip a genetic switch to turn from harmless free-living organisms into infectious parasites, and researchers want to know how that switch works. This matters because parasitic nematodes infect hundreds of millions of people worldwide, causing diseases such as river blindness and strongyloidiasis. Current treatments rely on drugs that kill the worms, but resistance is growing. The fundamental gap is that no one understands how these worms control the gene expression programme that makes them parasitic in the first place. The researchers hypothesise that large chromatin domains—the physical packaging of DNA—change shape during the worm’s life cycle, working with small RNA molecules to turn parasitism genes on or off. If this research succeeds, it could reveal a new target for intervention: instead of killing the worm, you could simply prevent it from becoming a parasite. That would offer a fundamentally different approach to reducing nematode infection in vulnerable populations, particularly in tropical regions where sanitation and treatment access are limited. This is primarily curiosity-driven fundamental science. Understanding how an organism controls its own developmental switch has no immediate practical application, but similar work on gene regulation in other organisms has led to breakthroughs in cancer therapies and genetic engineering.

View original technical description
Parasitic nematodes are important parasites of humans and animals. Parasitic nematode life cycles switch between free-living stages and parasitic stages, when they turn on a parasitism gene expression programme. But how parasitic nematodes control this switch in their gene expression is unknown and what we will investigate. Free-living nematodes use large, stable chromatin domains and small RNAs to control their gene expression. We hypothesise that parasitic nematodes also have large chromatin domains but (unlike free-living nematodes) that these change during their life cycle, and that these integrate with sRNAs to control parasitism gene expression programmes. We will study the parasitic nematode Strongyloides whose life cycle is ideally suited to this work, and where there are genomic clusters of parasitism genes. We will compare chromatin domains, small RNAs and gene expression between parasitic and free- living stages to understand how the expression of the parasitism clusters is controlled. We will also investigate how chromatin domains and small RNAs epigenetically control early larval parasitic vs. free -living fate. By understanding this we can learn how to switch off parasites’ parasitism programmes and so stop them being parasites, thus developing a new approach to reduce the burden of nematode infection in vulnerable human populations.

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Researchers

Mark Viney (EPMC Awardee)Peter Sarkies (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

The structure and function of nematode pathogenicity islands
Deciphering mechanisms of epigenetic regulation in Trypanosoma brucei, an evolutionarily distinct human pathogen.
Organisation and regulation of parasitism-associated genomic islands
The molecular basis of parasitism in the nematode Strongyloides ratti.
The role of 'parasitism islands' in infection by soil-transmitted helminths

Original classification

Discovery Award

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